TLE202X-Q1 TI | Alldatasheet
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SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 Qualification in Accordance With AEC-Q100† Qualified for Automotive Applications Customer-Specific Configuration Control Can Be Supported Along With Major-Change Approval ESD Protection Exceeds 1000 V Per MIL-STD-883, Method 3015; Exceeds 200 V Using Machine Model (C = 200 pF, R = 0) Supply Current . . . 300 µA Max High Unity-Gain Bandwidth . . . 2 MHz Typ High Slew Rate . . . 0.45 V/µs Min † Contact factory for details. Q100 qualification data available on request. Supply-Current Change Over Full Temp Range . . . 10 µA Typ at VCC ± = ± 15 V Specified for Both 5-V Single-Supply and ±15-V Operation Phase-Reversal Protection High Open-Loop Gain . . . 6.5 V/µV (136 dB) Typ Low Offset Voltage . . . 100 µV Max Offset Voltage Drift With Time 0.005 µV/mo Typ Low Input Bias Current . . . 50 nA Max Low Noise Voltage . . . 19 nV/√Hz Typ
description
The TLE202x and TLE202xA devices are precision, high-speed, low-power operational amplifiers using a new Texas Instruments Excalibur process. These devices combine the best features of the OP21 with highly improved slew rate and unity-gain bandwidth. The complementary bipolar Excalibur process utilizes isolated vertical pnp transistors that yield dramatic improvement in unity-gain bandwidth and slew rate over similar devices. The addition of a bias circuit in conjunction with this process results in extremely stable parameters with both time and temperature. This means that a precision device remains a precision device even with changes in temperature and over years of use. This combination of excellent dc performance with a common-mode input voltage range that includes the negative rail makes these devices the ideal choice for low-level signal conditioning applications in either single-supply or split-supply configurations. In addition, these devices offer phase-reversal protection circuitry that eliminates an unexpected change in output states when one of the inputs goes below the negative supply rail. A variety of available options includes small-outline versions for high-density systems applications. The Q-suffix devices are characterized for operation over the full automotive temperature range of −40°C to 125°C. Copyright 2004, Texas Instruments Incorporated !"#$% & '("") % $& ! *(+, '$% -$%). "!-('%& '! '$% &%"(#) &%$ %1. "!-('% 2 -!)& )')&&$" ',(-) %)&% Please be aware that an important notice concerning availability, standard warranty, and use in critical applications of Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
ORDERING INFORMATION
AT 25°C PACKAGE† ORDERABLE PART NUMBER TOP-SIDE MARKING 200 V SOIC (D) Tape and reel TLE2021AQDRQ1 2021AQ −40°C to 125°C 200 µV TSSOP (PW) Tape and reel TLE2021AQPWRQ1‡ 2021AQ −40°C to 125°C 500 V SOIC (D) Tape and reel TLE2021QDRQ1 2021Q1 500 µV TSSOP (PW) Tape and reel TLE2021QPWRQ1‡ 2021Q1 300 V SOIC (D) Tape and reel TLE2022AQDRQ1 2021AQ −40°C to 125°C 300 µV TSSOP (PW) Tape and reel TLE2022AQPWRQ1‡ 2022AQ1 −40°C to 125°C 500 V SOIC (D) Tape and reel TLE2022QDRQ1 2022Q1 500 µV TSSOP (PW) Tape and reel TLE2022QPWRQ1‡ 2022Q1 −40°C to 125°C 750 µV SOP (DW) Tape and reel TLE2024AQDWRQ1 2024AQ1 −40°C to 125°C 1000 µV SOP (DW) Tape and reel TLE2024QDWRQ1 2024Q1 † Package drawings, standard packing quantities, thermal data, symbolization, and PCB design guidelines are available at www.ti.com/sc/package. ‡ Product preview OFFSET N1 IN− IN+ VCC −/GND NC VCC+ OUT OFFSET N2 TLE2021 D OR PW PACKAGE (TOP VIEW) 1OUT 1IN− 1IN+ VCC −/GND VCC+ 2OUT 2IN− 2IN+ TLE2022 D OR PW PACKAGE (TOP VIEW) 1OUT 1IN− 1IN+ VCC+ 2IN+ 2IN− 2OUT NC 4OUT 4IN− 4IN+ VCC −/GND 3IN+ 3IN− 3OUT NC TLE2024 DW PACKAGE (TOP VIEW) NC − No internal connection
