Low-power, high-accuracy, general-purpose operational amplifier. See LMV82x series for higher gain bandwidth product (5.5 MHz) SC70-5 SOT23-5 SOT23-6

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1 Low-power, high-accuracy, general-purpose operational amplifier Datasheet - production data Related products See LMV82x series for higher gain bandwidth product (5.5 MHz) SC7-5 SOT23-5 SOT23-6 Applications Battery-powered applications Portable devices Automotive signal conditioning DFN8 2x2 SO8 MiniSO8 MiniSO1 Active filtering Medical instrumentation Description SO14 Features Low power consumption: 18 µa max at 5 V Low power shutdown mode: 5 na max Low offset voltage:.8 mv max at 25 C Tiny packages Extended temperature range: -4 C to 125 C Low supply voltage: 2.3 V V Gain bandwidth product: 1.3 MHz Automotive qualification Benefits TSSOP14 TSSOP16 QFN16 3x3 Longer lifetime in battery-powered applications Higher accuracy without calibration Smaller form factor than equivalent competitor devices Application performances guaranteed over wide temperature ranges The TSV85x, TSV85xA series of single, dual, and quad operational amplifiers offer low voltage operation with a rail-to-rail output swing. The TSV85x, TSV85xA series outperforms the industry standard LMV321, proposing lower supply voltage capability, enhanced input offset voltage, and smaller packages. The devices are offered with either industry standard pinouts or with a power-saving shutdown feature that reduces the supply current to a maximum of 5 na at 25 C. The wide temperature range, high ESD tolerance, and automotive grade qualification ease the use in harsh automotive applications. Table 1. Device summary Without shutdown feature Standard Vio Enhanced Vio With shutdown feature Standard Vio Enhanced Vio Single TSV851 TSV851A TSV85 TSV85A Dual TSV852 TSV852A TSV853 TSV853A Quad TSV854 TSV854A TSV855 TSV855A October 213 DocID22468 Rev 3 1/ This is information on a product in full production.

2 Contents TSV85x, TSV85xA Contents 1 Package pin connections Absolute maximum ratings and operating conditions Electrical characteristics Application information Operating voltages Input common-mode range Rail-to-rail output Input offset voltage drift over temperature PCB layouts Macromodel Shutdown function Package information SC7-5 (or SOT323-5) package information SOT23-5 package information SOT23-6 package information DFN8 package information SO8 package information MiniSO8 package information MiniSO1 package information SO14 package information TSSOP14 package information TSSOP16 package information QFN16 3x3 package information Ordering information Revision history / DocID22468 Rev 3

3 Package pin connections 1 Package pin connections Figure 1. Pin connections for each package (top view) In+ 1 5 Vcc+ In+ 1 6 V CC+ Vcc- 2 V CC- 2 + _ 5 SHDN In- 3 4 Out In- 3 4 Out SC7-5/SOT23-5 SOT23-6 Out1 1 8 Vcc+ In1- In Out2 In2- Vcc- 4 5 In2+ DFN8 2x2 SO8/MiniSO8 Out1 In1- In _ + _ V CC+ Out2 In Out1 In1- In1+ Vcc+ Out4 In4- In4+ Vcc- V CC In2+ In In3+ SHDN1 5 6 SHDN2 6 9 In2- In3- MiniSO1 Out2 7 8 Out3 SO14/TSSOP14 Out1 In1- In _ + _ Out4 In4- In4+ V CC+ In _ + _ V CC- In3+ In2- Out2 SHDN1/ In3- Out3 SHDN3/4 TSSOP16 QFN16 3x3 1. The exposed pads of the DFN8 2x2 and QFN16 3x3 can be connected to VCC- or left floating. DocID22468 Rev 3 3/

