TL1431_06 TI | Alldatasheet
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(TOP VIEW) CATHODE ANODE REF FK PACKAGE (TOP VIEW) 3 2 1 20 19 9 10 11 12 13 NC NC NC ANODE NC NC NC NC NC NC NC CATHODE NC NC NC REF NC NC NC NC CATHODE ANODE ANODE NC REF ANODE ANODE NC D PACKAGE (TOP VIEW) NC – No internal connection ANODE terminals are connected internally. CATHODE NC NC NC REF NC ANODE NC JG OR PW PACKAGE (TOP VIEW) NC – No internal connection KTP PACKAGE (TOP VIEW) CATHODE ANODE REF ANODE DESCRIPTION/ORDERING INFORMATION TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 0.4% Initial Voltage Tolerance Sink Current Capability mA to 100 mA 0.2- Ω Typical Output Impedance Low Reference Current (REF) Fast Turnon 500 ns Adjustable Output Voltage V I(ref) to V The TL1431 is a precision programmable reference with specified thermal stability over automotive, commercial, and military temperature ranges. The output voltage can be set to any value between V I(ref) (approximately 2.5 and V with two external resistors (see Figure This device has a typical output impedance of 0.2 Ω Active output circuitry provides a very sharp turnon characteristic, making the device an excellent replacement for Zener diodes and other types of references in
applications
regulation, adjustable power supplies, and switching power supplies. The TL1431C is characterized for operation over the commercial temperature range of C to The TL1431Q is characterized for operation over the full automotive temperature range of C to 125 The TL1431M is characterized for operation over the full military temperature range of C to 125 Please be aware that an important notice concerning availability, standard warranty, and use in critical sheet. PowerFLEX is a trademark of Texas Instruments. PRODUCTION DATA information is current as of publication date. Copyright 1991 2006, Texas Instruments Incorporated Products conform to specifications per the terms of the Texas Instruments standard warranty. Production processing does not necessarily include testing of all parameters.
www.ti.com REF ANODE CATHODE CATHODE ANODE REF Vref TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 ORDERING INFORMATION (1) T A PACKAGE ORDERABLE PART NUMBER TOP-SIDE MARKING PowerFLEX KTP Reel of 3000 TL1431CKTPR OBSOLETE Tube of TL1431CD SOIC D 1431C Reel of 2500 TL1431CDR C to C Bulk of 1000 TL1431CLP TO-226 TO-92 LP TL1431C Reel of 2000 TL1431CLPR Tube of 150 TL1431CPW TSSOP PW T1431 Reel of 2000 TL1431CPWR Tube of TL1431QD SOIC D TL1431QD Reel of 2500 TL1431QDR C to 125 C Tube of 150 TL1431QPW TSSOP PW T1431QPW Reel of 2000 TL1431QPWR CDIP JG Tube of TL1431MJG TL1431MJG C to 125 C LCCC FK Tube of TL1431MFK TL1431MFK (1) Package drawings, standard packing quantities, thermal data, symbolization, and PCB design guidelines are available at www.ti.com/sc/package. SYMBOL FUNCTIONAL BLOCK DIAGRAM Submit Documentation Feedback
www.ti.com CATHODE REF ANODE 800 Ω 2.4 kΩ 4 kΩ 20 pF 1 kΩ 7.2 kΩ 800 Ω 800 Ω 150 Ω 10 kΩ 3.28 kΩ 20 pF 2, 3, 6, 7 Absolute Maximum Ratings (1) TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 EQUIVALENT SCHEMATIC All component values are nominal. Pin numbers shown are for the D package. over operating free-air temperature range (unless otherwise noted) MIN MAX UNIT V KA Cathode voltage (2) V I KA Continuous cathode current range 100 150 mA I I(ref) Reference input current range mA D package θ JA Package thermal impedance (3) (4) LP package 140 C/W PW package 149 FK package 5.61 θ JC Package thermal impedance (5) (6) C/W JG package 14.5 T J Operating virtual junction temperature 150 C Lead temperature 1,6 mm (1/16 in) from case for s 260 C T stg Storage temperature range 150 C (1) 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 under "recommended operating conditions" is not implied. Exposure to absolute-maximum-rated conditions for extended periods may affect device reliability. (2) All voltage values are with respect to ANODE, unless otherwise noted. (3) Maximum power dissipation is a function of T J(max) θ JA and T A The maximum allowable power dissipation at any allowable ambient temperature is P D J(max) T A θ JA Operating at the absolute maximum T J of 150 C can affect reliability. (4) The package thermal impedance is calculated in accordance with JESD 51-7. (5) Maximum power dissipation is a function of T J(max) θ JC and T C The maximum allowable power dissipation at any allowable case temperature is P D J(max) T C θ JC Operating at the absolute maximum T J of 150 C can affect reliability. (6) The package thermal impedance is calculated in accordance with MIL-STD-883. Submit Documentation Feedback
www.ti.com where: A is the rated operating temperature range of the device. Max VI(ref) Min VI(ref) ˙ TA VI(dev) α VI(ref) ppm V I(dev) V I(ref)at 25°C × 10 TA ( (= ( ( (3) The output impedance is defined as: ∆IKA ∆VKA |z | =KA When the device is operating with two external resistors (see Figure 2), the total dynamic impedance of the circuit is given by: ∆V|z'| = which is approximately equal to R1|z |KA (1 + ( Recommended Operating Conditions Electrical Characteristics ∆VKA ∆VI(ref) TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 MIN MAX UNIT V KA Cathode voltage V I(ref) V I KA Cathode current 100 mA TL1431C T A Operating free-air temperature TL1431Q 125 C TL1431M 125 at specified free-air temperature, I KA mA (unless otherwise noted) TL1431C TEST PARAMETER TEST CONDITIONS T A (1) UNIT CIRCUIT MIN TYP MAX C 2490 2500 2510 V I(ref) Reference input voltage V KA V I(ref) Figure mV Full range 2480 2520 Deviation of reference input V I(dev) voltage over full temperature V KA V I(ref) Full range Figure mV range (2) Ratio of change in reference input voltage to the change in Δ V KA V to V Full range Figure 1.1 mV/V cathode voltage C 1.5 2.5 I I(ref) Reference input current k Ω Figure µ A Full range Deviation of reference input I I(dev) current over full temperature k Ω Full range Figure 0.2 1.2 µ A range (2) Minimum cathode current for I min V KA V I(ref) C Figure 0.45 mA regulation C 0.18 0.5 I off Off-state cathode current V KA V I(ref) Figure µ A Full range V KA V I(ref) f kHz, KA Output impedance (3) C Figure 0.2 0.4 Ω I KA mA to 100 mA (1) Full range is C to C for C-suffix devices. (2) The deviation parameters V I(dev) and I I(dev) are defined as the differences between the maximum and minimum values obtained over the rated temperature range. The average full-range temperature coefficient of the reference input voltage α VI(ref) is defined as: α VI(ref) is positive or negative, depending on whether minimum V I(ref) or maximum V I(ref) respectively, occurs at the lower temperature. Submit Documentation Feedback
