Optomechanical

Image Part Number Description / PDF Quantity Rfq
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SWIVEL CONNECTOR

2

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CAP 30

30

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REDUCING RING 23.2

3

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G061042000

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MOUNTING PLATE 30

55

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MOUNTING PLATE 25-T10

3

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MICROBENCH SET OPTICS AND MECHAN

2

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SET OF THREADED PINS M2.3X3, 150

28

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PRISM SUPPORT 25

2

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CORNER CONNECTOR 40, FOR T10+TS1

4

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G061228000

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ROD HOLDER

25

G061037000

G061037000

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SLIP PLATE POSITIONER 25

3

G065082000

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HOLDER M35X0.5

7

G065075000

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ADJUSTABLE OPTIC HOLDER 31.5 S

0

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G065093000

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ADJUSTABLE HOLDER 25

20

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REDUCING RING, W0.8 X 1/36

9

G061080000

G061080000

Excelitas Technologies

CUBE 25

10

G061020000

G061020000

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MOUNTING PLATE 25, LATCHABLE

30

G065042000

G065042000

Excelitas Technologies

ADAPTER COLLAR

3

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Q-SET VARIABLE ATTENUATOR 780 NM

2

G065070000

G065070000

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X-Y TRANSLATION STAGE WITH FINE

9

Optomechanical

1. Overview

Optoelectronics optomechanical systems integrate optical and mechanical engineering principles to design, develop, and operate devices that manipulate light-matter interactions. These systems enable precise control of optical components (e.g., lenses, mirrors, detectors) through mechanical structures, ensuring stability, alignment, and functionality in advanced applications. They play a critical role in fields such as laser technology, precision measurement, and optical communication.

2. Major Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Optical MountsAdjustable mechanical supports for optical componentsLaser beam alignment, interferometers
Optical TablesVibration-isolated platforms for optical experimentsPhotonics labs, semiconductor manufacturing
Laser Mechanical AssembliesStructures for laser cavity alignment and coolingIndustrial laser cutting, medical lasers
Photodetector ModulesIntegrated sensors with optical and mechanical packagingLiDAR, optical communication receivers
Fiber Optic MechanicsAlignment systems for fiber optic connectorsTelecom networks, fiber lasers

3. Structure and Components

A typical optomechanical system consists of:

  • Mechanical Framework: Aluminum or steel bases for structural stability
  • Adjustment Mechanisms: Micrometers, piezo actuators for precision alignment
  • Optical Mounts: Kinematic mounts for lenses, mirrors, and detectors
  • Thermal Management: Heat sinks or cooling channels for laser systems
  • Integration Interfaces: Standardized connectors (e.g., SMA, FC) for optical fibers

4. Key Technical Specifications

ParameterDescriptionImportance
Adjustment ResolutionMinimum angular/linear displacement ( rad/ m)Determines alignment precision
Load CapacityMaximum weight supported (kg)Affects system stability
Material CompatibilityThermal expansion coefficients ( in ppm/ C)Ensures environmental stability
Vibration IsolationResonant frequency (Hz) and damping ratioReduces noise in sensitive measurements
Optical ThroughputTransmission efficiency (%) across wavelength rangeImpacts system performance in photonics

5. Application Fields

Major industries and equipment include:

  • Industrial: Laser cutting machines, 3D printers
  • Scientific: Spectrometers, atomic force microscopes
  • Medical: Endoscopic imaging systems, OCT scanners
  • Telecom: DWDM optical transceivers, fiber amplifiers
  • Defense: Targeting systems, infrared cameras

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Specifications
ThorlabsKinesis K100LMS Stage0.1 m resolution, 100 mm travel
NewportXR7000 Optical Table0.5 Hz resonant frequency, 1000 kg load
LumentumHigh-Power Laser Module10 kW output, active cooling
Hamamatsu PhotonicsC12798-01 Photodetector160 dB dynamic range, 0.1 ns response
3MFiber Optic Alignment Tool 0.01 dB insertion loss

7. Selection Guidelines

Key considerations include:

  • Environmental conditions (temperature, vibration)
  • Optical wavelength compatibility (UV to IR)
  • Required degrees of freedom for alignment
  • Integration with existing optical systems
  • Cost vs. precision trade-offs

8. Industry Trends

Emerging developments include:

  • Microelectromechanical systems (MEMS) for miniaturized optics
  • AI-driven optomechanical alignment algorithms
  • Advanced composites for ultra-low thermal expansion
  • Integrated photonics packaging for 5G networks
  • Green manufacturing techniques for optomechanical components
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