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 equivalent schematic (each amplifier) IN − Q23 Q25 Q10 Q11 Q12 Q13 Q14 Q15 Q16 Q17 Q18 Q19 Q20 Q21 Q22 Q24 Q26 Q27 Q28 Q29 Q30 Q31 Q32 Q33 Q34 Q35 Q36 Q37 Q38 Q39 Q40 D1 D2 IN + OUT OFFSET N1 (see Note A) VCC+ VCC−/GND OFFSET N2 (see Note A) ACTUAL DEVICE COMPONENT COUNT COMPONENT TLE2021 TLE2022 TLE2024 Transistors 160 Resistors Diodes Capacitors
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 absolute maximum ratings over operating free-air temperature range (unless otherwise noted)† Supply voltage, VCC+ (see Note 1) 20 V Supply voltage, VCC− (see Note 1) −20 V Differential input voltage, VID (see Note 2) ±0.6 V Input voltage range, VI (any input, see Note 1) ±VCC Input current, II (each input) ±1 mA Output current, IO (each output): TLE2021 ±20 mA TLE2022 ±30 mA TLE2024 ±40 mA Total current into VCC+ 80 mA Total current out of VCC− 80 mA Duration of short-circuit current at (or below) 25°C (see Note 3) unlimited Operating free-air temperature range, TA: Q suffix −40°C to 125°C Operating virtual junction temperature, TJ 150°C Package thermal impedance, RθJA (see Notes 4 and 5): D (8 pin) 97°C/W DW (16 pin) 57°C/W PW (8 pin) 149°C/W PW (14 pin) 113°C/W Storage temperature range, Tstg −65°C to 150°C Lead temperature 1,6 mm (1/16 inch) from case for 3 seconds: D or PW package 300°C † 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. NOTES: 1. All voltage values, except differential voltages, are with respect to the midpoint between VCC+, and VCC−. Differential voltages are at IN+ with respect to IN−. Excessive current flows if a differential input voltage in excess of approximately ±600 mV is applied between the inputs unless some limiting resistance is used. The output may be shorted to either supply. Temperature and/or supply voltages must be limited to ensure that the maximum dissipation rating is not exceeded. Maximum power dissipation is a function of TJ(max), θJA, and TA. The maximum allowable power dissipation at any allowable ambient temperature is PD = (TJ(max) − TA)/θJA. Selecting the maximum of 150°C can affect reliability. The package thermal impedance is calculated in accordance with JESD 51-7. recommended operating conditions MIN MAX UNIT Supply voltage, VCC ±20 V Common-mode input voltage, VIC VCC = ± 5 V 3.2 V Common-mode input voltage, VIC VCC± = ±15 V −15 13.2 V Operating free-air temperature, TA −40 125
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2021 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† TLE2021-Q1 TLE2021A-Q1 UNIT PARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 600 100 400 V VIO Input offset voltage Full range 800 550 µV αVIO Temperature coefficient of input offset voltage Full range µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.005 0.005 µV/mo IIO Input offset current 25°C 0.2 0.2 nA IIO Input offset current Full range nA IIB Input bias current 25°C nA IIB Input bias current Full range nA VICR Common-mode input RS = 50 Ω 25°C to 3.5 −0.3 to to 3.5 −0.3 to V VICR Common-mode input voltage range RS = 50 Ω Full range to 3.2 