Dimensions in inches (mm) .268 (6.81).255 (6.48) .390 (9.91).379 (9.63) .045 (1.14).030 (.76) 4 Typ. Figure 1. Typical application circuit.

Size: px
Start display at page:

Download "Dimensions in inches (mm) .268 (6.81).255 (6.48) .390 (9.91).379 (9.63) .045 (1.14).030 (.76) 4 Typ. Figure 1. Typical application circuit."

Transcription

1 LINEAR OPTOCOUPLER FEATURES Couples AC and DC signals.% Servo Linearity Wide Bandwidth, > KHz High Gain Stability, ±.%/C Low Input-Output Capacitance Low Power Consumption, < mw Isolation Test Voltage, VAC RMS, sec. Internal Insulation Distance, >. mm for VDE Underwriters Lab File #E VDE Approval # (Optional with Option, Add -X Suffix) G Replaced by -X APPLICATIONS Power Supply Feedback Voltage/ Current Medical Sensor Isolation Audio Signal Interfacing Isolate Process Control Transducers Digital Telephone Isolation DESCRIPTION The Linear Optocoupler consists of an AlGaAs IRLED irradiating an isolated feedback and an output PIN photodiode in a bifurcated arrangement. The feedback photodiode captures a percentage of the LED's flux and generates a control signal (IP ) that can be used to servo the LED drive current. This technique compensates for the LED's non-linear, time, and temperature characteristics. The output PIN photodiode produces an output signal (IP ) that is linearly related to the servo optical flux created by the LED. The time and temperature stability of the input-output coupler gain (K) is insured by using matched PIN photodiodes that accurately track the output flux of the LED. A typical application circuit (Figure ) uses an operational amplifier at the circuit input to drive the LED. The feedback photodiode sources current to R connected to the inverting input of U. The photocurrent, IP, will be of a magnitude to satisfy the relationship of (IP=V IN /R). Dimensions in inches (mm) DESCRIPTION (continued) The magnitude of this current is directly proportional to the feedback transfer gain (K) times the LED drive current (V IN /R=K I F ). The op-amp will supply LED current to force sufficient photocurrent to keep the node voltage (Vb) equal to Va The output photodiode is connected to a non-inverting voltage follower amplifier. The photodiode load resistor, R, performs the current to voltage conversion. The output amplifier voltage is the product of the output forward gain (K) times the LED current and photodiode load, R (V O =I F K R). Therefore, the overall transfer gain (V O /V IN ) becomes the ratio of the product of the output forward gain (K) times the photodiode load resistor (R) to the product of the feedback transfer gain (K) times the input resistor (R). This reduces to V O /V IN = (K R)/(K R). The overall transfer gain is completely independent of the LED forward current. The transfer gain (K) is expressed as the ratio of the ouput gain (K) to the feedback gain (K). This shows that the circuit gain becomes the product of the transfer gain times the ratio of the output to input resistors [V O / V IN =K (R/R)]. Figure. Typical application circuit + Vin. (.). (.) R Typ..9 (9.9).9 (9.). (.). (.) Pin One I.D.. (.). (.) K Typ.. (.). (.) 9. (. ). (.). (.). (.) Typ.. (.) Va + Vb U - I F lp K K lp K. Typ. (.) Typ. V c R - U +. (.). (.9) V out

2 Terms KI Servo Gain The ratio of the input photodiode current (I P ) to the LED current(i F ). i.e., K = I P / I F. K Forward Gain The ratio of the output photodiode current ( I P ) to the LED current (I F ), i.e., K = I P / I F. K Transfer Gain The Transfer Gain is the ratio of the Forward Gain to the Servo gain, i.e., K = K/K. K Transfer Gain Linearity The percent deviation of the Transfer Gain, as a function of LED or temperature from a specific Transfer Gain at a fixed LED current and temperature. Photodiode A silicon diode operating as a current source. The output current is proportional to the incident optical flux supplied by the LED emitter. The diode is operated in the photovoltaic or photoconductive mode. In the photovoltaic mode the diode functions as a current source in parallel with a forward biased silicon diode. The magnitude of the output current and voltage is dependant upon the load resistor and the incident LED optical flux. When operated in the photoconductive mode the diode is connected to a bias supply which reverse biases the silicon diode. The magnitude of the output current is directly proportional to the LED incident optical flux. LED (Light Emitting Diode) An infrared emitter constructed of AlGaAs that emits at 9 nm operates efficiently with drive current from µa to ma. Best linearity can be obtained at drive currents between ma to ma. Its output flux typically changes by.%/ C over the above operational current range. Absolute Maximum Ratings Emitter Power Dissipation (T A = C) Symbol Min. Max. Unit P LED mw Derate Linearly from C. mw/ C Forward Current lf ma Surge Current (Pulse width <µs) lpk ma Reverse Voltage V R V Thermal Resistance Rth C/W Junction Temperature T J C Detector Power Dissipation P DET ma Derate linearly from C. mw/ C Reverse Voltage V R V Junction Temperature T J C Thermal Resistance Rth C/W Coupler Total Package Dissipation at C P T mw Derate linearly from C. mw/ C Storage Temperature T S C Operating Temperature T OP C Isolation Test Voltage VAC RMS Isolation Resistance V IO = V, T A = C V IO = V, T A = C Ω Ω

3 Characteristics (T A = C) Symbol Min. Typ. Max. Unit Test Condition LED Emitter Forward Voltage V F.. V I F = ma V F Temperature Coefficient V F / C -. mv/ C Reverse Current I R µa V R = V Junction Capacitance C J pf V F = V, f= MHz Dynamic Resistance V F / I F Ω I F = ma Switching Time t R tf µs µs I F = ma, I Fq = ma I F = ma, I Fq = ma Detector Dark Current I D na V det =- V, I F = µa Open Circuit Voltage V D mv I F = ma Short Circuit Current I SC µa I F = ma Junction Capacitance C J pf V F = V, f= MHz Noise Equivalent Power NEP x W/ Hz V det = V Coupled Characteristics K, Servo Gain (I P /I F ) K... I F = ma, V det =- V Servo Current, see Note, I P µa I F = ma, V det =- V K, Forward Gain (I P /I F ) K... I F = ma, V det =- V Forward Current I P µa I F = ma, V det =- V K, Transfer Gain (K/K) See Note, K... K/K I F = ma, V det =- V Transfer Gain Linearity K ±. % I F = to ma Transfer Gain Linearity K ±. % I F = to ma, T A = C to C Photoconductive Operation Frequency Response BW (- db) KHz I Fq = ma, MOD=± ma, R L = Ω, Phase Response at KHz - Deg. V det =- V Rise Time t R. µs Fall Time t F. µs Package Input-Output Capacitance C IO pf V F = V, f= MHz Common Mode Capacitance C cm. pf V F = V, f= MHz Common Mode Rejection Ratio CMRR db f= Hz, R L =. KΩ Notes. Bin Sorting: K (transfer gain) is sorted into bins that are ±%, as follows: Bin A=.. Bin B=..9 Bin C=.9. Bin D=..9 Bin E=..9 Bin F=.9. Bin G=.. Bin H=.9. Bin I=.9. Bin J=.. K=K/K. K is tested at I F = ma, V det = V.. Bin Categories: All s are sorted into a K bin, indicated by an alpha character that is marked on the part. The bins range from A through J. The is shipped in tubes of each. Each tube contains only one category of K. The category of the parts in the tube is marked on the tube label as well as on each individual part.. Category Options: Standard orders will be shipped from the categories that are available at the time of the order. Any of the ten categories may be shipped. For customers requiring a narrower selection of bins, four different bin option parts are offered. -DEFG: Order this part number to receive categories D,E,F,G only. -EF: Order this part number to receive categories E, F only. -E: Order this part number to receive category E only. -F: Order this part number to receive category F only

