SBOSAM6 January   2000  – December 2024 LMC6035-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. Detailed Description
    1. 6.1 Overview
    2. 6.2 Functional Block Diagram
  8. Application and Implementation
    1. 7.1 Application Information
      1. 7.1.1 Capacitive Load Tolerance
    2. 7.2 Typical Applications
      1. 7.2.1 Differential Driver
      2. 7.2.2 Low-Pass Active Filter
        1. 7.2.2.1 Low-Pass Frequency Scaling Procedure
      3. 7.2.3 High-Pass Active Filter
        1. 7.2.3.1 High-Pass Frequency Scaling Procedure
      4. 7.2.4 Dual-Amplifier Bandpass Filter
        1. 7.2.4.1 DABP Component Selection Procedure
    3. 7.3 Layout
      1. 7.3.1 Layout Guidelines
        1. 7.3.1.1 Printed Circuit Board (PCB) Layout for High-Impedance Work
      2. 7.3.2 Layout Example
  9. Device and Documentation Support
    1. 8.1 Receiving Notification of Documentation Updates
    2. 8.2 Support Resources
    3.     Trademarks
    4. 8.3 Electrostatic Discharge Caution
    5. 8.4 Glossary
  10. Revision History
  11. 10Mechanical, Packaging, and Orderable Information

Typical Characteristics

at VS = 2.7V, single supply, and TA = 25°C (unless otherwise noted)

LMC6035-Q1 Supply Current vs Supply
                        Voltage (Per Amplifier)Figure 5-1 Supply Current vs Supply Voltage (Per Amplifier)
LMC6035-Q1 Sourcing Current vs Output
                        VoltageFigure 5-3 Sourcing Current vs Output Voltage
LMC6035-Q1 Sinking Current vs  Output
                        VoltageFigure 5-5 Sinking Current vs Output Voltage
LMC6035-Q1 Output Voltage Swing vs  Supply
                        VoltageFigure 5-7 Output Voltage Swing vs Supply Voltage
LMC6035-Q1 Input Noise vs 
                        FrequencyFigure 5-9 Input Noise vs Frequency
LMC6035-Q1 Amp to Amp Isolation vs 
                        FrequencyFigure 5-11 Amp to Amp Isolation vs Frequency
LMC6035-Q1 −PSRR vs 
                        FrequencyFigure 5-13 −PSRR vs Frequency
LMC6035-Q1 CMRR vs Input
                        VoltageFigure 5-15 CMRR vs Input Voltage
LMC6035-Q1 Input Voltage vs  Output
                        VoltageFigure 5-17 Input Voltage vs Output Voltage
LMC6035-Q1 Frequency Response vs 
                        TemperatureFigure 5-19 Frequency Response vs Temperature
LMC6035-Q1 Gain and Phase vs  Capacitive
                        LoadFigure 5-21 Gain and Phase vs Capacitive Load
LMC6035-Q1 Slew Rate vs  Supply
                        VoltageFigure 5-23 Slew Rate vs Supply Voltage
LMC6035-Q1 Non-Inverting Large Signal
                        ResponseFigure 5-25 Non-Inverting Large Signal Response
LMC6035-Q1 Non-Inverting Small Signal
                        ResponseFigure 5-27 Non-Inverting Small Signal Response
LMC6035-Q1 Non-Inverting Large Signal
                        ResponseFigure 5-29 Non-Inverting Large Signal Response
LMC6035-Q1 Inverting Large Signal
                        ResponseFigure 5-31 Inverting Large Signal Response
LMC6035-Q1 Inverting Small Signal
                        ResponseFigure 5-33 Inverting Small Signal Response
LMC6035-Q1 Inverting Small Signal
                        ResponseFigure 5-35 Inverting Small Signal Response
LMC6035-Q1 Stability vs  Capacitive
                        LoadFigure 5-37 Stability vs Capacitive Load
LMC6035-Q1 Stability vs  Capacitive
                        LoadFigure 5-39 Stability vs Capacitive Load
LMC6035-Q1 Stability vs  Capacitive
                        LoadFigure 5-41 Stability vs Capacitive Load
LMC6035-Q1 Input Bias Current vs
                        TemperatureFigure 5-2 Input Bias Current vs Temperature
LMC6035-Q1 Sourcing Current vs  Output
                        VoltageFigure 5-4 Sourcing Current vs Output Voltage
LMC6035-Q1 Sinking Current vs  Output
                        VoltageFigure 5-6 Sinking Current vs Output Voltage
LMC6035-Q1 Input Noise vs 
                        FrequencyFigure 5-8 Input Noise vs Frequency
LMC6035-Q1 Amp to Amp Isolation vs 
                        FrequencyFigure 5-10 Amp to Amp Isolation vs Frequency
LMC6035-Q1 +PSRR vs 
                        FrequencyFigure 5-12 +PSRR vs Frequency
LMC6035-Q1 CMRR vs 
                        FrequencyFigure 5-14 CMRR vs Frequency
LMC6035-Q1 CMRR vs Input
                        VoltageFigure 5-16 CMRR vs Input Voltage
LMC6035-Q1 Input Voltage vs  Output
                        VoltageFigure 5-18 Input Voltage vs Output Voltage
LMC6035-Q1 Frequency Response vs 
                        TemperatureFigure 5-20 Frequency Response vs Temperature
LMC6035-Q1 Gain and Phase vs  Capacitive
                        LoadFigure 5-22 Gain and Phase vs Capacitive Load
LMC6035-Q1 Non-Inverting Large Signal
                        ResponseFigure 5-24 Non-Inverting Large Signal Response
LMC6035-Q1 Non-Inverting Large Signal
                        ResponseFigure 5-26 Non-Inverting Large Signal Response
LMC6035-Q1 Non-Inverting Small Signal
                        ResponseFigure 5-28 Non-Inverting Small Signal Response
LMC6035-Q1 Inverting Large Signal
                        ResponseFigure 5-30 Inverting Large Signal Response
LMC6035-Q1 Inverting Large Signal
                        ResponseFigure 5-32 Inverting Large Signal Response
LMC6035-Q1 Inverting Small Signal
                        ResponseFigure 5-34 Inverting Small Signal Response
LMC6035-Q1 Stability vs  Capacitive
                        LoadFigure 5-36 Stability vs Capacitive Load
LMC6035-Q1 Stability vs  Capacitive
                        LoadFigure 5-38 Stability vs Capacitive Load
LMC6035-Q1 Stability vs  Capacitive
                        LoadFigure 5-40 Stability vs Capacitive Load