4 Absolute maximum ratings and operating conditions TSV85x, TSV85xA 2 Absolute maximum ratings and operating conditions Table 2. Absolute maximum ratings (AMR) Symbol Parameter Value Unit V CC Supply voltage (1) 6 V id Differential input voltage (2) ±V CC V V in Input pins (IN+ and IN- pins) voltage (3) V cc- -.3 to V cc+ +.3 I in Input current (4) 1 ma SHDN Shutdown voltage (5) V CC- -.2 to V CC+ +.2 V T stg Storage temperature -65 to +15 C Thermal resistance junction to ambient (6)(7) SC SOT SOT DFN8 2x2 57 R thja SO8 125 MiniSO8 19 C/W MiniSO1 113 SO14 15 TSSOP14 1 TSSOP16 95 QFN16 3x3 45 T j Maximum junction temperature 15 C ESD HBM: human body model (except shutdown pin) (8) 4 kv HBM: human body model (shutdown pin) (8) 3.5 MM: machine model (9) 25 V CDM: charged device model (1) 1.3 kv CDM: charged device model TSV855 (1) 1 Latch-up immunity 2 ma 1. All voltage values, except differential voltage, are with respect to network ground terminal. 2. The differential voltage is the non-inverting input terminal with respect to the inverting input terminal. 3. V CC -V in must not exceed 6 V, V in must not exceed 6 V. 4. Input current must be limited by a resistor in series with the inputs. 5. V CC -V shdn must not exceed 6 V, V in must not exceed 6 V. 6. Short-circuits can cause excessive heating and destructive dissipation. 7. R th are typical values. 8. Human body model: 1 pf discharged through a 1.5 kω resistor between two pins of the device, done for all couples of pin combinations with other pins floating. 9. Machine model: a 2 pf cap is charged to the specified voltage, then discharged directly between two pins of the device with no external series resistor (internal resistor < 5 Ω), done for all couples of pin combinations with other pins floating. 1. Charged device model: all pins plus package are charged together to the specified voltage and then discharged directly to the ground. 4/ DocID22468 Rev 3

5 Absolute maximum ratings and operating conditions Table 3. Operating conditions Symbol Parameter Value Unit V CC Supply voltage 2.3 to 5.5 V icm Common mode input voltage range V CC- -.2 to V CC+ - 1 V T oper Operating free air temperature range -4 to +125 C DocID22468 Rev 3 5/

6 Electrical characteristics TSV85x, TSV85xA 3 Electrical characteristics Table 4. Electrical characteristics at V CC+ = 2.7 V with V CC- = V, V icm = V CC /2, T amb = 25 C, and R L connected to V CC /2 (unless otherwise specified) Symbol Parameter Conditions Min. Typ. Max. Unit DC performance V io Input offset voltage TSV85xA, T = 25 C.8 TSV85x, T = 25 C 4 TSV85xA, -4 C < T< 125 C 2 TSV85x, -4 C < T< 125 C 6 ΔV io /ΔT Input offset voltage drift (1) -4 C < T< 125 C 1 μv/ C I io Input offset current (V out = V cc /2) I ib Input bias current (V out = V cc /2) CMR A vd V CC -V OH V OL I out I CC Common mode rejection ratio 2 log (ΔV icm /ΔV io ) (Vic = V to V cc -1V, V out = V cc /2) Large signal voltage gain (V out =.5V to (V cc -.5V)) High level output voltage Low level output voltage I sink (V out = V cc ) V id = -1 V I source (V out = V) Vid = 1 V Supply current (per channel) No load, V out = V CC /2 T = 25 C C < T< 125 C 1 5 T = 25 C C < T< 125 C 11 T = 25 C C < T< 125 C 68 R L = 1 kω, T = 25 C 1 11 R L = 1 kω, -4 C < T< 125 C 9 R L = 2 kω, T = 25 C 9 1 R L = 2 kω, -4 C < T< 125 C 8 R L = 1 kω, T = 25 C 1 1 R L = 1 kω, -4 C < T< 125 C 2 R L = 2 kω, T = 25 C 4 3 R L = 2 kω, -4 C < T< 125 C 4 R L = 1 kω, T = 25 C R L = 1 kω, -4 C < T< 125 C 28 R L = 2 kω, T = 25 C 12 3 R L = 2 kω, -4 C < T< 125 C 4 T = 25 C C < T< 125 C 15 T = 25 C C < T< 125 C 12 T = 25 C C < T< 125 C 18 mv na db mv ma µa 6/ DocID22468 Rev 3