4 Figure. LED forward current vs. forward voltage Figure. Normalized servo photocurrent vs. LED current and temperature Normalized Photocurrent Normalized I F = ma, T A = C, C V D = V C C C.... VF - LED Forward Voltage - V.. Figure. LED forward current vs. forward voltage VF - LED Forward Voltage - V Figure. Servo photocurrent vs. LED current and temperature IP- Servo Photocurrent - µa. C C C C V D = V Figure. Servo photocurrent vs. LED current and temperaturefigure LED current and temperature IP- Servo Photocureent - µa C C C C V D = Vd = -V V. Figure. Normalized servo photocurrent vs. LED current and temperature IP- Normalized Photocurrent... C C C C Figure. Servo gain vs. LED current and temperature NK- Normalized Servo Gain Normalized to I F = ma, T A = C, V D = V Figure 9. Normalized servo gain vs. LED current and temperature NK- Normalized Servo Gain Normalized to: I F = ma, T A = C..

5 Figure. Transfer gain vs. LED current and temperature. Figure. Common mode rejection - K - Transfer Gain - (K/K) C C C C CMRR - Rejection Ratio - db F - Frequency - Hz Figure. Normalized transfer gain vs. LED current and temperature Figure. Photodiode junction capacitance vs. reverse voltage K - Transfer Gain - (K/K) C C C C Normalized to I F = ma, T A = C Capacitance - pf.99 Figure. Amplitude response vs. frequency Amplitude Response - db I F = ma, Mod=± ma (peak) F - Frequency - Hz R L = KΩ R L = KΩ Figure. Amplitude and phase response vs. frequency Amplitude Response - db I Fq = ma Mod=± ma T A = C RL= Ω F - Frequency - Hz db PHASE Ø - Phase Response - - Voltage - V det Application Considerations In applications such as monitoring the output voltage from a line powered switch mode power supply, measuring bioelectric signals, interfacing to industrial transducers, or making floating current measurements, a galvanically isolated, DC coupled interface is often essential. The can be used to construct an amplifier that will meet these needs. The eliminates the problems of gain nonlinearity and drift induced by time and temperature, by monitoring LED output flux. A PIN photodiode on the input side is optically coupled to the LED and produces a current directly proportional to flux falling on it. This photocurrent, when coupled to an amplifier, provides the servo signal that controls the LED drive current. The LED flux is also coupled to an output PIN photodiode. The output photodiode current can be directly or amplified to satisfy the needs of succeeding circuits. Isolated Feedback Amplifier The was designed to be the central element of DC coupled isolation amplifiers. Designing the into an amplifier that provides a feedback control signal for a line powered switch mode power is quite simple, as the following example will illustrate. See Figure for the basic structure of the switch mode supply using the Siemens TDA9 Push-Pull Switched Power Supply Control Chip. Line isolation and insulation is provided by the high frequency transformer. The voltage monitor isolation will be provided by the.

6 The isolated amplifier provides the PWM control signal which is derived from the output supply voltage. Figure more closely shows the basic function of the amplifier. The control amplifier consists of a voltage divider and a noninverting unity gain stage. The TDA9 data sheet indicates that an input to the control amplifier is a high quality operational amplifier that typically requires a +V signal. Given this information, the amplifier circuit topology shown in Figure is selected. The power supply voltage is scaled by R and R so that there is + V at the non-inverting input (Va) of U. This voltage is offset by the voltage developed by photocurrent flowing through R. This photocurrent is developed by the optical flux created by current flowing through the LED. Thus as the scaled monitor voltage (Va) varies it will cause a change in the LED current necessary to satisfy the differential voltage needed across R at the inverting input. The first step in the design procedure is to select the value of R given the LED quiescent current (I Fq ) and the servo gain (K). For this design, I Fq = ma. Figure shows the servo photocurrent at I Fq is found to be µa. With this data R can be calculated. V b V R= = I Pl µa = KΩ Figure. Switch mode power supply Figure. Isolated control amplifier To Control Input ISO AMP Voltage Monitor For best input offset compensation at U, R will equal R. The value of R can easily be calculated from the following. V MONITOR R= R V a KΩ KΩ V = V The value of R depends upon the Transfer Gain (K). K is targeted to be a unit gain device, however to minimize the part to part Transfer Gain variation, Siemens offers K graded into ±% bins. R can determined using the following equation, V OUT R ( R + R) R= V MONITOR RK Or if a unity gain amplifer is being designed (VMONI- TOR=VOUT, R=), the euation simplifies to: R R= K R R / MAIN AC/DC RECTIFIER SWITCH XFORMER AC/DC RECTIFIER DC OUTPUT SWITCH MODE REGULATOR TDA9 CONTROL ISOLATED FEEDBACK Figure. DC coupled power supply feedback amplifier V monitor R KΩ R KΩ R KΩ Va Vb + U LM - R Ω pf K K V out R KΩ To control input

