MAX4601CWE. Pin Configurations/Functional Diagrams/Truth Tables IN2 NO2 MAX4602 NO3 COM3 IN3 SSOP/SO/DIP MAX4602 LOGIC SWITCH OFF
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1 9-396; Rev ; /99 2.5Ω, Quad, SPST, General Description The MAX46/MAX462/MAX463 quad analog switches feature low on-resistance of 2.5Ω max. On-resistance is matched between switches to.5ω max and is flat (.5Ω max) over the specified signal range. Each switch can handle Rail-to-Rail analog signals. The offleakage current is only 2.5nA maximum at TA = +85 C. These analog switches are ideal in low-distortion applications and are the preferred solution over mechanical relays in automatic test equipment or applications where current switching is required. They have low power requirements, require less board space, and are more reliable than mechanical relays. The MAX46 has four normally closed (NC) switches, the MAX462 has four normally open (NO) switches, and the MAX463 has two NC and two NO switches. These switches operate from a single supply of +4.5 to +36 or from dual supplies of ±4.5 to ±2. All digital inputs have +.8 and +2.4 logic thresholds, ensuring TTL/CMOS-logic compatibility when using ±5 or a single +2 supply. Reed Relay Replacement Test Equipment Communication Systems PBX, PABX Systems Audio-Signal Routing Avionics Applications Features Low On-Resistance (2.5Ω max) Guaranteed RON Match Between Channels (.5Ω max) Guaranteed RON Flatness over Specified Signal Range (.5Ω max) Rail-to-Rail Signal Handling Guaranteed ESD Protection > 2 per Method 35.7 Single-Supply Operation: +4.5 to +36 Dual-Supply Operation: ±4.5 to ±2 TTL/CMOS-Compatible Control Inputs Ordering Information PART TEMP. RANGE PIN-PACKAGE MAX46CAE MAX46CWE MAX46CPE C to +7 C C to +7 C C to +7 C 6 SSOP 6 Wide SO 6 Plastic DIP MAX46EAE -4 C to +85 C 6 SSOP MAX46EWE -4 C to +85 C 6 Wide SO MAX46EPE -4 C to +85 C 6 Plastic DIP Ordering Information continued at end of data sheet. Pin Configurations/Functional Diagrams/Truth Tables MAX46/MAX462/MAX463 TOP IEW IN 6 IN2 IN 6 IN2 IN 6 IN2 COM 2 5 COM2 COM 2 5 COM2 COM 2 5 COM2 NC 3 4 NC2 NO 3 4 NO2 NO 3 4 NC2 4 5 MAX MAX MAX NC4 6 NC3 NO4 6 NO3 NO4 6 NC3 COM4 7 COM3 COM4 7 COM3 COM4 7 COM3 IN4 8 9 IN3 IN4 8 9 IN3 IN4 8 9 IN3 SSOP/SO/DIP MAX46 LOGIC SWITCH ON Rail-to-Rail is a registered trademark of Nippon Motorola, Ltd. SSOP/SO/DIP MAX462 LOGIC SWITCH ON SWITCHES SHOWN FOR LOGIC INPUT SSOP/SO/DIP MAX463 LOGIC SWITCHES, 4 SWITCHES 2, 3 Maxim Integrated Products For free samples & the latest literature: or phone For small orders, phone ON ON
2 MAX46/MAX462/MAX463 ABSOLUTE MAXIMUM RATINGS to to +44 to to -44 to to +44 to...( -.3) to ( +.3) All Other Pins to D (Note )...( -.3) to ( +.3) Continuous Current (COM_, NO_, NC_)...±2mA Peak Current (COM_, NO_, NC_) (pulsed at ms, % duty cycle)... ±3mA Continuous Power Dissipation (T A = +7 C) 6 SSOP (derate 7.mW/ C above +7 C)...57mW 6 Wide SO (derate 9.52mW/ C above +7 C)...762mW 6 Plastic DIP (derate.53mw/ C above +7 C)...842mW Operating Temperature Ranges MAX46_C_E... C to +7 C MAX46_E_E...-4 C to +85 C Storage Temperature Range C to +6 C Lead Temperature (soldering, sec)...+3 C Note : Signals on NC_, NO_, COM_, or IN_ exceeding or will be clamped by internal diodes. Limit forward diode current to maximum current rating. Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those indicated in the operational sections of the specifications is not implied. Exposure to absolute maximum rating conditions for extended periods may affect device reliability. ELECTRICAL CHARACTERISTICS Dual Supplies ( = +5, = -5, = 5, IN_H = 2.4, IN_L =.8,, unless otherwise noted. Typical values are at.) PARAMETER ANALOG SWITCH Input oltage Range COM_ to NO or NC_ On-Resistance SYMBOL COM_, NO_, NC_ R ON (Note 3) CONDITIONS I COM_ = ma, NO_ or NC_ = ± MIN TYP MAX (Note 2) UNITS Ω COM_ to NO_ or NC_ On-Resistance Match Between Channels (Note 4) R ON I COM_ = ma, NO_ or = NC_ = ±..5 Ω COM_ to NO_ or NC_ On-Resistance Flatness (Note 5) R FLAT(ON) I COM_ = ma; NO_ or NC_ = -5,, Ω Off-Leakage Current (NO_ or NC_) (Note 6) I NO_, I NC_ COM_ = ±, NO_ or NC_ = na COM Off-Leakage Current (Note 6) I COM_() COM_ = ±, NO_ or NC_ = na COM On-Leakage Current (Note 6) I COM_(ON) COM_ = ±, NO_ or NC_ = ± or floating na LOGIC INPUT Input Current with Input oltage High I IN_H IN_ = 2.4, all others = Input Current with Input oltage Low I IN_L IN_ =.8, all others = Logic Input High oltage IN_H Logic Input Low oltage IN_L.7.8 2
3 ELECTRICAL CHARACTERISTICS Dual Supplies (continued) ( = +5, = -5, = 5, IN_H = 2.4, IN_L =.8,, unless otherwise noted. Typical values are at.) PARAMETER POWER SUPPLY Power-Supply Range Positive Supply Current Negative Supply Current Logic Supply Current Ground Current Charge Injection Off-Isolation (Note 7) Crosstalk (Note 8) NC_ or NO_ Capacitance COM Off-Capacitance On-Capacitance SYMBOL I+ I- I L I SWITCH DYNAMIC CHARACTERISTICS Turn-On Time t ON Turn-Off Time t Q ISO CT C () C (COM) C (COM) CONDITIONS All channels on or off, IN = or 5 All channels on or off, IN = or 5 All channels on or off, IN = or 5 All channels on or off, IN = or 5 Figure 2, COM_ = ±, Figure 2, COM_ = ±, C L =.nf, GEN =, R GEN =, Figure 3, R L = 5Ω, C L = 5pF, f = MHz, Figure 4, R L = 5Ω, C L = 5pF, f = MHz, Figure 5, f = MHz, Figure 6, f = MHz, Figure 6, f = MHz, Figure 7, MIN TYP MAX ±4.5 ± UNITS ns ns pc db db pf pf pf MAX46/MAX462/MAX463 3
4 MAX46/MAX462/MAX463 ELECTRICAL CHARACTERISTICS Single +2 Supply ( = 2, =, = 5, IN_H = 2.4, IN_L =.8,, unless otherwise noted. Typical values are at.) PARAMETER ANALOG SWITCH Input oltage Range COM_ to NO or NC_ On-Resistance COM_ to NO_ or NC_ On-Resistance Match Between Channels (Note 4) COM_ to NO_ or NC_ On-Resistance Flatness (Note 5) Off-Leakage Current (NO_ or NC_) (Notes 6, 9) COM Off-Leakage Current (Notes 6, 9) COM On-Leakage Current (Notes 6, 9) LOGIC INPUT Input Current with Input oltage High SYMBOL COM_, NO_, NC_ R ON R ON R FLAT(ON) I NO_ I NC_ I COM_() I COM_(ON) I IN_H (Note 3) I COM_ = ma, NO_ or NC_ = CONDITIONS I COM_ = ma, NO_ or = NC_ = I COM_ = ma; NO_ or NC_ = 3, 6, 9 COM_ =, ; NO_ or NC_ =, NO_ or NC_ =, ; COM_ =, COM_ =,; NO_ or NC_ =,, or floating IN_ = 2.4, all others =.8 MIN TYP MAX (Note 2) UNITS Ω Ω Ω na na na Input Current with Input oltage Low Logic Input High oltage Logic Input Low oltage POWER SUPPLY I IN_L IN_H IN_L IN_ =.8, all others = Power-Supply Range Positive Supply Current I+ All channels on or off, IN = or Logic Supply Current I L All channels on or off, IN = or Ground Current I IN = or