7 Electrical characteristics Table 4. Electrical characteristics at V CC+ = 2.7 V with V CC- = V, V icm = V CC /2, T amb = 25 C, and R L connected to V CC /2 (unless otherwise specified) (continued) Symbol Parameter Conditions Min. Typ. Max. Unit AC performance GBP Gain bandwidth product 1.3 MHz F u Unity gain frequency 1 R L > 1 MΩ, C L = 2 pf Φ m Phase margin 6 degrees G m Gain margin 1 db SR e n Slew rate Equivalent input noise voltage R L > 1 MΩ, C L = 2 pf V out =.5 V to V CC -.5V f = 1 khz f = 1 khz i n Equivalent input noise current f = 1 khz.3 THD+N Total harmonic distortion + noise 1. See Section 4.4: Input offset voltage drift over temperature. f in = 1 khz, A CL = 1, R L = 1 kω, Vicm = Vcc/2, BW = 22 khz, Vout = 1 Vpp.6 V/μs 2 nv Hz pa Hz.2 % Table 5. Shutdown characteristics V CC = 2.7 V Symbol Parameter Conditions Min. Typ. Max. Unit DC performance SHDN = V CC Supply current in shutdown I CC -4 C < T< 85 C 2 mode (all operators) na -4 C < T< 125 C 1.5 µa t on Amplifier turn-on time (1) R L = 2 kω, V out = V CC- to V CC V 3 t off Amplifier turn-off time (1) R L = 2 kω, Vout = V CC+ - 1 V to V CC V 2 ns V V IH SHDN logic high CC -.5 V V IL SHDN logic low.5 I IH SHDN current high SHDN = V CC+ 1 I IL SHDN current low SHDN = V CC- 1 I OLeak Output leakage in shutdown mode 1. See Section 4.7: Shutdown function. SHDN = V CC- 5-4 C < T< 125 C 1 na pa DocID22468 Rev 3 7/

8 Electrical characteristics TSV85x, TSV85xA Table 6. Electrical characteristics at V CC+ = 5 V with V CC- = V, V icm = V CC /2, T amb = 25 C, and R L connected to V CC /2 (unless otherwise specified) Symbol Parameter Conditions Min. Typ. Max. Unit DC performance V io Input offset voltage TSV85xA, T = 25 C.8 TSV85x, T = 25 C 4 TSV85xA, -4 C < T< 125 C 2 TSV85x, -4 C < T< 125 C 6 ΔV io /ΔT Input offset voltage drift (1) -4 C < T< 125 C 1 μv/ C I io Input offset current (V out = V cc /2) I ib Input bias current (V out = V cc /2) CMR SVR A vd V CC -V OH V OL I out I CC Common mode rejection ratio 2 log (ΔV icm /ΔV io ) (Vic = V to V cc -1V, V out = V cc /2) Supply voltage rejection ratio: 2 log (ΔV cc /ΔV io ) V cc = 2.5 to 5 V Large signal voltage gain (V out =.5V to (V CC -.5V)) High level output voltage Low level output voltage I sink ( V out = V CC) V id = -1 V I source (V out = V) V id = 1 V Supply current (per channel) No load, V out = V CC /2 T = 25 C C < T< 125 C 1 5 T = 25 C C < T< 125 C 11 T = 25 C C < T< 125 C 7 T = 25 C C < T< 125 C 7 R L = 1 kω, T = 25 C 1 11 R L = 1 kω, -4 C < T< 125 C 9 R L = 2 kω, T = 25 C 9 1 R L = 2 kω, -4 C < T< 125 C 8 R L = 1 kω, T=25 C 1 1 R L = 1 kω, -4 C < T< 125 C 2 R L = 2 kω, T = 25 C 4 3 R L = 2 kω, -4 C < T< 125 C 4 R L = 1 kω, T = 25 C R L = 1 kω, -4 C < T< 125 C 28 R L = 2 kω, T = 25 C 12 3 R L = 2 kω, -4 C < T< 125 C 4 T = 25 C C < T< 125 C 25 T = 25 C C < T< 125 C 5 T = 25 C C < T< 125 C 18 mv na db mv ma µa 8/ DocID22468 Rev 3