7 Table gives the value of R given the production K bins. Table. R selection Bins Min. Max. K Typ. R Resistor KΩ % KΩ A B C D E Figure. Linearity error vs. input voltage Linearity Error - % LM... Vin - Input Voltage - V. F G..... H I J The last step in the design is selecting the LED current limiting resistor (R). The output of the operational amplifier is targeted to be % of the, or. V. With an LED quiescent current of ma the typical LED (V F ) is. V. Given this and the operational output voltage, R can be calculated.. V opamp V F.V.V R= I = Fq ma = Ω The circuit was constructed with an LM differential operational amplifier using the resistors selected. The amplifier was compensated with a pf capacitor connected between pins and. The DC transfer charateristics are shown in Figure 9. The amplifier was designed to have a gain of. and was measured to be.. Greater accurracy can be achieved by adding a balancing circuit, and potentiometer in the input divider, or at R. The circuit shows exceptionally good gain linearity with an RMS error of only.% over the input voltage range of V V in a servo mode; see Figure. Figure 9. Transfer gain. Vout - Ooutput Voltage - V..... Vout =. mv +. x Vin LM Ta = C The AC characteristics are also quite impressive offering a - db bandwidth of KHz, with a - phase shift at KHz as shown in Figure. Figure. Amplitude and phase power supply control Amplitude Rresponse - db db PHASE F - Frequency - Hz The same procedure can be used to design isolation amplifiers that accept biploar signals referenced to ground. These amplifiers circuit configurations are shown in Figure. In order for the amplifier to respond to a signal that swings above and below ground, the LED must be prebiased from a separate source by using a voltage reference source (Vref). In these designs, R can be determined by the following equation. V ref V ref R= I = P KI Fq - -9 Phase Response Vin - Input Voltage - V.

8 Figure. Non-inverting and inverting amplifiers Input Vin + R Ω R + pf R Vref Input Output +Vref R R Vo + R Output Vin R + Ω R + pf R +Vref +Vref + Vout R Table. Optolinear amplifiers Amp[ifier Input Output Gain Offset V OUT K R R = V IN R (R+R) V ref = V ref R K R V OUT K R R (R+R) = V IN R R (R +R) V ref = V ref R (R+R) K R R V OUT K R R (R+R) = V IN R R (R +R) V ref = V ref R (R+R) K R R V OUT K R R = V IN R (R +R) V ref = V ref R K R These amplifiers provide either an inverting or non-inverting transfer gain based upon the type of input and output amplifier. Table shows the various configurations along with the specific transfer gain equations. The offset column refers to the calculation of the output offset or Vref necessary to provide a zero voltage output for a zero voltage input. The non-inverting input amplifier requires the use of a bipolar supply, while the inverting input stage can be implemented with single supply operational amplifiers that permit operation close to ground. For best results, place a buffer transistor between the LED and output of the operational amplifier when a CMOS opamp is used or the LED I Fq drive is targeted to operate beyond ma. Finally the bandwidth is influenced by the magnitude of the closed loop gain of the input and output amplifiers. Best bandwidths result when the amplifier gain is designed for unity.

Dimensions in inches (mm) .021 (0.527).035 (0.889) .016 (.406).020 (.508 ) .280 (7.112).330 (8.382) Figure 1. Typical application circuit.

Dimensions in inches (mm) .021 (0.527).035 (0.889) .016 (.406).020 (.508 ) .280 (7.112).330 (8.382) Figure 1. Typical application circuit. IL Linear Optocoupler Dimensions in inches (mm) FEATURES Couples AC and DC signals.% Servo Linearity Wide Bandwidth, > khz High Gain Stability, ±.%/C Low Input-Output Capacitance Low Power Consumption,

More information

Linear Optocoupler, High Gain Stability, Wide Bandwidth

Linear Optocoupler, High Gain Stability, Wide Bandwidth Linear Optocoupler, High Gain Stability, Wide Bandwidth i9 DESCRIPTION The linear optocoupler consists of an AlGaAs IRLED irradiating an isolated feedback and an output PIN photodiode in a bifurcated arrangement.

More information

IL300-F. Linear Optocoupler, High Gain Stability, Wide Bandwidth. Vishay Semiconductors

IL300-F. Linear Optocoupler, High Gain Stability, Wide Bandwidth. Vishay Semiconductors Linear Optocoupler, High Gain Stability, Wide Bandwidth Features Couples AC and DC signals. % Servo Linearity Wide Bandwidth, > khz High Gain Stability, ±. %/ C Low Input-Output Capacitance Low Power Consumption,

More information

Linear Optocoupler, High Gain Stability, Wide Bandwidth

Linear Optocoupler, High Gain Stability, Wide Bandwidth ishay Semiconductors Linear Optocoupler, High Gain Stability, Wide Bandwidth i9 DESCRIPTION The linear optocoupler consists of an AlGaAs IRLED irradiating an isolated feedback and an output PIN photodiode

More information

Linear Optocoupler, High Gain Stability, Wide Bandwidth

Linear Optocoupler, High Gain Stability, Wide Bandwidth ishay Semiconductors Linear Optocoupler, High Gain Stability, Wide Bandwidth i9 DESCRIPTION The linear optocoupler consists of an AlGaAs IRLED irradiating an isolated feedback and an output PIN photodiode

More information

Linear Optocoupler, High Gain Stability, Wide Bandwidth

Linear Optocoupler, High Gain Stability, Wide Bandwidth Linear Optocoupler, High Gain Stability, Wide Bandwidth i9 DESCRIPTION The linear optocoupler consists of an AlGaAs IRLED irradiating an isolated feedback and an output PIN photodiode in a bifurcated arrangement.

More information

TIL300, TIL300A PRECISION LINEAR OPTOCOUPLER

TIL300, TIL300A PRECISION LINEAR OPTOCOUPLER ac or dc Signal Coupling Wide Bandwidth...>200 khz High Transfer-Gain Stability...±0.0%/ C 00 V Peak Isolation UL Approval Pending Applications Power-Supply Feedback Medical-Sensor Isolation Opto Direct-Access

More information

Designing Linear Amplifiers Using the IL300 Optocoupler Appnote 50

Designing Linear Amplifiers Using the IL300 Optocoupler Appnote 50 Designing Linear Amplifiers Using the IL Optocoupler Appnote by Bob Krause Introduction This application note presents isolation amplifier circuit designs useful in industrial, instrumentation, medical,

More information

Designing Linear Amplifiers Using the IL300 Optocoupler

Designing Linear Amplifiers Using the IL300 Optocoupler VISHAY SEMICONDUCTORS www.vishay.com Optocouplers Application Note Designing Linear Amplifiers Using the IL Optocoupler By Deniz Görk and Achim M. Kruck INTRODUCTION This application note presents isolation

More information

Micropower, Single-Supply, Rail-to-Rail, Precision Instrumentation Amplifiers MAX4194 MAX4197

Micropower, Single-Supply, Rail-to-Rail, Precision Instrumentation Amplifiers MAX4194 MAX4197 General Description The is a variable-gain precision instrumentation amplifier that combines Rail-to-Rail single-supply operation, outstanding precision specifications, and a high gain bandwidth. This