to 3.2 V VOH High-level output 25°C 4.3 4.3 V VOH High-level output voltage RL = 10 kΩ Full range 3.8 3.8 V VOL Low-level output RL = 10 kΩ 25°C 0.7 0.8 0.7 0.8 V VOL Low-level output voltage Full range 0.95 0.95 V AVD Large-signal differential VO = 1.4 V to 4 V, RL = 10 kΩ 25°C 0.3 1.5 0.3 1.5 V/ V AVD differential voltage amplification VO = 1.4 V to 4 V, RL = 10 kΩ Full range 0.1 0.1 V/µV CMRR Common-mode VIC = VICRmin, RS = 50 Ω 25°C 110 110 dB CMRR Common-mode rejection ratio VIC = VICRmin, RS = 50 Ω Full range dB kSVR Supply-voltage rejection ratio VCC = 5 V to 30 V 25°C 105 120 105 120 dB kSVR rejection ratio (∆VCC± /∆VIO) VCC = 5 V to 30 V Full range 100 100 dB ICC Supply current 25°C 170 300 170 300 A ICC Supply current V = 2.5 V, No load Full range 300 300 µA ∆ICC Supply current change over operating temperature range VO = 2.5 V, No load Full range µA † Full range is −40°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2021 electrical characteristics at specified free-air temperature, VCC= ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† TLE2021-Q1 TLE2021A-Q1 UNIT PARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 120 500 300 V VIO Input offset voltage Full range 700 450 µV αVIO Temperature coefficient of input offset voltage Full range µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.006 0.006 µV/mo IIO Input offset current 25°C 0.2 0.2 nA IIO Input offset current Full range nA IIB Input bias current 25°C nA IIB Input bias current Full range nA VICR Common-mode input RS = 50 Ω 25°C −15 to 13.5 −15.3 to −15 to 13.5 −15.3 to V VICR Common-mode input voltage range RS = 50 Ω Full range −15 to 13.2 −15 to 13.2 V VOM+ Maximum positive peak output voltage 25°C 14.3 14.3 V VOM+ peak output voltage swing RL = 10 kΩ Full range 13.8 13.8 V VOM − Maximum negative peak output voltage RL = 10 kΩ 25°C −13.7 −14.1 −13.7 −14.1 V VOM − peak output voltage swing Full range −13.6 −13.6 V AVD Large-signal differential voltage VO = ±10 V, RL = 10 kΩ 25°C 6.5 6.5 V/ V AVD differential voltage amplification VO = ±10 V, RL = 10 kΩ Full range 0.5 0.5 V/µV CMRR Common-mode VIC = VICRmin, RS = 50 Ω 25°C 100 115 100 115 dB CMRR Common-mode rejection ratio VIC = VICRmin, RS = 50 Ω Full range dB kSVR Supply-voltage rejection ratio VCC = ±2.5 V to ±15 V 25°C 105 120 105 120 dB kSVR rejection ratio (∆VCC±/∆VIO) VCC± = ±2.5 V to ±15 V Full range 100 100 dB ICC Supply current 25°C 200 350 200 350 A ICC Supply current Full range 350 350 µA ∆ICC Supply current change over operating temperature range VO = 0, No load Full range µA † Full range is −40°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2022 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† TLE2022-Q1 TLE2022A-Q1 UNIT PARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 600 400 V VIO Input offset voltage Full range 800 550 µV VIO Temperature coefficient of Full range V/°C αVIO Temperature coefficient of input offset voltage Full range µV/°C Input offset voltage VIC = 0, RS = 50 Ω 25°C 0.005 0.005 V/mo Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.005 0.005 µV/mo IIO Input offset current 25°C 0.5 0.4 nA IIO Input offset current Full range nA IIB Input bias current 25°C nA IIB Input bias current Full range nA −0.3 −0.3 25°C to −0.3 to to −0.3 to VICR Common-mode input RS = 50 Ω 25 C to 3.5 to to 3.5 to V VICR Common-mode input voltage range RS = 50 Ω V voltage range Full range to to Full range to 3.2 to 3.2 VOH