9 Electrical characteristics Table 6. Electrical characteristics at V CC+ = 5 V with V CC- = V, V icm = V CC /2, T amb = 25 C, and R L connected to V CC /2 (unless otherwise specified) (continued) Symbol Parameter Conditions Min. Typ. Max. Unit AC performance GBP Gain bandwidth product 1.3 MHz F u Unity gain frequency 1 R L > 1 MΩ, C L = 2 pf Φ m Phase margin 6 degrees G m Gain margin 1 db SR e n Slew rate Equivalent input noise voltage R L > 1 MΩ, C L = 2 pf V out =.5 V to V CC -.5V f = 1 khz f = 1 khz i n Equivalent input noise current f = 1 khz.3 THD+N Total harmonic distortion + noise 1. See Section 4.4: Input offset voltage drift over temperature. f in = 1 khz, A CL = 1, R L = 1 kω, Vicm = Vcc/2, BW = 22 khz, Vout = 1 Vpp.7 V/μs 3 2 nv Hz pa Hz.2 % Table 7. Shutdown characteristics V CC = 5 V Symbol Parameter Conditions Min. Typ. Max. Unit DC performance SHDN = V CC Supply current in shutdown I CC -4 C < T< 85 C 2 mode (per channel) na -4 C < T< 125 C 1.5 µa t on Amplifier turn-on time (1) R L = 2 kω, V out = V CC- to V CC V 3 t off Amplifier turn-off time (1) R L = 2 kω, Vout = V CC+ - 1 V to V CC V 2 ns V V IH SHDN logic high CC -.5 V V IL SHDN logic low.5 I IH SHDN current high SHDN = V CC+ 1 I IL SHDN current low SHDN = V CC- 1 I OLeak Output leakage in shutdown mode 1. See Section 4.7: Shutdown function. SHDN = V CC- 5-4 C < T< 125 C 1 na pa DocID22468 Rev 3 9/

10 Electrical characteristics TSV85x, TSV85xA Figure 2. Supply current vs. supply voltage at V icm = V CC /2 Figure 3. Vio distribution at V CC = 5 V Supply Current (ma) Population (%) Vcc=5V Vicm=2.5V. Vicm=Vcc/ Supply Voltage (V) Input offset voltage (mv) Figure 4. Input offset voltage vs. input common mode voltage at V CC = 5 V Figure 5. Output current vs. output voltage at V CC = 2.7 V Input Offset Voltage (mv) Vcc=5V Input Common Mode Voltage (V) Output Current (ma) Sink Vid=-1V Vcc=2.7V -2 Source -3 Vid=1V Output Voltage (V) Figure 6. Output current vs. output voltage at V CC = 5 V Figure 7. Output current vs. supply voltage at V icm = V CC /2 Output Current (ma) 1 Sink 75 Vid=-1V Vcc=5V -75 Source Vid=1V Output Voltage (V) Output Current (ma) 1 Sink 75 Vid=-1V Source Vid=1V Vicm=Vcc/ Supply Voltage (V) 1/ DocID22468 Rev 3