More information

Dual operational amplifier

Dual operational amplifier DESCRIPTION The 77 is a pair of high-performance monolithic operational amplifiers constructed on a single silicon chip. High common-mode voltage range and absence of latch-up make the 77 ideal for use

More information

SGM MHz, 48μA, Rail-to-Rail I/O CMOS Operational Amplifier

SGM MHz, 48μA, Rail-to-Rail I/O CMOS Operational Amplifier PRODUCT DESCRIPTION The is a low cost, single rail-to-rail input and output voltage feedback amplifier. It has a wide input common mode voltage range and output voltage swing, and takes the minimum operating

More information

Isolated Industrial Current Loop Using the IL300 Linear Optocoupler Appnote 54

Isolated Industrial Current Loop Using the IL300 Linear Optocoupler Appnote 54 Isolated Industrial Current Loop Using the IL Linear Optocoupler by Bob Krause Introduction Programmable Logic Controllers (PLC) were once only found in large manufacturing firms but now are used in small

More information

LM13600 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers

LM13600 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers LM13600 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers General Description The LM13600 series consists of two current controlled transconductance amplifiers each with

More information

LM392/LM2924 Low Power Operational Amplifier/Voltage Comparator

LM392/LM2924 Low Power Operational Amplifier/Voltage Comparator LM392/LM2924 Low Power Operational Amplifier/Voltage Comparator General Description The LM392 series consists of 2 independent building block circuits. One is a high gain, internally frequency compensated

More information

Isolated Industrial Current Loop Using the IL300 Linear

Isolated Industrial Current Loop Using the IL300 Linear VISHAY SEMICONDUCTORS www.vishay.com Optocouplers and Solid-State Relays Application Note Isolated Industrial Current Loop Using the IL Linear INTRODUCTION Programmable logic controllers (PLC) were once

More information

LF411 Low Offset, Low Drift JFET Input Operational Amplifier

LF411 Low Offset, Low Drift JFET Input Operational Amplifier Low Offset, Low Drift JFET Input Operational Amplifier General Description These devices are low cost, high speed, JFET input operational amplifiers with very low input offset voltage and guaranteed input

More information

Single Supply, Rail to Rail Low Power FET-Input Op Amp AD820

Single Supply, Rail to Rail Low Power FET-Input Op Amp AD820 a FEATURES True Single Supply Operation Output Swings Rail-to-Rail Input Voltage Range Extends Below Ground Single Supply Capability from + V to + V Dual Supply Capability from. V to 8 V Excellent Load

More information

LM321 Low Power Single Op Amp

LM321 Low Power Single Op Amp Low Power Single Op Amp General Description The LM321 brings performance and economy to low power systems. With a high unity gain frequency and a guaranteed 0.4V/µs slew rate, the quiescent current is

More information

Distributed by: www.jameco.com 1-800-831-4242 The content and copyrights of the attached material are the property of its owner. LM392 Low Power Operational Amplifier/Voltage Comparator General Description

More information

Single-Supply, Rail-to-Rail, Low Power FET-Input Op Amp AD820

Single-Supply, Rail-to-Rail, Low Power FET-Input Op Amp AD820 Single-Supply, Rail-to-Rail, Low Power FET-Input Op Amp AD82 FEATURES True single-supply operation Output swings rail-to-rail Input voltage range extends below ground Single-supply capability from 5 V

More information

Single Supply, Rail to Rail Low Power FET-Input Op Amp AD820

Single Supply, Rail to Rail Low Power FET-Input Op Amp AD820 a FEATURES True Single Supply Operation Output Swings Rail-to-Rail Input Voltage Range Extends Below Ground Single Supply Capability from V to V Dual Supply Capability from. V to 8 V Excellent Load Drive

More information

Precision Micropower Single Supply Operational Amplifier OP777

Precision Micropower Single Supply Operational Amplifier OP777 a FEATURES Low Offset Voltage: 1 V Max Low Input Bias Current: 1 na Max Single-Supply Operation: 2.7 V to 3 V Dual-Supply Operation: 1.35 V to 15 V Low Supply Current: 27 A/Amp Unity Gain Stable No Phase

More information

LF442 Dual Low Power JFET Input Operational Amplifier

LF442 Dual Low Power JFET Input Operational Amplifier LF442 Dual Low Power JFET Input Operational Amplifier General Description The LF442 dual low power operational amplifiers provide many of the same AC characteristics as the industry standard LM1458 while

More information

LM13700 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers

LM13700 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers LM13700 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers General Description The LM13700 series consists of two current controlled transconductance amplifiers, each with

More information

LP2902/LP324 Micropower Quad Operational Amplifier

LP2902/LP324 Micropower Quad Operational Amplifier LP2902/LP324 Micropower Quad Operational Amplifier General Description The LP324 series consists of four independent, high gain internally compensated micropower operational amplifiers. These amplifiers

More information

LF147 - LF247 LF347 WIDE BANDWIDTH QUAD J-FET OPERATIONAL AMPLIFIERS

LF147 - LF247 LF347 WIDE BANDWIDTH QUAD J-FET OPERATIONAL AMPLIFIERS LF147 - LF247 LF347 WIDE BANDWIDTH QUAD J-FET OPERATIONAL AMPLIFIERS LOW POWER CONSUMPTION WIDE COMMON-MODE (UP TO V + CC ) AND DIFFERENTIAL VOLTAGE RANGE LOW INPUT BIAS AND OFFSET CURRENT OUTPUT SHORT-CIRCUIT

More information

KM4110/KM mA, Low Cost, +2.7V & +5V, 75MHz Rail-to-Rail Amplifiers

KM4110/KM mA, Low Cost, +2.7V & +5V, 75MHz Rail-to-Rail Amplifiers + + www.fairchildsemi.com KM411/KM41.5mA, Low Cost, +.7V & +5V, 75MHz Rail-to-Rail Amplifiers Features 55µA supply current 75MHz bandwidth Power down to I s = 33µA (KM41) Fully specified at +.7V and +5V

More information

LF155/LF156/LF355/LF356/LF357 JFET Input Operational Amplifiers

LF155/LF156/LF355/LF356/LF357 JFET Input Operational Amplifiers JFET Input Operational Amplifiers General Description These are the first monolithic JFET input operational amplifiers to incorporate well matched, high voltage JFETs on the same chip with standard bipolar

More information

Single-Supply, Rail-to-Rail, Low Power, FET Input Op Amp AD820

Single-Supply, Rail-to-Rail, Low Power, FET Input Op Amp AD820 Single-Supply, Rail-to-Rail, Low Power, FET Input Op Amp AD82 FEATURES True single-supply operation Output swings rail-to-rail Input voltage range extends below ground Single-supply capability from 5 V