High-level output voltage 25°C 4.3 4.3 V VOH High-level output voltage RL = 10 kΩ Full range 3.8 3.8 V VOL Low-level output voltage RL = 10 kΩ 25°C 0.7 0.8 0.7 0.8 V VOL Low-level output voltage Full range 0.95 0.95 V AVD Large-signal differential VO = 1.4 V to 4 V, RL = 10 kΩ 25°C 0.3 1.5 0.4 1.5 V/ V AVD Large-signal differential voltage amplification VO = 1.4 V to 4 V, RL = 10 kΩ Full range 0.1 0.1 V/µV CMRR Common-mode rejection VIC = VICRmin, RS = 50 Ω 25°C 100 102 dB CMRR Common-mode rejection ratio VIC = VICRmin, RS = 50 Ω Full range dB kSVR Supply-voltage rejection VCC = 5 V to 30 V 25°C 100 115 103 118 dB kSVR Supply-voltage rejection ratio (∆VCC± /∆VIO) VCC = 5 V to 30 V Full range dB ICC Supply current 25°C 450 600 450 600 A ICC Supply current V = 2.5 V, No load Full range 600 600 µA ∆ICC Supply current change over operating temperature VO = 2.5 V, No load Full range µA ∆ICC operating temperature range Full range µA † Full range is −40°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2022 electrical characteristics at specified free-air temperature, VCC = ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† TLE2022-Q1 TLE2022A-Q1 UNIT PARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 150 500 120 300 V VIO Input offset voltage Full range 700 450 µV αVIO Temperature coefficient Full range V/°C αVIO Temperature coefficient of input offset voltage Full range µV/°C Input offset voltage long-term drift VIC = 0, RS = 50 Ω 25°C 0.006 0.006 V/mo long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.006 0.006 µV/mo IIO Input offset current 25°C 0.5 0.4 nA IIO Input offset current Full range nA IIB Input bias current 25°C nA IIB Input bias current Full range nA −15 −15.3 −15 −15.3 25°C −15 to −15.3 to −15 to −15.3 to VICR Common-mode input RS = 50 Ω 25 C to 13.5 to to 13.5 to V VICR Common-mode input voltage range RS = 50 Ω −15 −15 V voltage range Full range −15 to −15 to Full range to 13.2 to 13.2 VOM + Maximum positive peak 25°C 14.3 14.3 V VOM + Maximum positive peak output voltage swing RL = 10 kΩ Full range 13.8 13.8 V VOM− Maximum negative peak RL = 10 kΩ 25°C −13.7 −14.1 −13.7 −14.1 V VOM− Maximum negative peak output voltage swing Full range −13.6 −13.6 V AVD Large-signal differential VO = ±10 V, RL = 10 kΩ 25°C 0.8 V/ V AVD Large-signal differential voltage amplification VO = ±10 V, RL = 10 kΩ Full range 0.8 V/µV CMRR Common-mode rejection VIC = VICRmin, RS = 50 Ω 25°C 106 109 dB CMRR Common-mode rejection ratio VIC = VICRmin, RS = 50 Ω Full range dB kSVR Supply-voltage rejection VCC = ±2.5 V to ±15 V 25°C 100 115 103 118 dB kSVR Supply-voltage rejection ratio (∆VCC± /∆VIO) VCC± = ±2.5 V to ±15 V Full range dB ICC Supply current 25°C 550 700 550 700 A ICC Supply current V = 0, No load Full range 700 700 µA ∆ICC Supply current change over operating VO = 0, No load Full range µA ∆ICC over operating temperature range Full range µA † Full range is −40°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2024 electrical characteristics at specified free-air temperature, VCC = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† TLE2024-Q1 TLE2024A-Q1 UNIT PARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1100 850 V VIO Input offset voltage Full range 1300 1050 µV αVIO Temperature coefficient of input offset voltage Full range µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.005 0.005 µV/mo IIO Input offset current 25°C 0.6 0.5 nA IIO Input offset current Full