Evaluation Boards - Op Amps

Image Part Number Description / PDF Quantity Rfq
OPA838DBVEVM

OPA838DBVEVM

Texas Instruments

EVAL BOARD FOR OPA838

2

MAX4223EVKIT

MAX4223EVKIT

Maxim Integrated

EVALUATION KIT FOR MAX4223

10

ISL1571IUEZ-EVAL

ISL1571IUEZ-EVAL

Intersil (Renesas Electronics America)

EVAL BOARD FOR ISL1571IUEZ

0

AD8496-EVALZ

AD8496-EVALZ

Analog Devices, Inc.

EVALUATION BOARD

3

551600075-001/NOPB

551600075-001/NOPB

Texas Instruments

BOARD FOR SOIC LMH6612/19

1

AMC1300EVM

AMC1300EVM

Texas Instruments

DEVELOPMENT DATA ACQUISITION

6

DC2655A-C

DC2655A-C

Analog Devices, Inc.

LTC6363-1/LTC6363-2/LTC6363-0.5

1

BUF634ADRBEVM

BUF634ADRBEVM

Texas Instruments

250-MA HIGH-SPEED BUFFER EVALUAT

5

AD8030ARJ-EBZ

AD8030ARJ-EBZ

Analog Devices, Inc.

BOARD EVAL FOR AD8030ARJ

9

LMH6514SQEVAL/NOPB

LMH6514SQEVAL/NOPB

Texas Instruments

EVAL BOARD FOR LMH6514

2

MAX40201EVKIT#

MAX40201EVKIT#

Maxim Integrated

EVAL KIT FOR MAX40201 CURR SENSE

15

MAX44263EVKIT#

MAX44263EVKIT#

Maxim Integrated

EVKIT FOR MAX44263 1.8V, 15MHZ,

5

MAX44290EVKIT#

MAX44290EVKIT#

Maxim Integrated

EVKIT FOR MAX44290

58

EVAL-ADA4523-1ARMZ

EVAL-ADA4523-1ARMZ

Analog Devices, Inc.

EVAL BOARD FOR ADA4523-1

0

AD8013AR-14-EBZ

AD8013AR-14-EBZ

Analog Devices, Inc.

BOARD EVAL FOR AD8013AR-14

15

OPA838DCKEVM

OPA838DCKEVM

Texas Instruments

EVAL BOARD FOR OPA838

4

DC2837A-A

DC2837A-A

Analog Devices, Inc.

LOW SUPPLY VOLTAGE LTC2063 ZERO

2

MAX4213EVKIT+

MAX4213EVKIT+

Maxim Integrated

MAX4213 EVAL KIT+

8

AD813AR-14-EBZ

AD813AR-14-EBZ

Analog Devices, Inc.

BOARD EVAL FOR AD813AR-14

13

MAX9911EVKIT+

MAX9911EVKIT+

Maxim Integrated

KIT EVAL FOR MAX9911

8

Evaluation Boards - Op Amps

1. Overview

Evaluation boards for operational amplifiers (op-amps) are specialized hardware platforms designed to test and validate the performance of op-amp integrated circuits (ICs) in various circuit configurations. These boards provide a controlled environment for engineers to assess key parameters such as gain stability, noise performance, and power efficiency. In modern electronics development, op-amp evaluation boards are critical for accelerating design cycles, reducing time-to-market, and ensuring compliance with industry standards.

2. Main Types and Functional Classification

Type Functional Features Application Examples
General-Purpose Op-Amp Evaluation Boards Basic configuration support, wide supply voltage range, adjustable gain settings Consumer electronics prototyping
High-Speed Op-Amp Evaluation Boards Supports GHz-range signal processing, low parasitic capacitance design Communication infrastructure testing
Low-Noise Precision Evaluation Boards Ultra-low input-referred noise, laser-trimmed resistors Medical imaging equipment development
Power Op-Amp Evaluation Boards High current output capability, thermal management features Industrial motor control systems

3. Structure and Components

Typical evaluation boards consist of:

  • PCB substrate with controlled impedance traces
  • Socketed op-amp IC for easy replacement
  • Onboard power management (LDO regulators, voltage references)
  • Standardized interface connectors (SMB, SMA, or header pins)
  • Adjustable compensation networks (trim pots, discrete component footprints)
  • Thermal vias and heatsinking structures
  • Calibration-grade passive components (0.1% tolerance resistors, NP0 capacitors)

4. Key Technical Specifications

Parameter Importance
Gain Bandwidth Product (GBWP) Determines maximum operating frequency
Slew Rate Impacts transient response performance
Power Supply Rejection Ratio (PSRR) Measures immunity to supply voltage variations
Input Offset Voltage Affects DC precision accuracy
Quiescent Current Key factor in low-power designs
Operating Temperature Range Determines environmental robustness

5. Application Areas

Major industry applications include:

  • Industrial automation (sensor signal conditioning)
  • Telecommunications (RF front-end amplification)
  • Medical devices (ECG signal amplification)
  • Automotive (lidar sensor interfaces)
  • Consumer electronics (audio preamplifiers)
  • Aerospace (precision measurement systems)

6. Leading Manufacturers and Representative Products

Manufacturer Product Example Key Features
Texas Instruments OPA847EVM 3.6GHz GBWP, voltage feedback architecture
Analog Devices AD8021-EB 24-bit audio precision, low distortion
STMicroelectronics STEVAL-OPA354 Low-voltage operation, rail-to-rail output
NXP Semiconductors LM7171EVM High-speed buffer applications

7. Selection Guidelines

Key considerations for selection:

  1. Match board specifications to target application requirements
  2. Verify compatibility with existing development tools (oscilloscopes, signal generators)
  3. Evaluate available onboard calibration features
  4. Assess documentation quality and reference designs
  5. Consider ecosystem support (accessory boards, software tools)
  6. Check component availability and lifecycle status

8. Industry Trends Analysis

Current trends shaping op-amp evaluation board development:

  • Integration of digital control interfaces (I2C, SPI)
  • Increased focus on energy-efficient designs for IoT applications
  • Development of modular evaluation systems with plug-and-play capability
  • Adoption of machine learning algorithms for automated performance optimization
  • Miniaturization for portable test equipment applications
  • Enhanced EMI/RFI shielding for automotive test environments

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