More information

Linear Optocoupler for Optical DAA in Telecommunications, High Performance

Linear Optocoupler for Optical DAA in Telecommunications, High Performance Linear Optocoupler for Optical DAA in Telecommunications, High Performance FEATURES K A 1 2 K1 K2 8 K 7 A 2 mm high SMD package High sensitivity (K1) at low operating LED current Couples AC and DC signals

More information

Quad ground sense operational amplifier

Quad ground sense operational amplifier Quad ground sense operational amplifier BAA / BAAF / BAAFV The BAA, BAAF, and BAAFV are monolithic ICs with four built-in operational amplifiers featuring internal phase compensation. Either a dual or

More information

NJM324C. Low power quad operational amplifiers

NJM324C. Low power quad operational amplifiers Low power quad operational amplifiers Features Wide gain bandwidth:.mhz typ. Input common-mode voltage range includes ground Large voltage gain:db typ. Very low supply current per amplifier:ua typ. Low

More information

RC4136 General Performance Quad 741 Operational Amplifier

RC4136 General Performance Quad 741 Operational Amplifier RC General Performance Quad 7 Operational Amplifier www.fairchildsemi.com Features Unity gain bandwidth MHz Short circuit protection No frequency compensation required No latch-up Large common mode and

More information

Low power quad operational amplifiers

Low power quad operational amplifiers Low power quad operational amplifiers Features Wide gain bandwidth:.mhz typ. Input common-mode voltage range includes ground Large voltage gain:db typ. Very low supply current per amplifier:ua typ. Low

More information

HIGH VOLTAGE PHOTODARLINGTON OPTOCOUPLERS

HIGH VOLTAGE PHOTODARLINGTON OPTOCOUPLERS DESCRIPTION The HGX series are photodarlington-type optically coupled optocouplers. These devices have a gallium arsenide infrared emitting diode coupled with a silicon darlington connected phototransistor

More information

SGM8631/2/3 6MHz, Rail-to-Rail I/O CMOS Operational Amplifiers

SGM8631/2/3 6MHz, Rail-to-Rail I/O CMOS Operational Amplifiers /2/3 6MHz, Rail-to-Rail I/O PRODUCT DESCRIPTION The (single), SGM8632 (dual) and SGM8633 (single with shutdown) are low noise, low voltage, and low power operational amplifiers that can be designed into

More information

Quad Ground Sense Operational Amplifier. The CO324 is monolithic IC with four built-in operational amplifiers featuring internal phase compensation.

Quad Ground Sense Operational Amplifier. The CO324 is monolithic IC with four built-in operational amplifiers featuring internal phase compensation. The CO4 is monolithic IC with four built-in operational amplifiers featuring internal phase compensation. Either a dual or single power supply can be driven, and these products can be driven by a digital

More information

OLH7000: Hermetic Linear Optocoupler

OLH7000: Hermetic Linear Optocoupler DATA SHEET OLH7000: Hermetic Linear Optocoupler Features High reliability and rugged hermetic construction Couples AC and DC signals 1000 VDC electrical isolation Matched photodiodes Excellent linearity

More information

LF412 Low Offset, Low Drift Dual JFET Input Operational Amplifier

LF412 Low Offset, Low Drift Dual JFET Input Operational Amplifier LF412 Low Offset, Low Drift Dual JFET Input Operational Amplifier General Description These devices are low cost, high speed, JFET input operational amplifiers with very low input offset voltage and guaranteed

More information

LOC211PTR. Dual Linear Optocouplers INTEGRATED CIRCUITS DIVISION

LOC211PTR. Dual Linear Optocouplers INTEGRATED CIRCUITS DIVISION Dual Linear Optocouplers Parameter Rating Units LED Operating Range 2-0 ma K3, Transfer Gain 0.773-.072 - Isolation, Input to Output 3750 V rms Features 0.0% Servo Linearity THD -87dB Typical Wide Bandwidth

More information

V CC OUT MAX9945 IN+ V EE

V CC OUT MAX9945 IN+ V EE 19-4398; Rev 1; 12/ 38V, Low-Noise, MOS-Input, General Description The operational amplifier features an excellent combination of low operating power and low input voltage noise. In addition, MOS inputs

More information

CA3140, CA3140A. 4.5MHz, BiMOS Operational Amplifier with MOSFET Input/Bipolar Output. Description. Features. Applications. Ordering Information

CA3140, CA3140A. 4.5MHz, BiMOS Operational Amplifier with MOSFET Input/Bipolar Output. Description. Features. Applications. Ordering Information November 99 SEMICONDUCTOR CA, CAA.MHz, BiMOS Operational Amplifier with MOSFET Input/Bipolar Output Features MOSFET Input Stage - Very High Input Impedance (Z IN ) -.TΩ (Typ) - Very Low Input Current (I

More information

270 MHz, 400 μa Current Feedback Amplifier AD8005

270 MHz, 400 μa Current Feedback Amplifier AD8005 Data Sheet 27 MHz, μa Current Feedback Amplifier AD85 FEATURES Ultralow power μa power supply current ( mw on ±5 VS) Specified for single supply operation High speed 27 MHz, 3 db bandwidth (G = +) 7 MHz,

More information

ADA485-/ADA485- TABLE OF CONTENTS Features... Applications... Pin Configurations... General Description... Revision History... Specifications... 3 Spe

ADA485-/ADA485- TABLE OF CONTENTS Features... Applications... Pin Configurations... General Description... Revision History... Specifications... 3 Spe NC NC NC NC 5 6 7 8 6 NC 4 PD 3 PD FEATURES Ultralow power-down current: 5 na/amplifier maximum Low quiescent current:.4 ma/amplifier High speed 75 MHz, 3 db bandwidth V/μs slew rate 85 ns settling time

More information

OBSOLETE. High Performance, BiFET Operational Amplifiers AD542/AD544/AD547 REV. B

OBSOLETE. High Performance, BiFET Operational Amplifiers AD542/AD544/AD547 REV. B a FEATURES Ultralow Drift: 1 V/ C (AD547L) Low Offset Voltage: 0.25 mv (AD547L) Low Input Bias Currents: 25 pa max Low Quiescent Current: 1.5 ma Low Noise: 2 V p-p High Open Loop Gain: 110 db High Slew

More information

EE LINEAR INTEGRATED CIRCUITS & APPLICATIONS

EE LINEAR INTEGRATED CIRCUITS & APPLICATIONS UNITII CHARACTERISTICS OF OPAMP 1. What is an opamp? List its functions. The opamp is a multi terminal device, which internally is quite complex. It is a direct coupled high gain amplifier consisting of