www.ti.com where: A is the rated operating temperature range of the device. Max VI(ref) Min VI(ref) ˙ TA VI(dev) α VI(ref) ppm V I(dev) V I(ref)at 25°C × 10 TA ( (= ( ( (4) The output impedance is defined as: ∆IKA ∆VKA |z | =KA When the device is operating with two external resistors (see Figure 2), the total dynamic impedance of the circuit is given by: ∆V|z'| = which is approximately equal to R1|z |KA (1 + ( Electrical Characteristics ∆VKA ∆VI(ref) TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 at specified free-air temperature, I KA mA (unless otherwise noted) TL1431Q TL1431M TEST PARAMETER TEST CONDITIONS T A (1) UNIT CIRCUIT MIN TYP MAX MIN TYP MAX C 2490 2500 2510 2475 2500 2540 V I(ref) Reference input voltage V KA V I(ref) Figure mV Full 2470 2530 2460 2550 range Deviation of reference Full V I(dev) input voltage over full V KA V I(ref) Figure (3) mV range temperature range (2) Ratio of change in reference input voltage Full Δ V KA V to V Figure 1.1 1.1 mV/V to the change in range cathode voltage C 1.5 2.5 1.5 2.5 I I(ref) Reference input current k Ω Figure µ A Full range Deviation of reference Full I I(dev) input current over full k Ω Figure 0.5 0.5 (3) µ A range temperature range (2) Minimum cathode I min V KA V I(ref) C Figure 0.45 0.45 mA current for regulation C 0.18 0.5 0.18 0.5 Off-state cathode I off V KA V I(ref) Figure µ A Full current range V KA V I(ref) f kHz, KA Output impedance (4) C Figure 0.2 0.4 0.2 0.4 Ω I KA mA to 100 mA (1) Full range is C to 125 C for Q-suffix devices and C to 125 C for M-suffix devices. (2) The deviation parameters V I(dev) and I I(dev) are defined as the differences between the maximum and minimum values obtained over the rated temperature range. The average full-range temperature coefficient of the reference input voltage α VI(ref) is defined as: α VI(ref) is positive or negative, depending on whether minimum V I(ref) or maximum V I(ref) respectively, occurs at the lower temperature. (3) On products compliant to MIL-PRF-38535, this parameter is not production tested. Submit Documentation Feedback
www.ti.com PARAMETER MEASUREMENT INFORMATION Input VKA IKA VI(ref) Input V KA IKA VI(ref) II(ref) VKA /C0043VI(ref)/C04661 /C0041R1 /C0467/C0041II(ref)/C0032R1 Input V KA Ioff TYPICAL CHARACTERISTICS TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure Test Circuit for V (KA) V ref Figure Test Circuit for V (KA) V ref Figure Test Circuit for I off Data at high and low temperatures are applicable only within the recommended operating free-air temperature ranges of the various devices. Table of Graphs GRAPH FIGURE Reference voltage vs Free-air temperature Reference current vs Free-air temperature Cathode current vs Cathode voltage Off-state cathode current vs Free-air temperature Ratio of delta reference voltage to delta cathode voltage vs Free-air temperature Equivalent input-noise voltage vs Frequency Equivalent input-noise voltage over a 10-second period Small-signal voltage amplification vs Frequency Reference impedance vs Frequency Pulse response Stability boundary conditions Submit Documentation Feedback
www.ti.com REFERENCE CURRENT vs FREE-AIR TEMPERA TURE − 50 − 25 0 25 50 75 100 125 0.5 1.5 2.5 TA − Free-Air Temperature − °C IKA = 10 mA R1 = 10 kW R2 = ∞ − Reference Current −II(ref) Am 2.5 2.49 2.48 − 50 − 25 0 25 50 2.51 REFERENCE VOL TAGE vs FREE-AIR TEMPERA TURE 2.52 75 100 125 VI(ref) = VKA IKA = 10 mA TA − Free-Air Temperature − °C − Reference Voltage − VVI(ref) − 50 − 100 − 150 − 3 − 2 − 1 100 CA THODE CURRENT vs CA THODE VOL TAGE 150 0 1 2 3 VKA − Cathode Voltage − V VKA = VI(ref) TA = 25°C − Cathode Current − mAIKA 200 − 200 −1 0 1 2 3 4 400 600 CA THODE CURRENT vs CA THODE VOL TAGE 800 VKA − Cathode Voltage − V VKA = VI(ref) TA = 25°C − Cathode Current −IKA Am TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure Figure Figure Figure Submit Documentation Feedback