range nA IIB Input bias current 25°C nA IIB Input bias current Full range nA VICR Common-mode input RS = 50 Ω 25°C to 3.5 −0.3 to to 3.5 −0.3 to V VICR Common-mode input voltage range RS = 50 Ω Full range to 3.2 to 3.2 V VOH High-level output voltage 25°C 3.9 4.2 3.9 4.2 V VOH High-level output voltage RL = 10 kΩ Full range 3.7 3.7 V VOL Low-level output voltage RL = 10 kΩ 25°C 0.7 0.8 0.7 0.8 V VOL Low-level output voltage Full range 0.95 0.95 V AVD Large-signal differential VO = 1.4 V to 4 V, RL = 10 kΩ 25°C 0.2 1.5 0.3 1.5 V/ V AVD Large-signal differential voltage amplification VO = 1.4 V to 4 V, RL = 10 kΩ Full range 0.1 0.1 V/µV CMRR Common-mode rejection VIC = VICRmin, RS = 50 Ω 25°C dB CMRR Common-mode rejection ratio VIC = VICRmin, RS = 50 Ω Full range dB kSVR Supply-voltage rejection VCC = ±2.5 V to ±15 V 25°C 112 100 115 dB kSVR Supply-voltage rejection ratio (∆VCC±/∆VIO) VCC± = ±2.5 V to ±15 V Full range dB ICC Supply current 25°C 800 1200 800 1200 A ICC Supply current V = 0, No load Full range 1200 1200 µA ∆ICC Supply current change over operating temperature range VO = 0, No load Full range µA † Full range is −40°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2024 electrical characteristics at specified free-air temperature, VCC = ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† TLE2024-Q1 TLE2024A-Q1 UNIT PARAMETER TEST CONDITIONS TA† MIN TYP MAX MIN TYP MAX UNIT VIO Input offset voltage 25°C 1000 750 V VIO Input offset voltage Full range 1200 950 µV αVIO Temperature coefficient of input offset voltage Full range µV/°C Input offset voltage long-term drift (see Note 4) VIC = 0, RS = 50 Ω 25°C 0.006 0.006 µV/mo IIO Input offset current 25°C 0.6 0.2 nA IIO Input offset current Full range nA IIB Input bias current 25°C nA IIB Input bias current Full range nA VICR Common-mode input RS = 50 Ω 25°C −15 to 13.5 −15.3 to −15 to 13.5 −15.3 to V VICR Common-mode input voltage range RS = 50 Ω Full range −15 to 13.2 −15 to 13.2 V VOM+ Maximum positive peak 25°C 13.8 14.1 13.8 14.2 V VOM+ Maximum positive peak output voltage swing RL = 10 kΩ Full range 13.7 13.7 V VOM− Maximum negative peak RL = 10 kΩ 25°C −13.7 −14.1 −13.7 −14.1 V VOM− Maximum negative peak output voltage swing Full range −13.6 −13.6 V AVD Large-signal differential VO = ±10 V, RL = 10 kΩ 25°C 0.4 0.8 V/ V AVD Large-signal differential voltage amplification VO = ±10 V, RL = 10 kΩ Full range 0.4 0.8 V/µV CMRR Common-mode rejection VIC = VICRmin, RS = 50 Ω 25°C 102 105 dB CMRR Common-mode rejection ratio VIC = VICRmin, RS = 50 Ω Full range dB kSVR Supply-voltage rejection VCC = ±2.5 V to ±15 V 25°C 112 100 115 dB kSVR Supply-voltage rejection ratio (∆VCC±/∆VIO) VCC± = ±2.5 V to ±15 V Full range dB ICC Supply current 25°C 1050 1400 1050 1400 A ICC Supply current V = 0, No load Full range 1400 1400 µA ∆ICC Supply current change over operating VO = 0, No load Full range µA ∆ICC over operating temperature range Full range µA † Full range is −40°C to 125°C. NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at TA = 150°C extrapolated to TA = 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2021 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS TA MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V, See Figure 1 25°C 0.5 V/µs Vn Equivalent input noise voltage f = 10 Hz 25°C nV/Hz Vn Equivalent input noise voltage (see Figure 2) f = 1 kHz 25°C nV/Hz VN(PP) Peak-to-peak equivalent input f = 0.1 to 1 Hz 25°C 