More information

DUAL ULTRA MICROPOWER RAIL-TO-RAIL CMOS OPERATIONAL AMPLIFIER

DUAL ULTRA MICROPOWER RAIL-TO-RAIL CMOS OPERATIONAL AMPLIFIER ADVANCED LINEAR DEVICES, INC. ALD276A/ALD276B ALD276 DUAL ULTRA MICROPOWER RAILTORAIL CMOS OPERATIONAL AMPLIFIER GENERAL DESCRIPTION The ALD276 is a dual monolithic CMOS micropower high slewrate operational

More information

LM148/LM248/LM348 Quad 741 Op Amps

LM148/LM248/LM348 Quad 741 Op Amps Quad 741 Op Amps General Description The LM148 series is a true quad 741. It consists of four independent, high gain, internally compensated, low power operational amplifiers which have been designed to

More information

Rail Current Measurement IC

Rail Current Measurement IC Rail Current Measurement IC FP130A General Description The FP130A is a wide common mode range high side rail current measurement IC. It is suitable for power systems like battery charger or switching power

More information

Low Cost, Precision JFET Input Operational Amplifiers ADA4000-1/ADA4000-2/ADA4000-4

Low Cost, Precision JFET Input Operational Amplifiers ADA4000-1/ADA4000-2/ADA4000-4 Low Cost, Precision JFET Input Operational Amplifiers ADA-/ADA-/ADA- FEATURES High slew rate: V/μs Fast settling time Low offset voltage:.7 mv maximum Bias current: pa maximum ± V to ±8 V operation Low

More information

LM158/LM258/LM358/LM2904 Low Power Dual Operational Amplifiers

LM158/LM258/LM358/LM2904 Low Power Dual Operational Amplifiers LM158/LM258/LM358/LM2904 Low Power Dual Operational Amplifiers General Description The LM158 series consists of two independent, high gain, internally frequency compensated operational amplifiers which

More information

LM134/LM234/LM334 3-Terminal Adjustable Current Sources

LM134/LM234/LM334 3-Terminal Adjustable Current Sources 3-Terminal Adjustable Current Sources General Description The are 3-terminal adjustable current sources featuring 10,000:1 range in operating current, excellent current regulation and a wide dynamic voltage

More information

LF353 Wide Bandwidth Dual JFET Input Operational Amplifier

LF353 Wide Bandwidth Dual JFET Input Operational Amplifier LF353 Wide Bandwidth Dual JFET Input Operational Amplifier General Description These devices are low cost, high speed, dual JFET input operational amplifiers with an internally trimmed input offset voltage

More information

IFB270 Advanced Electronic Circuits

IFB270 Advanced Electronic Circuits IFB270 Advanced Electronic Circuits Chapter 14: Special-purpose op-amp circuits Prof. Manar Mohaisen Department of EEC Engineering eview of the Precedent Lecture Introduce the level detection op-amp circuits

More information

PIN CONFIGURATION FEATURES ORDERING INFORMATION EQUIVALENT CIRCUIT. D,F, N Packages

PIN CONFIGURATION FEATURES ORDERING INFORMATION EQUIVALENT CIRCUIT. D,F, N Packages DESCRIPTION The µa723/µa723c is a monolithic precision voltage regulator capable of operation in positive or negative supplies as a series, shunt, switching, or floating regulator. The 723 contains a temperature-compensated

More information

DUAL OPERATIONAL AMPLIFIER

DUAL OPERATIONAL AMPLIFIER DUAL OPERATIONAL AMPLIFIER FEATURES n Wide Power Supply Range Single Supply: 3V ~ 32V Dual Supplies: ±.V ~ ±6V n Lower Input Offset : 2mV (Typ.) n Input CommonMode Range Include Ground n Differential Input

More information

LM13700 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers

LM13700 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers LM13700 Dual Operational Transconductance Amplifiers with Linearizing Diodes and Buffers General Description The LM13700 series consists of two current controlled transconductance amplifiers, each with

More information

SGM8621/2/3/4 3MHz, Rail-to-Rail I/O CMOS Operational Amplifiers

SGM8621/2/3/4 3MHz, Rail-to-Rail I/O CMOS Operational Amplifiers SGM8621/2/3/4 3MHz, Rail-to-Rail I/O PRODUCT DESCRIPTION The SGM8621 (single), SGM8622 (dual), SGM8623 (single with shutdown) and SGM8624 (quad) are low noise, low voltage, and low power operational amplifiers,

More information

LM146/LM346 Programmable Quad Operational Amplifiers

LM146/LM346 Programmable Quad Operational Amplifiers LM146/LM346 Programmable Quad Operational Amplifiers General Description The LM146 series of quad op amps consists of four independent, high gain, internally compensated, low power, programmable amplifiers.

More information

HIGH POWER OP-AMP MSK0021FP

HIGH POWER OP-AMP MSK0021FP MILPRF8 AND 8 CERTIFIED FACILITY FEATURES: Available as SMD #9680880 High Output Current Amps Peak Low Power ConsumptionClass C Design Programmable Current Limit High Slew Rate Continuous Output Short

More information

LMC6081 Precision CMOS Single Operational Amplifier

LMC6081 Precision CMOS Single Operational Amplifier LMC6081 Precision CMOS Single Operational Amplifier General Description The LMC6081 is a precision low offset voltage operational amplifier, capable of single supply operation. Performance characteristics

More information

EC kHz, 7μA, CMOS, Rail-to-Rail Operational Amplifier. General Description. Features. Applications. Pin Assignments

EC kHz, 7μA, CMOS, Rail-to-Rail Operational Amplifier. General Description. Features. Applications. Pin Assignments General Description Features The is a single supply, low power CMOS operational amplifier; these amplifiers offer bandwidth of 250kHz, rail-to-rail inputs and outputs, and single-supply operation from

More information

Dual operational amplifier

Dual operational amplifier Dual operational amplifier The BA8, BA8F, and BA8N are monolithic ICs with two operational amplifiers featuring low power consumption and internal phase compensation mounted on a single silicon chip. These

More information

Low-Power Quad Operational Amplifier FEATURES: DESCRIPTION: Memory. Logic Diagram. RAD-PAK technology-hardened against natural space radiation

Low-Power Quad Operational Amplifier FEATURES: DESCRIPTION: Memory. Logic Diagram. RAD-PAK technology-hardened against natural space radiation Low-Power Quad Operational Amplifier FEATURES: RAD-PAK technology-hardened against natural space radiation Total dose hardness: - > 100 krad (Si), depending upon space mission Excellent Single Event Effects:

More information

Dual Channel PWM Controller with SCP / DTC Function

Dual Channel PWM Controller with SCP / DTC Function Dual Channel PWM Controller with SCP / DTC Function General Description The FP545A is a dual channel PWM buck controller with short circuit protection (SCP) and adjustable maximum duty control (DTC) function.