www.ti.com 0.15 0.1 0.05 − 25 0 25 50 75 0.2 0.25 OFF-STA TE CATHODE CURRENT vs FREE-AIR TEMPERA TURE 0.3 100 125 0.35 0.4 TA − Free-Air Temperature − °C VKA = 36 V VI(ref) = 0 −50 I − Off-State Cathode Current −AmKA(off) −1.15 −1.25 −1.35 −1.45 − 25 0 −1.05 RA TIO OF DELTA REFERENCE VOL TAGE T O DELT A CATHODE VOL TAGE vs FREE-AIR TEMPERA TURE 25 50 75 100 125 TA − Free-Air Temperature − °C VKA = 3 V to 36 V −0.85 −0.95 −50 − mV/VD V I(ref)/DV KA 180 140 120 100 10 100 1 k 220 240 f − Frequency − Hz EQUIV ALENT INPUT -NOISE VOLTAGE vs FREQUENCY 260 10 k 100 k 200 160 IO = 10 mA TA = 25°C − Equivalent Input-Noise Voltage −nV/ HzVn TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure Figure Figure 10. Submit Documentation Feedback
www.ti.com − 1 − 2 − 4 − 5 − 6 − 3 0 2 4 6 t − Time − s EQUIV ALENT INPUT -NOISE VOLTAGE OVER A 10-SECOND PERIOD 8 10 TEST CIRCUIT FOR 0.1-Hz TO 10-Hz EQUIVALENT INPUT -NOISE VOLTAGE f = 0.1 to 10 Hz IKA = 10 mA TA = 25°C − Equivalent Input-Noise Voltage −Vn m V 19.1 V 1 kW 910 W 500 mF 2000 mF VCC VCC VEE VEE TL1431 (DUT) 820 W 16 W 160 kW 0.1 mF
16 W 16 W
2.2 mF TLE2027 AV = 2 V/V 1 MW CRO TLE2027 AV = 10 V/mV TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure 11. Submit Documentation Feedback
www.ti.com 1 k 10 k 100 k f − Frequency − Hz
1 M 10 M
TEST CIRCUIT FOR VOL TAGE AMPLIFICA TION IKA = 10 mA TA = 25°C − Small-Signal Voltage Amplification − dBA V SMALL-SIGNAL VOLTAGE AMPLIFICA TION vs FREQUENCY 9 mF 15 kW 8.25 kW I(K) 230 W Output GND 0.1 1 k 10 k 100 k 1 M 10 M f − Frequency − Hz REFERENCE IMPEDANCE vs FREQUENCY 100 TEST CIRCUIT FOR REFERENCE IMPEDANCE 1 kW 50 W I(K) Output GND IKA = 1 mA to 100 mA TA = 25°C |zka | − Reference Impedance − O|z KA W TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure 12. Figure 13. Submit Documentation Feedback
www.ti.com 0 1 2 3 4 PULSE RESPONSE 5 6 7 TEST CIRCUIT FOR PULSE RESPONSE TA = 25°C Input Output Input and Output Voltages − V t − Time − ms Pulse Generator f = 100 kHz 50 W 220 W Output GND VI STABILITY BOUNDAR Y CONDITIONS 0.001 0.01 0.1 1 100 TEST CIRCUIT FOR CUR VE A TEST CIRCUIT FOR CUR VES B, C, AND D C L − Load Capacitance − mF A-VKA = VI(ref) B-VKA = 5 V C-VKA = 10 V D-VKA = 15 V Stable Stable A B C D IKA = 10 mA TA = 25°C C L C L 150 W 150 W IKA IKA VBATT VBATT R1 = 10 kW VI VI − Cathode Current − mAIKA TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure 14. The areas under the curves represent conditions that may cause the device to oscillate. For curves and and are adjusted to establish the initial V KA and I KA conditions, with C L V BATT and C L then are adjusted to determine the ranges of stability. Figure 15. Submit Documentation Feedback
www.ti.com APPLICATION INFORMATION V(BATT) R 0.1% 0.1% VI(ref) VO TL1431 VO /C0043/C04661 /C0041R1 /C0467VI(ref) V(BATT) VO Input Von ≈ 2 V Voff ≈ V(BATT) TL1431 VIT = 2.5 V GND TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Table of Application Circuits APPLICATION FIGURE Shunt regulator Single-supply comparator with temperature-compensated threshold Precision high-current series regulator Output control of a three-terminal fixed regulator Higher-current shunt regulator Crowbar Precision 5-V, 1.5-A, 0.5% regulator 5-V precision regulator PWM converter with 0.5% reference Voltage monitor Delay timer Precision current limiter Precision constant-current sink Figure 17. Single-Supply Comparator With R should provide cathode current mA to Temperature-Compensated Threshold the TL1431 at minimum V (BATT) Figure 16. Shunt Regulator Submit Documentation Feedback