11 Electrical characteristics Figure 8. Voltage gain and phase with Cl = 1 pf Figure 9. Voltage gain and phase with Cl = 2 pf 4 Gain 4 Gain Gain (db) 1 Phase -135 Phase ( ) Gain (db) 1 Phase -135 Phase ( ) Vcc=5V -18 Vicm=2.5V -1 Rl=5kΩ Cl=1pF -225 Gain= k 1k 1M 1M Frequency (Hz) Vcc=5V -18 Vicm=2.5V -1 Rl=5kΩ Cl=2pF -225 Gain= k 1k 1M 1M Frequency (Hz) Figure 1. Gain margin vs. load capacitor at V CC = 5 V Figure 11. Phase margin vs. load capacitor at V CC = 5 V Gain Margin (db) Rl=6Ω Rl=1kΩ Vcc=5V Vicm=2.5V Vload=2.5V 1 1 Load Capacitor (pf) Phase Margin ( ) Rl=6Ω Rl=1kΩ 1 1 Load Capacitor (pf) Vcc=5V Vicm=2.5V Vload=2.5V Figure 12. Closed-loop gain in voltage follower configuration for different capacitive loads Figure 13. Phase margin vs. output current at V CC = 5 V Gain (db) Vcc=5V Vicm=2.5V Rl=1kΩ Cl=1pF Cl=1pF Cl=45pF Cl=5pF Cl=2pF -15 1k 1k 1k 1M 1M Frequency (Hz) Phase Margin ( ) Sink Cl=2pF Source Cl=1pF 3 Vcc=5V 2 Vicm=2.5V Vload=2.5V 1 Rl=1KΩ Output Current (ma) DocID22468 Rev 3 11/

12 Electrical characteristics TSV85x, TSV85xA Figure 14. Positive and negative slew rate vs. supply voltage Figure 15. Positive slew rate at V CC = 5 V with Cl = 1 pf.8 2. Slew rate (V/µs) Cl=1pF Rl=2kΩ Vicm=Vcc/2 Vload=Vcc/ Supply Voltage (V) Output Voltage (V) Vcc=5V -1.5 Vicm=Vcc/2 Cl=1pF -2. Rl=1MΩ Time (µs) Figure 16. Negative slew rate at V CC = 5 V with Cl = 1 pf Figure 17. Noise vs. frequency Output Voltage (V) Vcc=5V Vicm=Vcc/2 Cl=1pF Rl=1MΩ Time (µs) Equivalent Input Noise Voltage Density (nv/vhz) Vcc=5V Vcc=2.7V Vicm=Vcc/ Frequency (Hz) Figure Hz to 1 Hz noise at V CC = 5 V Figure 19. Distortion + noise vs. frequency Voltage noise (µv) Vcc=5V Vicm=2.5V THD + N (%) 1-1 Vcc=5V BW=8kHz Vin=1Vpp Gain=1 Vicm=Vcc/2 1-2 Rl=2kΩ Rl=1kΩ Time (s) Frequency (Hz) 12/ DocID22468 Rev 3

13 Electrical characteristics Figure 2. Distortion + noise vs. output voltage Rl=2kΩ THD + N (%) Vcc=5V Gain=1 BW=22kHz Vicm=Vcc/2 Rl=1kΩ Output Voltage (Vpp) DocID22468 Rev 3 13/