More information

HA-2600, HA Features. 12MHz, High Input Impedance Operational Amplifiers. Applications. Pinouts. Ordering Information

HA-2600, HA Features. 12MHz, High Input Impedance Operational Amplifiers. Applications. Pinouts. Ordering Information HA26, HA26 September 998 File Number 292.3 2MHz, High Input Impedance Operational Amplifiers HA26/26 are internally compensated bipolar operational amplifiers that feature very high input impedance (MΩ,

More information

NOT RECOMMENDED FOR NEW DESIGNS

NOT RECOMMENDED FOR NEW DESIGNS M.S.KENNEDY CORP. HIGH POWER DUAL OPERATIONAL AMPLIFIER ISO900 CERTIFIED BY DSCC 0 707 Dey Road Liverpool, N.Y. 3088 (3) 7067 FEATURES: Operates In Class AB Or Class C Mode MILPRF383 CERTIFIED Low Cost

More information

Ultralow Input Bias Current Operational Amplifier AD549

Ultralow Input Bias Current Operational Amplifier AD549 Ultralow Input Bias Current Operational Amplifier AD59 FEATURES Ultralow input bias current 60 fa maximum (AD59L) 250 fa maximum (AD59J) Input bias current guaranteed over the common-mode voltage range

More information

V CC OUT MAX9945 IN+ V EE

V CC OUT MAX9945 IN+ V EE 19-4398; Rev ; 2/9 38V, Low-Noise, MOS-Input, General Description The operational amplifier features an excellent combination of low operating power and low input voltage noise. In addition, MOS inputs

More information

Single-Supply, Rail-to-Rail Low Power FET-Input Op Amp AD822

Single-Supply, Rail-to-Rail Low Power FET-Input Op Amp AD822 Single-Supply, Rail-to-Rail Low Power FET-Input Op Amp AD822 FEATURES True single-supply operation Output swings rail-to-rail Input voltage range extends below ground Single-supply capability from 3 V

More information

OBSOLETE. Self-Contained Audio Preamplifier SSM2017 REV. B

OBSOLETE. Self-Contained Audio Preamplifier SSM2017 REV. B a FEATURES Excellent Noise Performance: 950 pv/ Hz or 1.5 db Noise Figure Ultralow THD: < 0.01% @ G = 100 Over the Full Audio Band Wide Bandwidth: 1 MHz @ G = 100 High Slew Rate: 17 V/ s typ Unity Gain

More information

OP-AMP Dey Road Liverpool, N.Y (315) MSK0041FP

OP-AMP Dey Road Liverpool, N.Y (315) MSK0041FP MILPRF85 AND 855 CERTIFIED FACILITY M.S KENNEDY CORP. MEDIUM HIGH POWER POWER OPAMP 00 SERIES 707 Dey Road Liverpool, N.Y. 088 (5) 70675 FEATURES: Available as SMD #596850870 Output Current 0.5 Amps Peak

More information

Homework Assignment 03

Homework Assignment 03 Homework Assignment 03 Question 1 (Short Takes), 2 points each unless otherwise noted. 1. Two 0.68 μf capacitors are connected in series across a 10 khz sine wave signal source. The total capacitive reactance

More information

LOC110STR. Single Linear Optocoupler INTEGRATED CIRCUITS DIVISION

LOC110STR. Single Linear Optocoupler INTEGRATED CIRCUITS DIVISION Single Linear Optocoupler Parameter Rating Units LED Operating Range 2-0 ma K3, Transfer Gain 0.668 -.79 - Isolation, Input to Output 3750 V rms Features 0.0% Servo Linearity THD -87dB Typical Wide Bandwidth

More information

LM6118/LM6218 Fast Settling Dual Operational Amplifiers

LM6118/LM6218 Fast Settling Dual Operational Amplifiers Fast Settling Dual Operational Amplifiers General Description The LM6118/LM6218 are monolithic fast-settling unity-gain-compensated dual operational amplifiers with ±20 ma output drive capability. The

More information

Self-Contained Audio Preamplifier SSM2019

Self-Contained Audio Preamplifier SSM2019 a FEATURES Excellent Noise Performance:. nv/ Hz or.5 db Noise Figure Ultra-low THD:

More information

APPLICATION NOTE AN-107. Linear Optocouplers

APPLICATION NOTE AN-107. Linear Optocouplers APPLICATION NOTE AN-07 Linear Optocouplers Introduction This application note describes isolation amplifier design principles for the LOC Series linear optocoupler devices. It describes the circuit operation

More information

Op Amp Booster Designs

Op Amp Booster Designs Op Amp Booster Designs Although modern integrated circuit operational amplifiers ease linear circuit design, IC processing limits amplifier output power. Many applications, however, require substantially

More information

Precision INSTRUMENTATION AMPLIFIER

Precision INSTRUMENTATION AMPLIFIER Precision INSTRUMENTATION AMPLIFIER FEATURES LOW OFFSET VOLTAGE: µv max LOW DRIFT:.µV/ C max LOW INPUT BIAS CURRENT: na max HIGH COMMON-MODE REJECTION: db min INPUT OVER-VOLTAGE PROTECTION: ±V WIDE SUPPLY

More information

OP07C PRECISION OPERATIONAL AMPLIFIERS

OP07C PRECISION OPERATIONAL AMPLIFIERS OP0C PRECISION OPERATIONAL AMPLIFIERS Low Noise No External Components Required Replace Chopper Amplifiers at a Lower Cost Wide Input-Voltage Range...0 to ± V Typ Wide Supply-Voltage Range...± V to ± V

More information

High Common-Mode Voltage, Programmable Gain Difference Amplifier AD628

High Common-Mode Voltage, Programmable Gain Difference Amplifier AD628 High Common-Mode Voltage, Programmable Gain Difference Amplifier AD628 FEATURES FUNCTIONAL BLOCK DIAGRAM High common-mode input voltage range ±20 V at VS = ±5 V Gain range 0. to 00 Operating temperature

More information

Low Power, Wide Supply Range, Low Cost Unity-Gain Difference Amplifier AD8276

Low Power, Wide Supply Range, Low Cost Unity-Gain Difference Amplifier AD8276 Low Power, Wide Supply Range, Low Cost Unity-Gain Difference Amplifier AD87 FEATURES Wide input range Rugged input overvoltage protection Low supply current: μa maximum Low power dissipation:. mw at VS