www.ti.com V(BATT) R 30 Ω TL1431 2N2222 2N2222 0.01 µF 4.7 kΩ 0.1%R2 0.1% VO VO /C0043/C04661 /C0041R1 /C0467VI(ref) V(BATT) In Out VO TL1431 Common µA7805 V /C0043/C04661 /C0041R1 /C0467V I(ref) Min V = VI(ref) + 5 V V(BATT) VO TL1431 C Vtrip/C0043/C04661 /C0041R1 /C0467VI(ref) V(BATT) TL1431 VO /C0043/C04661 /C0041R1 /C0467VI(ref) R VO LM317 In Out V(BATT) 8.2 kΩ TL1431 Adjust 243 Ω 0.1% 243 Ω 0.1% V(BATT) VO = 5 V R b TL1431 27.4 kΩ 0.1% 27.4 kΩ 0.1% TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure 19. Output Control of a Three-Terminal Fixed R should provide cathode current mA to Regulator the TL1431 at minimum V (BATT) Figure 18. Precision High-Current Series Regulator Figure 20. Higher-Current Shunt Regulator Refer to the stability boundary conditions in Figure to determine allowable values for Figure 21. Crowbar Figure 22. Precision 5-V, 1.5-A, 0.5% Regulator R b should provide cathode current mA to the TL1431. Figure 23. 5-V Precision Regulator Submit Documentation Feedback
www.ti.com TL1431 12 V 6.8 kΩ 5 V +0.5% 10 kΩ 10 kΩ 0.1% 10 kΩ 0.1% VCC X Not Used TL598 Feedback V(BATT) R4R1A R2A R1B R2B TL1431 Low Limit/C0043/C04661 /C0041R1B R2B /C0467V I(ref) High Limit/C0043/C04661 /C0041R1A R2A /C0467V I(ref) LED on When Low Limit < V(BATT) < High Limit TL1431 TL1431 12 V 680 Ω 2 kΩR Off On C Delay/C0043R /C0032C /C0032II 12 V (12 V)/C0042VI(ref) V(BATT) TL1431 IO R S 0.1% IO /C0043 VI(ref) R S V(BATT) R CL 0.1% TL1431 IO /C0043 VI(ref) R CL /C0041IKA IO R1 /C0043 V (BATT) /C0466 IO hFE /C0467/C0041IKA TL1431 PRECISION PROGRAMMABLE REFERENCE SLVS062K DECEMBER 1991 REVISED OCTOBER 2006 Figure 24. PWM Converter With 0.5% Reference Figure 26. Delay Timer Select and to provide the desired LED intensity and cathode current mA to the TL1431. Figure 25. Voltage Monitor Figure 27. Precision Current Limiter Figure 28. Precision Constant-Current Sink Submit Documentation Feedback
Orderable Device Status(1) Package Type Package Drawing Pins Package Qty Eco Plan(2) Lead/Ball FinishMSL Peak Temp (3) 5962-9962001Q2A ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type 5962-9962001QPA ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type 5962-9962001VPA ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TL1431CD ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CDE4 ACTIVE SOIC D 8 75 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CDR ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CDRE4 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CDRG4 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CKTPR OBSOLETE PFM KTP 2 TBD Call TI Call TI TL1431CLP ACTIVE TO-92 LP 3 1000 Pb-Free (RoHS) CU SN N / A for Pkg Type TL1431CLPE3 ACTIVE TO-92 LP 3 1000 Pb-Free (RoHS) CU SN N / A for Pkg Type TL1431CLPM OBSOLETE TO-92 LP 3 TBD Call TI Call TI TL1431CLPR ACTIVE TO-92 LP 3 2000 Pb-Free (RoHS) CU SN N / A for Pkg Type TL1431CLPRE3 ACTIVE TO-92 LP 3 2000 Pb-Free (RoHS) CU SN N / A for Pkg Type TL1431CPW ACTIVE TSSOP PW 8 150 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CPWE4 ACTIVE TSSOP PW 8 150 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CPWR ACTIVE TSSOP PW 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431CPWRE4 ACTIVE TSSOP PW 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM TL1431MFK ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type TL1431MFKB ACTIVE LCCC FK 20 1 TBD POST-PLATE N / A for Pkg Type TL1431MJG ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TL1431MJGB ACTIVE CDIP JG 8 1 TBD A42 SNPB N / A for Pkg Type TL1431QD ACTIVE SOIC D 8 75 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TL1431QDR ACTIVE SOIC D 8 2500 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TL1431QLP OBSOLETE TO-92 LP 3 TBD Call TI Call TI TL1431QLPR OBSOLETE TO-92 LP 3 TBD Call TI Call TI TL1431QPWR ACTIVE TSSOP PW 8 2000 TBD CU NIPDAU Level-1-250C-UNLIM (1)The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PACKAGE OPTION ADDENDUM www.ti.com 6-Dec-2006 Addendum-Page 1
PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2)Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontentfor the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS):TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Pb-Free (RoHS Exempt):This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above. Green (RoHS & no Sb/Br):TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material) (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. PACKAGE OPTION ADDENDUM www.ti.com 6-Dec-2006 Addendum-Page 2
MCER001A – JANUARY 1995 – REVISED JANUARY 1997 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 JG (R-GDIP-T8) CERAMIC DUAL-IN-LINE 0.310 (7,87) 0.290 (7,37) 0.014 (0,36) 0.008 (0,20) Seating Plane 4040107/C 08/96 0.065 (1,65) 0.045 (1,14) 0.020 (0,51) MIN 0.400 (10,16) 0.355 (9,00) 0.015 (0,38) 0.023 (0,58) 0.063 (1,60) 0.015 (0,38) 0.200 (5,08) MAX 0.130 (3,30) MIN 0.245 (6,22) 0.280 (7,11) 0.100 (2,54) 0°–15° NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. This package can be hermetically sealed with a ceramic lid using glass frit. D. Index point is provided on cap for terminal identification. E. Falls within MIL STD 1835 GDIP1-T8
MLCC006B – OCTOBER 1996 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 FK (S-CQCC-N**) LEADLESS CERAMIC CHIP CARRIER 4040140/D 10/96
28 TERMINAL SHOWN
B 0.358 (9,09) MAX (11,63) 0.560 (14,22) 0.560 0.458 0.858 (21,8) 1.063 (27,0) (14,22) ANO. OF MINMAX 0.358 0.660 0.761 0.458 0.342 (8,69) MIN (11,23) (16,26) 0.640 0.739 0.442 (9,09) (11,63) (16,76) 0.962 1.165 (23,83) 0.938 (28,99) 1.141 (24,43) (29,59) (19,32)(18,78) 0.020 (0,51) TERMINALS 0.080 (2,03) 0.064 (1,63) (7,80) 0.307 (10,31) 0.406 (12,58) 0.495 (12,58) 0.495 (21,6) 0.850 (26,6) 1.047 0.045 (1,14) 0.045 (1,14) 0.035 (0,89) 0.035 (0,89) 0.010 (0,25) 121314151618 17 432 0.020 (0,51) 0.010 (0,25) 12826 27 B SQ A SQ 0.055 (1,40) 0.045 (1,14) 0.028 (0,71) 0.022 (0,54) 0.050 (1,27) NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. This package can be hermetically sealed with a metal lid. D. The terminals are gold plated. E. Falls within JEDEC MS-004
MPSF001F – JANUARY 1996 – REVISED JANUARY 2002 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 KTP (R-PSFM-G2) PowerFLEX PLASTIC FLANGE-MOUNT PACKAGE 0.228 (5,79) 0.218 (5,54) 0.233 (5,91) 0.243 (6,17) 0.001 (0,02) 0.005 (0,13) 0.070 (1,78) Seating Plane 0.080 (2,03) 0.010 (0,25) NOM Gage Plane 0.010 (0,25) 4073388/M 01/02 0.037 (0,94) 0.047 (1,19) 0.247 (6,27) 0.237 (6,02) NOM 0.215 (5,46) 0.371 (9,42) 0.381 (9,68) 0.090 (2,29) 0.100 (2,54) 0.287 (7,29) 0.031 (0,79) 0.032 (0,81) MAX 0.277 (7,03) 0.025 (0,63) 0.130 (3,30) NOM 0.090 (2,29) 0.004 (0,10) 2°–/C02576° 0.040 (1,02) 0.050 (1,27) Thermal Tab (See Note C) 0.010 (0,25) NOM NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. The center lead is in electrical contact with the thermal tab. D. Dimensions do not include mold protrusions, not to exceed 0.006 (0,15). E. Falls within JEDEC TO-252 variation AC. PowerFLEX is a trademark of Texas Instruments.
