SLPS755B October   2023  – October 2025 RES11A-Q1

PRODUCTION DATA  

  1.   1
  2. Features
  3. Applications
  4. Description
  5. Pin Configuration and Functions
  6. Specifications
    1. 5.1 Absolute Maximum Ratings
    2. 5.2 ESD Ratings
    3. 5.3 Recommended Operating Conditions
    4. 5.4 Thermal Information
    5. 5.5 Electrical Characteristics
    6. 5.6 Typical Characteristics
  7. Parameter Measurement Information
    1. 6.1 DC Measurement Configurations
    2. 6.2 AC Measurement Configurations
    3. 6.3 Error Notation and Units
  8. Detailed Description
    1. 7.1 Overview
    2. 7.2 Functional Block Diagram
    3. 7.3 Feature Description
      1. 7.3.1 Ratiometric Matching for Low Gain Error
        1. 7.3.1.1 Absolute and Ratiometric Tolerances
      2. 7.3.2 Ratiometric Drift
        1. 7.3.2.1 Long-Term Stability
      3. 7.3.3 Predictable Voltage Coefficient
      4. 7.3.4 Ultra-Low Noise
    4. 7.4 Device Functional Modes
      1. 7.4.1 Per-Resistor Limitations
  9. Application and Implementation
    1. 8.1 Application Information
      1. 8.1.1 Amplifier Feedback Circuit
        1. 8.1.1.1 Amplifier Feedback Circuit Example
      2. 8.1.2 Voltage Divider Circuit
        1. 8.1.2.1 Voltage Divider Circuit Example
        2. 8.1.2.2 Voltage-Divider Circuit Drift
      3. 8.1.3 Discrete Difference Amplifier
        1. 8.1.3.1 Difference-Amplifier Common-Mode Rejection Analysis
        2. 8.1.3.2 Difference-Amplifier Gain Error Analysis
      4. 8.1.4 Discrete Instrumentation Amplifiers
      5. 8.1.5 Fully Differential Amplifier
      6. 8.1.6 Unconventional Circuits
        1. 8.1.6.1 Single-Channel Voltage Divider
        2. 8.1.6.2 Single-Channel Amplifier Gain
          1. 8.1.6.2.1 Gain Scaling the RES60A-Q1 With the RES11A-Q1
      7. 8.1.7 Unconventional Instrumentation Amplifiers
    2. 8.2 Typical Application
      1. 8.2.1 Common-Mode Shifting Input Stage
        1. 8.2.1.1 Design Requirements
        2. 8.2.1.2 Detailed Design Procedure
        3. 8.2.1.3 Application Curves
    3. 8.3 Power Supply Recommendations
    4. 8.4 Layout
      1. 8.4.1 Layout Guidelines
      2. 8.4.2 Layout Examples
  10. Device and Documentation Support
    1. 9.1 Device Support
      1. 9.1.1 Development Support
        1. 9.1.1.1 PSpice® for TI
        2. 9.1.1.2 TINA-TI™ Simulation Software (Free Download)
        3. 9.1.1.3 TI Reference Designs
        4. 9.1.1.4 Analog Filter Designer
    2. 9.2 Documentation Support
      1. 9.2.1 Related Documentation
    3. 9.3 Receiving Notification of Documentation Updates
    4. 9.4 Support Resources
    5. 9.5 Trademarks
    6. 9.6 Electrostatic Discharge Caution
    7. 9.7 Glossary
  11. 10Revision History
  12. 11Mechanical, Packaging, and Orderable Information

Discrete Instrumentation Amplifiers

Use the RES11A-Q1 in conjunction with a dual-channel operational amplifier to implement a discrete instrumentation amplifier (INA). The ratiometric matching between the two resistor dividers improves CMRR performance for the circuit when compared to a similar implementation using unmatched discrete resistors, and results in better over-temperature and over-aging gain drift characteristics. INAs are often used instead of difference amplifiers when high input impedance and low bias currents are needed, such as when measuring bridge sensors.

Discrete INAs are often configured as a differential-input differential-output circuit; see Figure 8-8. While not shown, if needed, use an additional discrete difference amplifier stage (requiring a second RES11A-Q1 and another op-amp channel) to convert the differential output voltage to a single-ended voltage (for example, when driving a single-ended ADC). This extra stage also adds an additional offset and provides additional gain, effectively mimicking the common three-amplifier INA architecture.

Equation 66. V OUT+ V OUT− = V IN+ V IN− × 1+ R G R I N
RES11A-Q1 Differential-Input,
          Differential-Output Instrumentation Amplifier Using the RES11A-Q1
        Figure 8-8 Differential-Input, Differential-Output Instrumentation Amplifier Using the RES11A-Q1

One benefit of the discrete approach with RES11A-Q1, when compared to a common three-amp INA such as the INA821, is that the resistors between the inverting pins of the amplifiers have the same temperature coefficient as the feedback resistors. Therefore, all of the resistors that establish the common-mode and differential gains drift together, so the circuit gain error is extremely steady across temperature. In comparison, the INA821 and similar devices rely on an external gain-setting resistor that is inherently unmatched to the internal, laser-trimmed feedback resistors. As a result, the drift performance of the INA821 is directly correlated with how precise and low-drift of an external resistor is used to set the gain, so for best performance a relatively expensive low-drift resistor is typically required. The RES11A-Q1 resistors are all well matched and have comparable temperature coefficients, and the circuits shown with RES11A-Q1 do not require additional external resistors; therefore, the discrete approach avoids this problem.

Less commonly, a discrete INA is able to be implemented as a differential-input, single-ended output circuit; see Figure 8-9. This topology maintains high input impedances, allows an offset to be applied, and gives a single-ended output without requiring a third amplifier channel. Drive the offset with a low-impedance source, such as a reference buffer. When designing a discrete INA, carefully consider the output swing and input common-mode range limitations of the amplifiers used in the circuit design process.

Equation 67. V OUT = V IN+ V IN− × 1+ R G R I N + V REF
RES11A-Q1 Differential-Input, Single-Ended
          Output Instrumentation Amplifier Using the RES11A-Q1
        Figure 8-9 Differential-Input, Single-Ended Output Instrumentation Amplifier Using the RES11A-Q1