TLV9062

ACTIVE

Dual, 5.5-V, 10-MHz operational amplifier

Product details

Number of channels 2 Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V) 5.5 Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V) 1.8 Rail-to-rail In, Out GBW (typ) (MHz) 10 Slew rate (typ) (V/µs) 6.5 Vos (offset voltage at 25°C) (max) (mV) 1.6 Iq per channel (typ) (mA) 0.538 Vn at 1 kHz (typ) (nV√Hz) 16 Rating Catalog Operating temperature range (°C) -40 to 125 Offset drift (typ) (µV/°C) 0.53 Features Cost Optimized, EMI Hardened, Shutdown, Small Size CMRR (typ) (dB) 103 Iout (typ) (A) 0.05 Architecture CMOS Input common mode headroom (to negative supply) (typ) (V) -0.1 Input common mode headroom (to positive supply) (typ) (V) 0.1 Output swing headroom (to negative supply) (typ) (V) 0.02 Output swing headroom (to positive supply) (typ) (V) -0.02
Number of channels 2 Total supply voltage (+5 V = 5, ±5 V = 10) (max) (V) 5.5 Total supply voltage (+5 V = 5, ±5 V = 10) (min) (V) 1.8 Rail-to-rail In, Out GBW (typ) (MHz) 10 Slew rate (typ) (V/µs) 6.5 Vos (offset voltage at 25°C) (max) (mV) 1.6 Iq per channel (typ) (mA) 0.538 Vn at 1 kHz (typ) (nV√Hz) 16 Rating Catalog Operating temperature range (°C) -40 to 125 Offset drift (typ) (µV/°C) 0.53 Features Cost Optimized, EMI Hardened, Shutdown, Small Size CMRR (typ) (dB) 103 Iout (typ) (A) 0.05 Architecture CMOS Input common mode headroom (to negative supply) (typ) (V) -0.1 Input common mode headroom (to positive supply) (typ) (V) 0.1 Output swing headroom (to negative supply) (typ) (V) 0.02 Output swing headroom (to positive supply) (typ) (V) -0.02
SOIC (D) 8 29.4 mm² (4.9 mm × 6 mm) SOT-23-THN (DDF) 8 8.12 mm² (2.9 mm × 2.8 mm) VSSOP (DGS) 10 14.7 mm² (3 mm × 4.9 mm) VSSOP (DGK) 8 14.7 mm² (3 mm × 4.9 mm) TSSOP (PW) 8 19.2 mm² (3 mm × 6.4 mm) WSON (DSG) 8 4 mm² (2 mm × 2 mm) X2QFN (RUG) 10 3 mm² (1.5 mm × 2 mm) DSBGA (YCK) 9 1 mm² (1 mm × 1 mm)
  • Rail-to-rail input and output
  • Low input offset voltage: ±0.3mV
  • Unity-gain bandwidth: 10MHz
  • Low broadband noise: 10nV/√ Hz
  • Low input bias current: 0.5pA
  • Low quiescent current: 538µA
  • Unity-gain stable
  • Internal RFI and EMI filter
  • Operational at supply voltages as low as 1.8V
  • Easier to stabilize with higher capacitive load due to resistive open-loop output impedance
  • Shutdown version: TLV906xS
  • Extended temperature range: –40°C to 125°C
  • Rail-to-rail input and output
  • Low input offset voltage: ±0.3mV
  • Unity-gain bandwidth: 10MHz
  • Low broadband noise: 10nV/√ Hz
  • Low input bias current: 0.5pA
  • Low quiescent current: 538µA
  • Unity-gain stable
  • Internal RFI and EMI filter
  • Operational at supply voltages as low as 1.8V
  • Easier to stabilize with higher capacitive load due to resistive open-loop output impedance
  • Shutdown version: TLV906xS
  • Extended temperature range: –40°C to 125°C

The TLV9061 (single), TLV9062 (dual), and TLV9064 (quad) are single-, dual-, and quad- low-voltage, 1.8V to 5.5V) operational amplifiers, op amps) with rail-to-rail input and output swing capabilities.

These devices are highly cost-effective options for applications where low-voltage operation, a small footprint, and high capacitive load drive are required.

Although the capacitive load drive of the TLV906x is 100pF, the resistive open-loop output impedance makes stabilizing with higher capacitive loads simpler. These op amps are designed specifically for low-voltage operation (1.8V to 5.5V), with performance specifications similar to the OPAx316 and TLVx316 devices.

The TLV906xS devices include a shutdown mode that allow the amplifiers to switch into standby mode with typical current consumption less than 1µA.

The TLV906xS family helps simplify system design, because the family is unity-gain stable, integrates the RFI and EMI rejection filter, and provides no phase reversal in overdrive condition.

Micro size packages, such as X2SON and X2QFN, are offered for all the channel variants (single, dual and quad), along with industry-standard packages, such as SOIC, MSOP, SOT-23, and TSSOP.

