Linear - Comparators

Image Part Number Description / PDF Quantity Rfq
TSM917ESA+T

TSM917ESA+T

Touchstone Semiconductor

IC COMP 1.8V W/REF 8SOIC

4955

TSM982CUA+T

TSM982CUA+T

Touchstone Semiconductor

IC COMPARATOR DUAL W/REF 8MSOP

2779

TSM973CUA+T

TSM973CUA+T

Touchstone Semiconductor

IC COMP DUAL CMOS TTL 16SOIC

7431

TSM9117ESA+T

TSM9117ESA+T

Touchstone Semiconductor

IC COMP 1.6V PP W/REF 8SOIC

4953

TSM932CUA+T

TSM932CUA+T

Touchstone Semiconductor

IC COMPARATOR DUAL W/REF 8SMOP

4787

TSM971CUA+T

TSM971CUA+T

Touchstone Semiconductor

IC COMP SNGL CMOS TTL 16SOIC

3713

TSM923CUA+T

TSM923CUA+T

Touchstone Semiconductor

IC COMP DUAL CMOS P-P TTL 8MSOP

4734

TSM9118EXK+T

TSM9118EXK+T

Touchstone Semiconductor

IC COMP 1.6V SNGL W/REF SC70-5

3984

TSM9120ESA+T

TSM9120ESA+T

Touchstone Semiconductor

IC COMPARATOR SINGLE 8SOIC

5000

TSM984ESE+T

TSM984ESE+T

Touchstone Semiconductor

IC COMPARATOR QUAD W/REF 16SOIC

4937

TSM9120EXK+T

TSM9120EXK+T

Touchstone Semiconductor

IC COMPARATOR SINGLE SC70-5

5845

TSM972CUA+T

TSM972CUA+T

Touchstone Semiconductor

IC COMP DUAL CMOS TTL 16SOIC

3945

TSM933CUA+T

TSM933CUA+T

Touchstone Semiconductor

IC COMPARATOR W/REF LP 8MSOP

4933

Linear - Comparators

1. Overview

Linear comparators are analog integrated circuits designed to compare two voltage signals and output a digital signal indicating which voltage is higher. They serve as fundamental components in electronic systems, enabling decision-making processes in applications ranging from voltage level detection to waveform shaping. Their importance spans industries such as industrial automation, consumer electronics, automotive systems, and medical devices, where precise signal comparison is critical.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
General-Purpose ComparatorsBasic voltage comparison with moderate speed and accuracySimple threshold detection in appliances
Precision ComparatorsLow offset voltage and high accuracyInstrumentation and measurement equipment
High-Speed ComparatorsSub-nanosecond response timesRF signal processing and oscilloscopes
Low-Power ComparatorsUltra-low quiescent currentBattery-powered IoT devices
Window ComparatorsDetect if input voltage falls within a defined rangePower supply monitoring systems

3. Structure and Composition

A linear comparator typically consists of:

  • Differential Amplifier Stage: Amplifies the voltage difference between inputs
  • Reference Voltage Circuit: Provides stable threshold voltages
  • Output Stage: Generates rail-to-rail digital output (e.g., CMOS, TTL-compatible)
  • Protection Circuits: ESD protection and overvoltage tolerance

Common package types include SOIC, SOT-23, and TSSOP. Advanced designs integrate hysteresis circuits or voltage references.

4. Key Technical Specifications

ParameterDescriptionImportance
Input Offset VoltageMaximum voltage difference required to switch outputDetermines comparison accuracy
Propagation DelayTime between input change and output responseCritical for high-speed applications
Supply Voltage RangeOperating voltage range (e.g., 2.7V-36V)Dictates system power design
Power ConsumptionQuiescent current under active/idle conditionsBattery life optimization
HysteresisVoltage margin to prevent oscillation near thresholdsImproves noise immunity

5. Application Areas

  • Industrial: PLC input modules, motor control systems
  • Consumer: Smartphone battery level indicators
  • Automotive: Battery management in EVs, sensor signal conditioning
  • Medical: ECG signal analysis equipment
  • Telecommunications: Optical receiver signal detection

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
TI (Texas Instruments)LM393Dual comparator, 2.0V-36V supply, 1.3 A quiescent current
STMicroelectronicsTLV32011.8V supply, 40ns propagation delay
Analog DevicesAD8561Single-supply, 7ns response time
ON SemiconductorNCS2250Zero-drift architecture, 10 V offset

7. Selection Guidelines

  1. Speed Requirements: Match propagation delay to system clock rates
  2. Accuracy Needs: Select offset voltage <1mV for precision sensing
  3. Power Constraints: Choose nano-power variants for portable devices
  4. Environmental Factors: Consider temperature-rated parts (-40 C to +125 C)
  5. Integration Level: Opt for devices with built-in references/hysteresis

8. Industry Trends

  • Miniaturization: WLCSP packages enabling wearable device integration
  • Energy Efficiency: Sub-1 A quiescent current devices for always-on systems
  • Higher Integration: Comparators with ADC interfaces and digital calibration
  • Broadband Operation: GHz-range comparators for 5G infrastructure
  • Smart Sensing: Embedded AI for adaptive threshold control
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