0.16 V VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.47 µV In Equivalent input noise current 25°C 0.9 pA/Hz Unity-gain bandwidth See Figure 3 25°C 1.2 MHz φm Phase margin at unity gain See Figure 3 25°C 42° TLE2021 operating characteristics at specified free-air temperature, VCC = ±15 V PARAMETER TEST CONDITIONS TA† MIN TYP MAX UNIT SR Slew rate at unity gain VO = ±10 V, See Figure 1 25°C 0.45 0.65 V/ s SR Slew rate at unity gain VO = ±10 V, See Figure 1 Full range 0.4 V/µs Vn Equivalent input noise voltage f = 10 Hz 25°C nV/Hz Vn Equivalent input noise voltage (see Figure 2) f = 1 kHz 25°C nV/Hz VN(PP) Peak-to-peak equivalent input f = 0.1 to 1 Hz 25°C 0.16 V VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.47 µV In Equivalent input noise current 25°C 0.09 pA/Hz Unity-gain bandwidth See Figure 3 25°C MHz φm Phase margin at unity gain See Figure 3 25°C 46° † Full range is −40°C to 125°C for the Q-suffix devices. TLE2022 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V, See Figure 1 0.5 V/µs Vn Equivalent input noise voltage f = 10 Hz nV/√Hz Vn Equivalent input noise voltage (see Figure 2) f = 1 kHz nV/√Hz VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 V VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 µV In Equivalent input noise current 0.1 pA/√Hz Unity-gain bandwidth See Figure 3 1.7 MHz φm Phase margin at unity gain See Figure 3 47°
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TLE2022 operating characteristics at specified free-air temperature, VCC = ±15 V PARAMETER TEST CONDITIONS TA† MIN TYP MAX UNIT SR Slew rate at unity gain VO = ±10 V, See Figure 1 25°C 0.45 0.65 V/ s SR Slew rate at unity gain VO = ±10 V, See Figure 1 Full range 0.4 V/µs Vn Equivalent input noise f = 10 Hz 25°C nV/√Hz Vn Equivalent input noise voltage (see Figure 2) f = 1 kHz 25°C nV/√Hz VN(PP) Peak-to-peak equivalent f = 0.1 to 1 Hz 25°C 0.16 V VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.47 µV In Equivalent input noise current 25°C 0.1 pA/√Hz Unity-gain bandwidth See Figure 3 25°C 2.8 MHz φm Phase margin at unity gain See Figure 3 25°C 52° † Full range is −40°C to 125°C. TLE2024 operating characteristics, VCC = 5 V, TA = 25°C PARAMETER TEST CONDITIONS MIN TYP MAX UNIT SR Slew rate at unity gain VO = 1 V to 3 V, See Figure 1 0.5 V/µs Vn Equivalent input noise voltage (see Figure 2) f = 10 Hz nV/√Hz Vn Equivalent input noise voltage (see Figure 2) f = 1 kHz nV/√Hz VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 1 Hz 0.16 V VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 0.47 µV In Equivalent input noise current 0.1 pA/√Hz Unity-gain bandwidth See Figure 3 1.7 MHz φm Phase margin at unity gain See Figure 3 47° TLE2024 operating characteristics at specified free-air temperature, VCC = ±15 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† MIN TYP MAX UNIT SR Slew rate at unity gain VO = ±10 V, See Figure 1 25°C 0.45 0.7 V/ s SR Slew rate at unity gain VO = ±10 V, See Figure 1 Full range 0.4 V/µs Vn Equivalent input noise voltage f = 10 Hz 25°C nV/√Hz Vn Equivalent input noise voltage (see Figure 2) f = 1 kHz 25°C nV/√Hz VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 1 Hz 25°C 0.16 V VN(PP) Peak-to-peak equivalent input noise voltage f = 0.1 to 10 Hz 25°C 0.47 µV In Equivalent input noise current 25°C 0.1 pA/√Hz Unity-gain bandwidth See Figure 3 25°C 2.8 MHz φm Phase margin at unity gain See Figure 3 25°C 52° † Full range is −40°C to 125°C.