14 Application information TSV85x, TSV85xA 4 Application information 4.1 Operating voltages The TSV85x, TSV85xA can operate from 2.3 to 5.5 V. The devices parameters are fully specified for 2.7 V and 5 V power supplies. Additionally, the main specifications are guaranteed in extended temperature ranges from -4 C to +125 C. 4.2 Input common-mode range The TSV85x, TSV85xA has an input common-mode range that includes ground. The input common-mode range is extended from V CC- -.2 V to V CC+ - 1 V, with no output phase reversal. 4.3 Rail-to-rail output The operational amplifiers output levels can go close to the rails: 18 mv maximum above and below the rail when connected to a 1 kω resistive load to V CC / Input offset voltage drift over temperature The maximum input voltage drift over the temperature variation is defined as follows. for T min < T < Tmax. ΔVio = max Vio ( T ) Vio ( 25 C ) ΔT T 25 C 4.5 PCB layouts For correct operation, it is advised to add 1 nf decoupling capacitors as close as possible to the power supply pins. 4.6 Macromodel Accurate macromodels of the TSV85x, TSV85xA are available on STMicroelectronics web site at These models are a trade-off between accuracy and complexity (that is, time simulation) of the TSV85x, TSV85xA operational amplifiers. They emulate the nominal performances of a typical device within the specified operating conditions mentioned in the datasheet. They also help to validate a design approach and to select the right operational amplifier, but they do not replace on-board measurements. 14/ DocID22468 Rev 3

15 Application information 4.7 Shutdown function The operational amplifier is enabled when the SHDN pin is pulled high. To disable the amplifier, the SHDN pin must be pulled down to V CC-. When in shutdown mode, the amplifier output is in a high impedance state. The SHDN pin must never be left floating but tied to V CC+ or V CC-. The turn-on and turn-off times are calculated for an output variation of ±2 mv (Figure 21 and Figure 22 show the test configurations). Figure 23 and Figure 24 show the respective results with these test configurations. Figure 21. Test configuration for turn-on time (Vout pulled down) Figure 22. Test configuration for turn-off time (Vout pulled down) Vcc GND Vcc GND Vcc 1V + 2kΩ Vcc 1V + 2kΩ GND GND Figure 23. Turn-on time, V CC = 5 V, Vout pulled down, T = 25 C Figure 24. Turn-off time, V CC = 5 V, Vout pulled down, T = 25 C Voltage (V) 3 Shutdown pulse Vout Vcc = 5V T = 25 C R L connected to GND Output voltage (V) Vcc = 5V T = 25 C R L connected to GND Vout Shutdown pulse Time(µs) Time(µs) DocID22468 Rev 3 15/

16 Package information TSV85x, TSV85xA 5 Package information In order to meet environmental requirements, ST offers these devices in different grades of ECOPACK packages, depending on their level of environmental compliance. ECOPACK specifications, grade definitions and product status are available at: ECOPACK is an ST trademark. 16/ DocID22468 Rev 3

17 Package information 5.1 SC7-5 (or SOT323-5) package information Figure 25. SC7-5 (or SOT323-5) package mechanical drawing DIMENSIONS IN MM SIDE VIEW GAUGE PLANE COPLANAR LEADS SEATING PLANE TOP VIEW Table 8. SC7-5 (or SOT323-5) package mechanical data Dimensions Ref Millimeters Inches Min Typ Max Min Typ Max A A1.1.4 A b c D E E e e L < 8 DocID22468 Rev 3 17/

18 Package information TSV85x, TSV85xA 5.2 SOT23-5 package information Figure 26. SOT23-5 package mechanical drawing Table 9. SOT23-5 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A B C D D e E F L K degrees 1 degrees 18/ DocID22468 Rev 3

19 Package information 5.3 SOT23-6 package information Figure 27. SOT23-6 package mechanical drawing Table 1. SOT23-6 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A1.1.4 A b c D E e H L DocID22468 Rev 3 19/

20 Package information TSV85x, TSV85xA 5.4 DFN8 package information Figure 28. DFN8 2x2 mm package mechanical drawing (pitch.5 mm) Table 11. DFN8 2x2 mm package mechanical data (pitch.5 mm) Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A1.5.2 A b D D E E e.5.2 L.5.2 ddd.8.3 2/ DocID22468 Rev 3

21 Package information 5.5 SO8 package information Figure 29. SO8 package mechanical drawing Table 12. SO8 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A b c D E E e h L L k ccc.1.4 DocID22468 Rev 3 21/

