Germanium (Ge) Optical Material

Premium infrared optical material for thermal imaging and CO₂ laser systems

Transmission
2–14 μm (opaque below 2 μm)
Refractive Index
~4.0 @ 10.6 μm
Hardness
6 Mohs
Density
5.32 g/cm³
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Quick Answer

Germanium (Ge) is the most widely used infrared optical material for thermal imaging (8–14 μm) and CO₂ laser systems (10.6 μm). It offers high refractive index (~4.0), excellent transmission in the 2–14 μm range, and good mechanical hardness. However, it is opaque below ~2 μm and has significant temperature-dependent absorption above 100°C.

What Is Germanium (Ge)?

Germanium is a gray, lustrous metalloid with exceptional infrared transmission properties. It is the standard material for thermal imaging systems operating in the 8–14 μm atmospheric window and for CO₂ laser optics at 10.6 μm.

With a refractive index of approximately 4.0 in the IR range, Germanium lenses require effective AR coatings to achieve high transmission. Despite its high density (5.32 g/cm³), Germanium's hardness (6 Mohs) makes it surprisingly durable for an IR material.

Optical & Physical Properties

Reference data — verify with PhotonEdge for project-specific specifications.

Transmission Range2–14 μm (opaque below 2 μm)
Refractive Index~4.0 @ 10.6 μm
Density5.32 g/cm³
Hardness6 Mohs
CTE6.1 × 10⁻⁶ /K
Thermal Conductivity60 W/(m·K)
dn/dT4.0 × 10⁻⁴ /K (significant thermal shift)
Softening/Melting Point938°C

Typical Applications

Thermal Imaging

LWIR cameras and surveillance systems (8–14 μm)

CO₂ Laser Systems

Lenses, windows and output couplers for 10.6 μm lasers

FTIR Spectroscopy

IR beam splitters and windows for spectroscopic analysis

Forward Looking IR (FLIR)

Automotive and aerospace IR sensing systems

Coating Considerations

Dual-band AR (3-5 μm / 8-14 μm)

Broadband AR for MWIR and LWIR simultaneously. Essential due to high uncoated reflection (~36% per surface).

Typical use: Thermal imaging systems

Single-band AR (10.6 μm)

Optimized for CO₂ laser wavelength. R < 0.5% per surface.

Typical use: CO₂ laser cutting and marking

ZnS Overcoat

Protective layer for harsh environments.

Typical use: Outdoor or industrial environments

Engineering Considerations

Thermal Absorption

Above 100°C, Germanium absorption increases significantly (dn/dT = 4.0×10⁻⁴/K). For high-power CO₂ lasers, verify thermal stability.

Refractive Index

High index (~4.0) means strong reflection losses without AR coating. Uncoated transmission is only ~45% per surface.

Temperature Range

Performance degrades above 100–150°C. For high-temperature applications, consider alternative IR materials.

Weight

High density (5.32 g/cm³) results in heavier optics compared to ZnSe or Si.

Material Comparison

vs ZnSe

Ge is harder and less expensive, but ZnSe has broader transmission (0.5–20 μm) and lower dn/dT

vs Silicon

Ge covers MWIR and LWIR; Si only covers 1.2–8 μm. Ge is better for 10.6 μm

vs GaAs

Similar IR range, but GaAs has lower dn/dT for thermal stability

Frequently Asked Questions

What is Germanium used for in optics?

Germanium is primarily used for thermal imaging optics (8–14 μm) and CO₂ laser components (10.6 μm). It is the most cost-effective IR material for these wavelength ranges.

Is Germanium transparent in visible light?

No. Germanium is completely opaque to visible light. Its transmission range starts at approximately 2 μm in the infrared.

What coating does Germanium need?

Due to its high refractive index (~4.0), uncoated Germanium reflects ~36% per surface. AR coatings are essential: dual-band (3–5 / 8–14 μm) for thermal imaging, or single-band for CO₂ laser.

Can Germanium be used with high-power lasers?

Yes, but with caution. Above 100°C, absorption increases significantly. For high-power CO₂ lasers, beam diameter and duty cycle must be evaluated.

How does Germanium compare to ZnSe?

Germanium is harder (6 vs 2.5 Mohs) and less expensive, but ZnSe offers broader transmission (0.5–20 μm) and better thermal stability for high-power applications.

Need Germanium (Ge) Optics?

Describe your application and wavelength requirements. Our engineering team will recommend the optimal material grade and specifications.

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Optical Material

BK7 Optical Glass

BK7 is the most widely used optical glass for visible and near-infrared applications. A borosilicate crown glass, BK7 offers excellent optical clarity, good homogeneity, and reasonable cost — making it the default choice for many general-purpose optical components.

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Key Optical Properties

Property Value
Transmission Range 350 nm – 2.0 μm
Refractive Index 1.5168 @ 587.6nm
Thermal Expansion 7.1 × 10⁻⁶ /K (20-300°C)
Density 2.51 g/cm³
Knoop Hardness 610 HK

Advantages

  • Excellent visible transmission (>92% per surface uncoated)
  • High material homogeneity and consistency
  • Good chemical resistance and stability
  • Cost-effective — widely available in stock sizes
  • Suitable for most visible and NIR applications

Limitations

  • Not suitable for UV below 350nm
  • Higher thermal expansion than fused silica
  • Lower LIDT than fused silica for high-power lasers
  • Hygroscopic under extreme humidity conditions
  • Limited IR transmission beyond 2μm

Typical Applications

Imaging lenses and objectives

Beam splitters and prisms

General-purpose windows

Spectrometer optics

Machine vision systems

Common Coating Options

Standard coating types available for this material. Custom coating designs available on request.

Broadband AR (VIS, VIS-NIR)
Anti-reflection single-layer MgF₂
Protected/enhanced aluminum
Dielectric HR and partial reflector
Beam splitter coatings

Products Using Germanium

Browse our catalog of precision optical components available in Germanium

Windows

Germanium Circular/Square Windows

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View All Germanium Products →

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