Microscopes

Image Part Number Description / PDF Quantity Rfq
BD-209-213

BD-209-213

Aven

USB DIGITAL MICROSCOPE 5M MIGHTY

3

26800B-323

26800B-323

Aven

MICRO STEREO ZM 10X-44X W/LIGHT

0

26800B-373-1

26800B-373-1

Aven

SPZ 50 STEREO ZOOM BINOCULAR MIC

2

SPZHT-135

SPZHT-135

Aven

MICRO STEREO ZM 21X-135X NON-ILL

9

DSZV-44

DSZV-44

Aven

MICRO STEREO ZM 10X-44X NON-ILL

2

MLS640-244-534

MLS640-244-534

Aven

DIGITAL MICROSCOPE MIGHTY CAM US

0

26800B-534-SPZ

26800B-534-SPZ

Aven

SPZ-50 STEREO ZOOM MICROSCOPE WI

2

SPZ-50-534-223

SPZ-50-534-223

Aven

STEREO ZOOM BINOCULAR MICRSCOPE

2

26700-140

26700-140

Aven

MICROVUE DIGITAL MICROSCOPE WITH

612

26700-200-PLR

26700-200-PLR

Aven

MICROSCOPE DGTL 10X-200X W/LIGHT

4

26800C-551

26800C-551

Aven

MICROSCOPE PRTBL 50X W/LIGHT

1142

26800B-351

26800B-351

Aven

MICRO STEREO ZM 20X-135X W/LIGHT

4

BD-209-212

BD-209-212

Aven

USB DIGITAL MICROSCOPE 5M MIGHTY

55

26800B-373-6

26800B-373-6

Aven

SPZ-50 STEREO BINOCULAR MICROSCO

0

26800B-250

26800B-250

Aven

MONOCULAR ZOOM MICROSCOPE SYSTEM

1

DSZ-44

DSZ-44

Aven

MICRO STEREO ZM 10X-44X W/LIGHT

6

SPZV-50E

SPZV-50E

Aven

MICROSCOPE BODY SZ, TRINCOULAR 6

4

26800B-339

26800B-339

Aven

MICRO STEREO ZM 10X-93X W/LIGHT

2

258-181-551-PRO

258-181-551-PRO

Aven

DIGITAL MICROSCOPE MIGHTY CAM PR

0

26800B-373-ESD

26800B-373-ESD

Aven

STEREO ZOOM TRINOCULAR MICROSCOP

0

Microscopes

1. Overview

Microscopes are optical instruments that use lenses or combinations of lenses to magnify and resolve fine details of specimens beyond the capability of the human eye. They play a critical role in scientific research, industrial quality control, medical diagnostics, and material analysis. Modern microscopes integrate advanced optics, digital imaging, and automation technologies to enable precise visualization and quantitative analysis at microscopic scales.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Optical MicroscopeUses visible light and lenses for magnification (up to 1500x). Includes brightfield, darkfield, phase contrast, and fluorescence modes.Biological sample observation, histology, metallurgical analysis
Electron MicroscopeUtilizes electron beams for ultra-high resolution (up to 0.1 nm). Includes SEM (Scanning Electron Microscope) and TEM (Transmission Electron Microscope).Nanomaterial characterization, semiconductor defect analysis, virus imaging
Scanning Probe MicroscopeMeasures surface topography at atomic levels using a physical probe. Includes AFM (Atomic Force Microscope) and STM (Scanning Tunneling Microscope).Surface roughness measurement, molecular manipulation
Confocal MicroscopeUses laser scanning and pinhole apertures to eliminate out-of-focus light, enabling 3D imaging.Cell biology, fluorescent labeling, thick tissue imaging

3. Structure and Components

Typical components of an optical microscope include:

  • Optical System: Objective lenses (4x 100x magnification), eyepieces (10x 25x), and light source (LED, halogen, or laser).
  • Mechanical Frame: Stage for sample placement, focus adjustment knobs (coarse/fine), and revolver for lens switching.
  • Digital Imaging System: CMOS/CCD camera, image processing software, and display monitor.
  • Control Interface: Joystick for manual operation, motorized stages for automated scanning, and software for data analysis.

4. Key Technical Specifications

ParameterDescriptionImportance
ResolutionMinimum distance between two distinguishable points (0.2 m for optical microscopes).Determines the clarity of fine details.
Magnification RangeCombined power of objective and eyepiece (e.g., 40x 1000x).Defines observable sample size limits.
Numerical Aperture (NA)Light-gathering ability of the objective lens (e.g., 0.1 1.4).Impacts resolution and depth of field.
Field of View (FOV)Area visible in a single view (e.g., 0.5 2 mm diameter).Affects sample navigation efficiency.
Working DistanceDistance between objective lens and sample (e.g., 0.5 50 mm).Determines compatibility with large/3D samples.

5. Application Fields

Key industries and applications:

  • Life Sciences: Cellular morphology, histopathology, live-cell imaging.
  • Materials Science: Metallography, polymer surface analysis, composite material testing.
  • Semiconductor Industry: Wafer defect detection, circuit inspection (e.g., AOI systems).
  • Clinical Diagnostics: Blood smear analysis, microbiology, cytology.
  • Education: Student microscopes for basic biological research.

Case Study: In semiconductor manufacturing, confocal microscopes are used to inspect photomasks for defects smaller than 100 nm, ensuring chip yield rates exceed 95%.

6. Leading Manufacturers and Representative Products

ManufacturerProduct ExampleKey Specifications
Carl ZeissAxio Imager 2Resolution: 0.12 m, 100W LED illumination, motorized stage
NikonEclipse Ti2Max magnification: 1000x, CFI60 optical system
OlympusBX536-axis motorized control, fluorescence imaging capability
Leica MicrosystemsDM6 BAutomated magnification selection, color camera resolution: 18 MP

7. Selection Guidelines

Key considerations:

  1. Application Requirements: Choose optical microscopes for live samples, electron microscopes for sub-nanometer resolution.
  2. Budget Constraints: Entry-level models cost $5,000 $20,000; electron microscopes range from $100,000 to over $1M.
  3. Automation Needs: Motorized stages and AI-based analysis software are essential for high-throughput production lines.
  4. Sample Characteristics: Transparent samples require phase-contrast or DIC optics; conductive materials need SEM compatibility.
  5. Future Scalability: Modular systems allow upgrades with fluorescence modules or Raman spectroscopy integration.

8. Industry Trends

Future developments include:

  • Super-Resolution Imaging: Techniques like STED and PALM breaking the diffraction limit (resolution <50 nm).
  • AI Integration: Deep learning algorithms for automatic defect classification in industrial inspection.
  • Multi-Modal Systems: Combined optical and X-ray tomography for 3D structural analysis.
  • Miniaturization: Portable microscopes with smartphone connectivity for field diagnostics.
  • Eco-Design: Energy-efficient LED illumination and recyclable polymer components.
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