NOTE A: CL includes fixture capacitance. Figure 4. Small-Signal Pulse-Response Test Circuit Typical values presented in this data sheet represent the median (50% point) of device parametric performance.
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Table of Graphs FIGURE VIO Input offset voltage Distribution 5, 6, 7 IIB Input bias current vs Common-mode input voltage vs Free-air temperature 8, 9, 10 11, 12, 13 II Input current vs Differential input voltage VOM Maximum peak output voltage vs Output current vs Free-air temperature 15, 16, 17 VOH High-level output voltage vs High-level output current vs Free-air temperature 19, 20 VOL Low-level output voltage vs Low-level output current vs Free-air temperature VO(PP) Maximum peak-to-peak output voltage vs Frequency 24, 25 AVD Large-signal differential voltage amplification vs Frequency vs Free-air temperature 27, 28, 29 IOS Short-circuit output current vs Supply voltage vs Free-air temperature 30 − 33 34 − 37 ICC Supply current vs Supply voltage vs Free-air temperature 38, 39, 40 41, 42, 43 CMRR Common-mode rejection ratio vs Frequency 44, 45, 46 SR Slew rate vs Free-air temperature 47, 48, 49 Voltage-follower small-signal pulse response 50, 51 Voltage-follower large-signal pulse response 52 − 57 VN(PP) Peak-to-peak equivalent input noise voltage 0.1 to 1 Hz 0.1 to 10 Hz Vn Equivalent input noise voltage vs Frequency Unity-gain bandwidth vs Supply voltage vs Free-air temperature 61, 62 63, 64 φm Phase margin vs Supply voltage vs Load capacitance vs Free-air temperature 65, 66 67, 68 69, 70 Phase shift vs Frequency
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Figure 5 300 −300 600 VIO − Input Offset Voltage − µV Percentage of Units − % −600 ÎÎÎÎ P Package VCC± = ±15 V
231 Units Tested From 1 Wafer Lot
TA = 25°C −450 −150 150 450 Figure 6 −600 Percentage of Units − % VIO − Input Offset Voltage − µV 200 −400 −200 400 600 DISTRIBUTION OF TLE2022 INPUT OFFSET VOLTAGE ÎÎÎÎÎÎÎÎÎÎÎ
398 Amplifiers Tested From 1 Wafer Lot
VCC± = ±15 V TA = 25°C P Package Figure 7 Percentage of Units − % VIO − Input Offset Voltage − mV −0.5 0.5
796 Amplifiers Tested From 1 Wafer Lot
VCC± = ±15 V TA = 25°C N Package DISTRIBUTION OF TLE2024 INPUT OFFSET VOLTAGE Figure 8 TA = 25°C VCC± = ±15 V −35 −30 −25 −20 −15 −10 −10 −40 VIC − Common-Mode Input Voltage − V IIB − Input Bias Current − nA −15 IB I TLE2021 INPUT BIAS CURRENT vs COMMON-MODE INPUT VOLTAGE
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Figure 55 VO − Output Voltage − V t − Time − µs −15 −10 VCC± = ±15 V RL = 10 kΩ CL = 30 pF TA = 25°C See Figure 1 ÁÁ ÁÁ VO TLE2021 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE Figure 56 VO − Output Voltage − V t − Time − µs −15 −10 ÎÎÎÎÎÎ ÎÎÎÎÎÎ VCC± = ±15 V RL = 10 kΩ CL = 30 pF TA = 25°C See Figure 1 ÁÁ ÁÁ VO TLE2022 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE Figure 57 VO − Output Voltage − V t − Time − µs −15 −10 ÎÎÎÎÎ ÎÎÎÎÎ ÎÎÎÎÎ ÎÎÎÎÎ VCC± = ±15 V RL = 10 kΩ CL = 30 pF TA = 25°C See Figure 1 VO TLE2024 VOLTAGE-FOLLOWER LARGE-SIGNAL PULSE RESPONSE Figure 58 0.5 −0.5 −0.4 −0.3 −0.2 −0.1 0.1 0.2 0.3 0.4 t − Time − s ÎÎÎÎÎÎ ÎÎÎÎÎÎ VCC± = ±15 V TA = 25°C PEAK-TO-PEAK EQUIVALENT INPUT NOISE VOLTAGE