5 ELECTRICAL CHARACTERISTICS Single +2 Supply (continued) ( = 2, =, = 5, IN_H = 2.4, IN_L =.8,, unless otherwise noted. Typical values are at.) PARAMETER SYMBOL SWITCH DYNAMIC CHARACTERISTICS CONDITIONS MIN TYP MAX (Note 2) Turn-On Time t ON Figure 2, COM_ =, 6 ns Turn-Off Time t Figure 2, COM_ =, 7 ns C L =.nf, GEN =, R GEN =, Figure 3, Charge Injection Q 2 pc R L = 5Ω, C L = 5pF, f = MHz, Figure 5, Crosstalk (Note 8) CT -6 db NC_ or NO_ Capacitance C () f = MHz, Figure 6, 85 pf COM Off-Capacitance C (COM) f = MHz, Figure 6, 85 pf On-Capacitance C (COM) f = MHz, Figure 7, 4 pf Note 2: The algebraic convention, where the most negative value is a minimum and the most positive value a maximum, is used in this data sheet. Note 3: Guaranteed by design. Note 4: R ON = R ON(MAX) - R ON(MIN). Note 5: Flatness is defined as the difference between the maximum and minimum value of on-resistance as measured over the specified analog signal range. Note 6: Leakage parameters are % tested at maximum-rated hot temperature and guaranteed by correlation at +25 C. Note 7: Off-isolation = 2 log [ COM / ( NC or NO )], COM = output, NC or NO = input to off switch. Note 8: Between any two switches. Note 9: Leakage testing at single supply is guaranteed by testing with dual supplies. UNITS MAX46/MAX462/MAX463 5
6 MAX46/MAX462/MAX463 (, unless otherwise noted.) RON (Ω) Q (pc) ON-RESISTANCE vs. COM (SINGLE SUPPLY) = 5 = COM () = 24 CHARGE INJECTION vs. COM = 5 = -5 = 5 = MAX46 toc MAX46 toc 4 RON (Ω) I+, I- (na) k k.. ON-RESISTANCE vs. COM AND TEMPERATURE (SINGLE SUPPLY) = COM () = 5 = -5 Typical Operating Characteristics T A = +85 C T A = -4 C POWER-SUPPLY CURRENT vs. TEMPERATURE I+ I- MAX46 toc 2 MAX46 toc 5 LEAKAGE (pa) ton, t (ns) k k k.. m.m = 5 = -5 ON/-LEAKAGE CURRENT vs. TEMPERATURE ON-LEAKAGE -LEAKAGE TEMPERATURE ( C) COM = R L = Ω C L = 35pF TURN-ON/ TIME vs. TEMPERATURE t t ON MAX46 toc 3 MAX46 toc 6 ton, t (ns) COM () TURN-ON/ TIME vs. SUPPLY OLTAGE t t ON COM = R L = Ω C L = 35pF = () MAX46 toc 7 ton, t (ns) TEMPERATURE ( C) R L = Ω C L = 35pF TURN-ON/ TIME vs. COM t t ON COM () MAX46 toc 8 LOSS (db) TEMPERATURE ( C) FREQUENCY RESPONSE ON-PHASE ON-RESPONSE -ISOLATION MAX46 toc FREQUENCY (MHz) PHASE (degrees) 6
7 (, unless otherwise noted.) MAX46 RON (Ω) PIN MAX462 ON-RESISTANCE vs. COM (DUAL SUPPLIES), = ±5, = ± COM () MAX463 Typical Operating Characteristics (continued), = ±2 NAME MAX46 toc RON (Ω) ON-RESISTANCE vs. COM AND TEMPERATURE (DUAL SUPPLIES) T A = +85 C.25, = ± COM () FUNCTION T A = -4 C MAX46 toc Pin Description MAX46/MAX462/MAX463, 6, 9, 8, 6, 9, 8, 6, 9, 8 IN, IN2, IN3, IN4 Logic-Control Digital Inputs 2, 5,, 7 2, 5,, 7 2, 5,, 7 COM, COM2, COM3, COM4 Analog Switch Common Terminals 3, 4,, 6 NC, NC2, NC3, NC4 Analog Switch Normally Closed Terminals 3, 4,, 6 NO, NO2, NO3, NO4 Analog Switch Normally Open Terminals 3, 6 NO, NO4 Analog Switch Normally Open Terminals 4, NC2, NC3 Analog Switch Normally Closed Terminals Negative Analog Supply-oltage Input. Connect to for singlesupply operation Ground Logic-Supply Input Positive Analog Supply Input 7
8 MAX46/MAX462/MAX463 Applications Information Overvoltage Protection Proper power-supply sequencing is recommended for all CMOS devices. Do not exceed the absolute maximum ratings, because stresses beyond the listed ratings can cause permanent damage to the devices. Always sequence on first, then, followed by the logic inputs, NO, or COM. If power-supply sequencing is not possible, add two small signal diodes (D, D2) in series with the supply pins for overvoltage protection (Figure ). Adding diodes reduces the analog signal range to one diode drop below and one diode drop above, but does not affect the devices low switch resistance and low leakage characteristics. Device operation is unchanged, and the difference between and should not exceed 44. These protection diodes