22 Package information TSV85x, TSV85xA 5.6 MiniSO8 package information Figure 3. MiniSO8 package mechanical drawing Table 13. MiniSO8 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A b c D E E e L L L k 8 8 ccc / DocID22468 Rev 3

23 Package information 5.7 MiniSO1 package information Figure. MiniSO1 package mechanical drawing Table 14. MiniSO1 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A b c D E E e.5.2 L L k aaa.1.4 DocID22468 Rev 3 23/

24 Package information TSV85x, TSV85xA 5.8 SO14 package information Figure 32. SO14 package mechanical drawing Table 15. SO14 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A B C D E e H h L k 8 (max.) ddd / DocID22468 Rev 3

25 Package information 5.9 TSSOP14 package information Figure 33. TSSOP14 package mechanical drawing Table 16. TSSOP14 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A b c D E E e L L k 8 8 aaa.1.4 DocID22468 Rev 3 25/

26 Package information TSV85x, TSV85xA 5.1 TSSOP16 package information Figure 34. TSSOP16 package mechanical drawing b Table 17. TSSOP16 package mechanical data Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A A b c D E E e k 8 8 L L aaa / DocID22468 Rev 3

27 Package information 5.11 QFN16 3x3 package information Figure 35. QFN16 3x3 package mechanical drawing DocID22468 Rev 3 27/

28 Package information TSV85x, TSV85xA Table 18. QFN16 3x3 mm package mechanical data (pitch.5 mm) Dimensions Ref. Millimeters Inches Min. Typ. Max. Min. Typ. Max. A A1.5.2 A3.2.8 b D D E E e.5.2 L Figure 36. QFN16 3x3 footprint recommendation 28/ DocID22468 Rev 3

29 Ordering information 6 Ordering information Table 19. Order codes for devices without shutdown feature Order code Temperature range Package Packing Marking TSV851ICT SC7-5 K5E TSV851ILT SOT23-5 K153 TSV852IQ2T DFN8 2x2 K5E TSV852IST MiniSO8 K153 TSV852IDT SO8 TSV852I TSV854IPT TSSOP14 TSV854I TSV854IDT SO14-4 C to 125 C Tape and reel TSV854IQ4T QFN16 3x3 K157 TSV851AICT SC7-5 K5F TSV851AILT SOT23-5 TSV852AIST MiniSO8 K154 TSV852AIDT SO8 TSV852AI TSV854AIPT TSSOP14 TSV854AIDT SO14 TSV854AI Table 2. Order codes for devices with shutdown feature Order code Temperature range Package Packing Marking TSV85ILT SOT23-6 K153 TSV853IST MiniSO1 TSV855IPT TSSOP16 TSV855I -4 C to 125 C Tape and reel TSV85AILT SOT23-6 K154 TSV853AIST MiniSO1 TSV855AIPT TSSOP16 TSV855AI DocID22468 Rev 3 29/

30 Revision history TSV85x, TSV85xA Table 21. Order codes (automotive grade parts) Order code Temperature range Package Packing Marking TSV851IYLT TSV852IYST SOT23-5 MiniSO8 TSV854IYPT -4 C to 125 C TSSOP14 TSV854IY automotive Tape and reel TSV851AIYLT grade (1) SOT23-5 K166 TSV852AIYST MiniSO8 1. Qualified and characterized according to AEC Q1 and Q3 or equivalent, advanced screening according to AEC Q1 and Q 2 or equivalent. K165 TSV852IYDT SO8 TSV852IY TSV852AIYDT SO8 TSV852AY TSV854AIYPT TSSOP14 TSV854AIY 7 Revision history Table 22. Document revision history Date Revision Changes 1-Nov Initial release. 6-Jul Oct Added QFN16 package with related information. Minimum suplly voltage decreased down to 2.3 V. Modified Figure 2, Figure 7 and Figure 14. Addition of automotive grade parts. Figure 1: Pin connections for each package (top view): added DFN8 2x2 pin connection to show exposed pad; added footnote 1. Section 4.7: Shutdown function: added explanation of Figure 23 and Figure 23. Table 21: Order codes (automotive grade parts): updated footnote 1. Updated disclaimer. 3/ DocID22468 Rev 3