MSOT002A – OCTOBER 1994 – REVISED NOVEMBER 2001 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 LP (O-PBCY-W3) PLASTIC CYLINDRICAL PACKAGE 4040001-2/C 10/01 STRAIGHT LEAD OPTION 0.016 (0,41) 0.014 (0,35) 0.157 (4,00) MAX FORMED LEAD OPTION 0.104 (2,65) 0.210 (5,34) 0.170 (4,32) 0.050 (1,27) 0.016 (0,41) 0.022 (0,56) 0.500 (12,70) MIN Seating Plane 0.175 (4,44) 0.125 (3,17)DIA D C 0.105 (2,67) 0.095 (2,41) 0.135 (3,43) MIN 0.080 (2,03) 0.055 (1,40) 0.045 (1,14) 0.105 (2,67) 0.080 (2,03) 0.105 (2,67) NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. Lead dimensions are not controlled within this area D. FAlls within JEDEC TO -226 Variation AA (TO-226 replaces TO-92) E. Shipping Method: Straight lead option available in bulk pack only. Formed lead option available in tape & reel or ammo pack.
MSOT002A – OCTOBER 1994 – REVISED NOVEMBER 2001
2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
LP (O-PBCY-W3) PLASTIC CYLINDRICAL PACKAGE 4040001-3/C 10/01 0.094 (2,40) 0.114 (2,90) 0.460 (11,70) 0.539 (13,70) TAPE & REEL 0.335 (8,50) 0.384 (9,75) 0.020 (0,50) MIN 0.217 (5,50) 0.689 (17,50) 0.098 (2,50) 0.433 (11,00) 0.335 (8,50) 0.610 (15,50) 0.650 (16,50) 1.260 (32,00) 0.905 (23,00) 0.234 (5,95) 0.266 (6,75) 0.512 (13,00) 0.488 (12,40) 0.114 (2,90) 0.169 (4,30)DIA NOTES: A. All linear dimensions are in inches (millimeters). B. This drawing is subject to change without notice. C. Tape and Reel information for the Format Lead Option package.
MTSS001C – JANUARY 1995 – REVISED FEBRUARY 1999 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 PW (R-PDSO-G**) PLASTIC SMALL-OUTLINE PACKAGE
14 PINS SHOWN
0,65 M0,10 0,10 0,25 0,50 0,75 0,15 NOM Gage Plane 9,80 9,60 7,90 7,70 2016 6,60 6,40 4040064/F 01/97 0,30 6,60 6,20 0,19 4,30 4,50 0,15 A 1,20 MAX 5,10 4,90 3,10 2,90 A MAX A MIN DIM PINS ** 0,05 4,90 5,10 Seating Plane 0°–8° NOTES: A. All linear dimensions are in millimeters. B. This drawing is subject to change without notice. C. Body dimensions do not include mold flash or protrusion not to exceed 0,15. D. Falls within JEDEC MO-153
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