are not recommended when using a single supply. Off-Isolation at High Frequencies In 5Ω systems, the high-frequency on-response of these parts extends from DC to above MHz with a typical loss of -2dB. When the switch is turned off, however, it behaves like a capacitor, and off-isolation decreases with increasing frequency. (Above 3MHz, the switch actually passes more signal turned off than turned on.) This effect is more pronounced with higher source and load impedances. Above 5MHz, circuit board layout becomes critical, and it becomes difficult to characterize the response of the switch independent of the circuit. The graphs shown in the Typical Operating Characteristics were taken using a 5Ω source and load connected with BNC connectors to a circuit board deemed average; that is, designed with isolation in mind, but not using strip-line or other special RF circuit techniques. For critical applications above 5MHz, use the MAX44, MAX44, and MAX442, which are fully characterized up to 6MHz. COM_ * INTERNAL PROTECTION DIODES * * +5-5 D D2 * * MAX46 MAX462 MAX463 NO_ Figure. Overvoltage Protection Using External Blocking Diodes Timing Diagrams/Test Circuits LOGIC INPUT +3 5% tr < 2ns tf < 2ns SWITCH INPUT COM_ COM_ NO_ OR NC_ MAX46 MAX462 MAX463 SWITCH OUTPUT O t IN_ R L Ω C L 35pF SWITCH OUTPUT O t ON.9.9 LOGIC INPUT WAEFORMS INERTED FOR SWITCHES THAT HAE THE OPPOSITE LOGIC SENSE. LOGIC INPUT -5 REPEAT TEST FOR EACH SWITCH. FOR LOAD CONDITIONS, SEE Electrical Characteristics. C L INCLUDES FIXTURE AND STRAY CAPACITANCE. O = COM ( R L R L + R ON ) Figure 2. Switching-Time Test Circuit 8
9 MAX46 MAX462 MAX463 GEN R GEN +5 COM Figure 3. Charge-Injection Test Circuit IN +5 NC OR NO -5 IN = +3 Timing Diagrams/Test Circuits (continued) C L O O IN IN ON ON Q = ( O )(C L ) O IN DEPENDS ON SWITCH CONFIGURATION; INPUT POLARITY DETERMINED BY SENSE OF SWITCH. MAX46/MAX462/MAX463 SIGNAL GENERATOR dbm C MAX46 MAX462 MAX463 SIGNAL GENERATOR dbm C +5 COM +5 N MAX46 MAX462 MAX463 5Ω COM IN, 2.4, 2.4 IN IN2, 2.4 ANALYZER R L COM NC OR NO C ANALYZER R L N2 COM2 C NC -5-5 Figure 4. Off-Isolation Test Circuit Figure 5. Crosstalk Test Circuit 9
10 MAX46/MAX462/MAX463 CAPACITANCE METER f = MHz C +5 COM NC OR NO +5-5 Figure 6. Switch Off-Capacitance Test Circuit IN C MAX46 MAX462 MAX463 or 2.4 Ordering Information (continued) PART TEMP. RANGE PIN-PACKAGE MAX462CAE C to +7 C 6 SSOP MAX462CWE C to +7 C 6 Wide SO MAX462CPE C to +7 C 6 Plastic DIP MAX462EAE -4 C to +85 C 6 SSOP MAX462EWE -4 C to +85 C 6 Wide SO MAX462EPE -4 C to +85 C 6 Plastic DIP MAX463CAE C to +7 C 6 SSOP MAX463CWE C to +7 C 6 Wide SO MAX463CPE C to +7 C 6 Plastic DIP MAX463EAE -4 C to +85 C 6 SSOP MAX463EWE -4 C to +85 C 6 Wide SO MAX463EPE -4 C to +85 C 6 Plastic DIP Timing Diagrams/Test Circuits (continued) CAPACITANCE METER f = MHz C +5 COM NC OR NO +5-5 Figure 7. Switch On-Capacitance Test Circuit TRANSISTOR COUNT: IN MAX46 MAX462 MAX463 C or 2.4 Chip Information
11 Package Information SSOP.EPS MAX46/MAX462/MAX463
12 MAX46/MAX462/MAX463 Package Information SOICW.EPS Maxim cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim product. No circuit patent licenses are implied. Maxim reserves the right to change the circuitry and specifications without notice at any time. 2 Maxim Integrated Products, 2 San Gabriel Drive, Sunnyvale, CA Maxim Integrated Products Printed USA is a registered trademark of Maxim Integrated Products.
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