31 Please Read Carefully: Information in this document is provided solely in connection with ST products. STMicroelectronics NV and its subsidiaries ( ST ) reserve the right to make changes, corrections, modifications or improvements, to this document, and the products and services described herein at any time, without notice. All ST products are sold pursuant to ST s terms and conditions of sale. Purchasers are solely responsible for the choice, selection and use of the ST products and services described herein, and ST assumes no liability whatsoever relating to the choice, selection or use of the ST products and services described herein. No license, express or implied, by estoppel or otherwise, to any intellectual property rights is granted under this document. If any part of this document refers to any third party products or services it shall not be deemed a license grant by ST for the use of such third party products or services, or any intellectual property contained therein or considered as a warranty covering the use in any manner whatsoever of such third party products or services or any intellectual property contained therein. UNLESS OTHERWISE SET FORTH IN ST S TERMS AND CONDITIONS OF SALE ST DISCLAIMS ANY EXPRESS OR IMPLIED WARRANTY WITH RESPECT TO THE USE AND/OR SALE OF ST PRODUCTS INCLUDING WITHOUT LIMITATION IMPLIED WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE (AND THEIR EQUIVALENTS UNDER THE LAWS OF ANY JURISDICTION), OR INFRINGEMENT OF ANY PATENT, COPYRIGHT OR OTHER INTELLECTUAL PROPERTY RIGHT. ST PRODUCTS ARE NOT DESIGNED OR AUTHORIZED FOR USE IN: (A) SAFETY CRITICAL APPLICATIONS SUCH AS LIFE SUPPORTING, ACTIVE IMPLANTED DEVICES OR SYSTEMS WITH PRODUCT FUNCTIONAL SAFETY REQUIREMENTS; (B) AERONAUTIC APPLICATIONS; (C) AUTOMOTIVE APPLICATIONS OR ENVIRONMENTS, AND/OR (D) AEROSPACE APPLICATIONS OR ENVIRONMENTS. WHERE ST PRODUCTS ARE NOT DESIGNED FOR SUCH USE, THE PURCHASER SHALL USE PRODUCTS AT PURCHASER S SOLE RISK, EVEN IF ST HAS BEEN INFORMED IN WRITING OF SUCH USAGE, UNLESS A PRODUCT IS EXPRESSLY DESIGNATED BY ST AS BEING INTENDED FOR AUTOMOTIVE, AUTOMOTIVE SAFETY OR MEDICAL INDUSTRY DOMAINS ACCORDING TO ST PRODUCT DESIGN SPECIFICATIONS. PRODUCTS FORMALLY ESCC, QML OR JAN QUALIFIED ARE DEEMED SUITABLE FOR USE IN AEROSPACE BY THE CORRESPONDING GOVERNMENTAL AGENCY. Resale of ST products with provisions different from the statements and/or technical features set forth in this document shall immediately void any warranty granted by ST for the ST product or service described herein and shall not create or extend in any manner whatsoever, any liability of ST. ST and the ST logo are trademarks or registered trademarks of ST in various countries. Information in this document supersedes and replaces all information previously supplied. The ST logo is a registered trademark of STMicroelectronics. All other names are the property of their respective owners. 213 STMicroelectronics - All rights reserved STMicroelectronics group of companies Australia - Belgium - Brazil - Canada - China - Czech Republic - Finland - France - Germany - Hong Kong - India - Israel - Italy - Japan - Malaysia - Malta - Morocco - Philippines - Singapore - Spain - Sweden - Switzerland - United Kingdom - United States of America DocID22468 Rev 3 /

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