0.1 TO 1 Hz
VNPP − Peak-to-Peak Equivalent Input Noise Voltage − uVV µ ÁÁ ÁÁ ÁÁ VN(PP)
SGLS199A − JANUARY 2004 − REVISED APRIL 2004 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 TYPICAL CHARACTERISTICS Figure 59 t − Time − s 0.4 0.3 0.2 0.1 −0.1 −0.2 −0.3 −0.4 −0.5 0.5 VCC± = ±15 V TA = 25°C PEAK-TO-PEAK EQUIVALENT INPUT NOISE VOLTAGE
0.1 TO 10 Hz
VNPP − Peak-to-Peak Equivalent Input Noise Voltage − uVV µ ÁÁÁ ÁÁÁ ÁÁÁ VN(PP) Figure 60 Vn − Equivalent Input Noise Voltage − nVHz f − Frequency − Hz 200 10 k 120 160 100 1 k EQUIVALENT INPUT NOISE VOLTAGE vs FREQUENCY Vn ÁÁ ÁÁ ÁÁ nV/ Hz ÁÁÁÁÁÁ ÁÁÁÁÁÁ ÁÁÁÁÁÁ ÁÁÁÁÁÁ ÎÎÎÎÎ ÎÎÎÎÎ VCC± = ±15 V RS = 20 Ω ÎÎÎÎ TA = 25°C ÎÎÎÎÎ ÎÎÎÎÎ See Figure 2 Figure 61 B1 − Unity-Gain Bandwidth − MHz See Figure 3 TA = 25°C CL = 30 pF RL = 10 kΩ |VCC±| − Supply Voltage − V TLE2021 UNITY-GAIN BANDWIDTH vs SUPPLY VOLTAGE Figure 62 |VCC±| − Supply Voltage − V B1 − Unity-Gain Bandwidth − MHz ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ ÁÁÁÁÁ RL = 10 kΩ CL = 30 pF TA = 25°C See Figure 3 TLE2022 AND TLE2024 UNITY-GAIN BANDWIDTH vs SUPPLY VOLTAGE
Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead/Ball Finish MSL Peak Temp (3) TLE2021AQDRQ1 ACTIVE SOIC D 2500 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TLE2021QDRQ1 ACTIVE SOIC D 2500 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TLE2022AQDRQ1 ACTIVE SOIC D 2500 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TLE2022QDRQ1 ACTIVE SOIC D 2500 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TLE2024AQDWRQ1 ACTIVE SOIC DW 2000 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-UNLIM TLE2024QDWRQ1 ACTIVE SOIC DW 2000 Pb-Free (RoHS) CU NIPDAU Level-2-250C-1 YEAR/ Level-1-235C-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. 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 - May not be currently available - please check http://www.ti.com/productcontent for the latest availability information and additional product content details. None: Not yet available Lead (Pb-Free). 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. Green (RoHS & no Sb/Br): TI defines "Green" to mean "Pb-Free" and in addition, uses package materials that do not contain halogens, including bromine (Br) or antimony (Sb) above 0.1% of total product weight. (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDECindustry 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 25-Feb-2005 Addendum-Page 1
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