The TLV9061 (single), TLV9062 (dual), and TLV9064 (quad) are single-, dual-, and quad- low-voltage, 1.8V to 5.5V) operational amplifiers, op amps) with rail-to-rail input and output swing capabilities.

These devices are highly cost-effective options for applications where low-voltage operation, a small footprint, and high capacitive load drive are required.

Although the capacitive load drive of the TLV906x is 100pF, the resistive open-loop output impedance makes stabilizing with higher capacitive loads simpler. These op amps are designed specifically for low-voltage operation (1.8V to 5.5V), with performance specifications similar to the OPAx316 and TLVx316 devices.

The TLV906xS devices include a shutdown mode that allow the amplifiers to switch into standby mode with typical current consumption less than 1µA.

The TLV906xS family helps simplify system design, because the family is unity-gain stable, integrates the RFI and EMI rejection filter, and provides no phase reversal in overdrive condition.

Micro size packages, such as X2SON and X2QFN, are offered for all the channel variants (single, dual and quad), along with industry-standard packages, such as SOIC, MSOP, SOT-23, and TSSOP.

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Technical documentation

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* Data sheet TLV906xS 10MHz, RRIO, CMOS Operational Amplifiers for Cost-Sensitive Systems datasheet (Rev. N) PDF | HTML Jul 13, 2026
Circuit design Single-Supply, 2nd-Order, Sallen-Key Band-Pass Filter Circuit (Rev. A) PDF | HTML Jan 27, 2025
Circuit design Low-noise and long-range PIR sensor conditioner circuit (Rev. A) Jan 29, 2024
Application note Designing for TLV90xxS Operational Amplifiers With Shutdown (Rev. B) PDF | HTML Jun 8, 2022
Technical article Designing with low-power op amps, part 4: Stability concerns and solutions PDF | HTML Mar 8, 2022
Circuit design Inverting Amplifier With T-Network Feedback Circuit (Rev. A) PDF | HTML Feb 15, 2022
Application note Low-Side Current Shunt Op-Amp Circuit to 3-V Single-Ended ADC for Cost-Optimized (Rev. A) Sep 29, 2021
Application note Voltage-to-current (V-I) converter circuit with MOSFET (Rev. A) PDF | HTML Aug 20, 2021
Circuit design Single-supply, 2nd-order, Sallen-Key high-pass filter circuit PDF | HTML Jun 28, 2021
Circuit design Single-supply, 2nd-order, Sallen-Key low-pass filter circuit PDF | HTML Jun 28, 2021
Circuit design Circuit to measure multiple redundant source currents with singled-ended signal PDF | HTML Jun 28, 2021
Circuit design Single-supply, 2nd-order, multiple feedback band-pass filter circuit PDF | HTML Jun 28, 2021
Circuit design Single-supply, 2nd-order, multiple feedback high-pass filter circuit PDF | HTML Jun 28, 2021
Circuit design Single-supply, 2nd-order, multiple feedback low-pass filter circuit PDF | HTML Jun 28, 2021
Circuit design Single-supply, high-input voltage, full-wave rectifier circuit PDF | HTML Apr 13, 2021
Application note AN-31 Amplifier Circuit Collection (Rev. D) PDF | HTML Oct 21, 2020
Technical article Taking the family-first approach to op amp selection PDF | HTML Oct 18, 2019
Application brief Using an Operational Amplifier as a Low Cost Multiplexer (Rev. A) Apr 9, 2019
Circuit design Inverting op amp with inverting positive reference voltage circuit (Rev. A) Feb 4, 2019
Application note Do You Really Need Rail-to-Rail Input Amplifiers? Jan 2, 2019
Analog design Journal Second-sourcing options for small-package amplifiers Mar 26, 2018
Technical article Low-side current sensing for high-performance cost-sensitive applications PDF | HTML Jan 22, 2018
Circuit design AC coupled (HPF) non-inverting amplifier circuit (Rev. A) Aug 2, 2017
Technical article Do-it-yourself: Three ways to stabilize op amp capacitive loads PDF | HTML Aug 1, 2017
E-book The Signal e-book: A compendium of blog posts on op amp design topics PDF | HTML Mar 28, 2017

Design & development

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Many TI reference designs include the TLV9062

Use our reference design selection tool to review and identify designs that best match your application and parameters.

Package Pins CAD symbols, footprints & 3D models
SOIC (D) 8 Ultra Librarian
SOT-23-THN (DDF) 8 Ultra Librarian
VSSOP (DGS) 10 Ultra Librarian
VSSOP (DGK) 8 Ultra Librarian
TSSOP (PW) 8 Ultra Librarian
WSON (DSG) 8 Ultra Librarian
X2QFN (RUG) 10 Ultra Librarian
DSBGA (YCK) 9 Ultra Librarian

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