More information

LM2904AH. Low-power, dual operational amplifier. Related products. Description. Features. See LM2904WH for enhanced ESD performances

LM2904AH. Low-power, dual operational amplifier. Related products. Description. Features. See LM2904WH for enhanced ESD performances LM2904AH Low-power, dual operational amplifier Datasheet - production data Related products See LM2904WH for enhanced ESD performances Features Frequency compensation implemented internally Large DC voltage

More information

LM675 Power Operational Amplifier

LM675 Power Operational Amplifier LM675 Power Operational Amplifier General Description The LM675 is a monolithic power operational amplifier featuring wide bandwidth and low input offset voltage, making it equally suitable for AC and

More information

LM2900 LM3900 LM3301 Quad Amplifiers

LM2900 LM3900 LM3301 Quad Amplifiers LM2900 LM3900 LM3301 Quad Amplifiers General Description The LM2900 series consists of four independent dual input internally compensated amplifiers which were designed specifically to operate off of a

More information

HIGH VOLTAGE PHOTOTRANSISTOR OPTOCOUPLERS

HIGH VOLTAGE PHOTOTRANSISTOR OPTOCOUPLERS DESCRIPTION The HDX and 4N38 are phototransistor-type optically coupled optoisolators. An infrared emitting diode manufactured from specially grown gallium arsenide is selectively coupled with a high voltage

More information

Dual Precision, Low Cost, High Speed BiFET Op Amp AD712-EP

Dual Precision, Low Cost, High Speed BiFET Op Amp AD712-EP Dual Precision, Low Cost, High Speed BiFET Op Amp FEATURES Supports defense and aerospace applications (AQEC standard) Military temperature range ( 55 C to +125 C) Controlled manufacturing baseline One

More information

Homework Assignment 04

Homework Assignment 04 Question 1 (Short Takes) Homework Assignment 04 1. Consider the single-supply op-amp amplifier shown. What is the purpose of R 3? (1 point) Answer: This compensates for the op-amp s input bias current.

More information

High Current, High Power OPERATIONAL AMPLIFIER

High Current, High Power OPERATIONAL AMPLIFIER High Current, High Power OPERATIONAL AMPLIFIER FEATURES HIGH OUTPUT CURRENT: A WIDE POWER SUPPLY VOLTAGE: ±V to ±5V USER-SET CURRENT LIMIT SLEW RATE: V/µs FET INPUT: I B = pa max CLASS A/B OUTPUT STAGE

More information

TL494M PULSE-WIDTH-MODULATION CONTROL CIRCUIT

TL494M PULSE-WIDTH-MODULATION CONTROL CIRCUIT Complete PWM Power Control Circuitry Uncommitted Outputs for 00-mA Sink or Source Current Output Control Selects Single-Ended or Push-Pull Operation Internal Circuitry Prohibits Double Pulse at Either

More information

General-Purpose CMOS Rail-to-Rail Amplifiers AD8541/AD8542/AD8544

General-Purpose CMOS Rail-to-Rail Amplifiers AD8541/AD8542/AD8544 General-Purpose CMOS Rail-to-Rail Amplifiers AD854/AD8542/AD8544 FEATURES Single-supply operation: 2.7 V to 5.5 V Low supply current: 45 μa/amplifier Wide bandwidth: MHz No phase reversal Low input currents:

More information

Low Power, Wide Supply Range, Low Cost Difference Amplifiers, G = ½, 2 AD8278/AD8279

Low Power, Wide Supply Range, Low Cost Difference Amplifiers, G = ½, 2 AD8278/AD8279 Low Power, Wide Supply Range, Low Cost Difference Amplifiers, G = ½, 2 /AD8279 FEATURES Wide input range beyond supplies Rugged input overvoltage protection Low supply current: 2 μa maximum (per amplifier)

More information

TL082 Wide Bandwidth Dual JFET Input Operational Amplifier

TL082 Wide Bandwidth Dual JFET Input Operational Amplifier TL082 Wide Bandwidth Dual JFET Input Operational Amplifier General Description These devices are low cost, high speed, dual JFET input operational amplifiers with an internally trimmed input offset voltage

More information

LMC6064 Precision CMOS Quad Micropower Operational Amplifier

LMC6064 Precision CMOS Quad Micropower Operational Amplifier LMC6064 Precision CMOS Quad Micropower Operational Amplifier General Description The LMC6064 is a precision quad low offset voltage, micropower operational amplifier, capable of precision single supply

More information

CA723, CA723C. Voltage Regulators Adjustable from 2V to 37V at Output Currents Up to 150mA Without External Pass Transistors. Description.

CA723, CA723C. Voltage Regulators Adjustable from 2V to 37V at Output Currents Up to 150mA Without External Pass Transistors. Description. SEMICONDUCTOR CA73, CA73C April 199 Voltage Regulators Adjustable from V to 37V at Output Currents Up to 1mA Without External Pass Transistors Features Up to 1mA Output Current Positive and Negative Voltage

More information

UNISONIC TECHNOLOGIES CO., LTD LM321

UNISONIC TECHNOLOGIES CO., LTD LM321 UNISONIC TECHNOLOGIES CO., LTD LM321 LOW POWER SINGLE OP AMP DESCRIPTION The UTC LM321 s quiescent current is only 430µA (5V). The UTC LM321 brings performance and economy to low power systems, With a

More information

High Common-Mode Voltage Difference Amplifier AD629

High Common-Mode Voltage Difference Amplifier AD629 a FEATURES Improved Replacement for: INAP and INAKU V Common-Mode Voltage Range Input Protection to: V Common Mode V Differential Wide Power Supply Range (. V to V) V Output Swing on V Supply ma Max Power

More information

NE/SA5234 Matched quad high-performance low-voltage operational amplifier

NE/SA5234 Matched quad high-performance low-voltage operational amplifier INTEGRATED CIRCUITS Supersedes data of 2001 Aug 03 File under Integrated Circuits, IC11 Handbook 2002 Feb 22 DESCRIPTION The is a matched, low voltage, high performance quad operational amplifier. Among

More information

LF153 LF253 - LF353 WIDE BANDWIDTH DUAL J-FET OPERATIONAL AMPLIFIERS

LF153 LF253 - LF353 WIDE BANDWIDTH DUAL J-FET OPERATIONAL AMPLIFIERS LF153 LF253 - LF353 WIDE BANDWIDTH DUAL J-FET OPERATIONAL AMPLIFIERS LOW POWER CONSUMPTION WIDE COMMON-MODE (UP TO V + CC ) AND DIFFERENTIAL VOLTAGE RANGE LOW INPUT BIAS AND OFFSET CURRENT OUTPUT SHORT-CIRCUIT

More information