Broad Infrared Use
Useful transmission from approximately 1.2 to 7 µm, depending on grade, thickness, and surface finish.
A lightweight crystalline infrared material used for thermal imaging, laser systems, spectroscopy, and precision optical windows.
Silicon combines low density, good mechanical strength, high thermal conductivity, and useful infrared transmission for compact optical systems.
Useful transmission from approximately 1.2 to 7 µm, depending on grade, thickness, and surface finish.
A density near 2.33 g/cm³ helps reduce weight in airborne, space, and compact imaging systems.
Efficient heat transfer supports stable performance in high-power and thermally demanding assemblies.
Good hardness and strength make silicon suitable for precision windows, mirrors, and custom components.
Representative values for optical-grade Silicon (Si). Final values vary by material grade, wavelength, temperature, thickness, supplier specification, and test method.
| Chemical Formula | Si |
|---|---|
| Crystal Structure | Cubic diamond structure |
| Density | Approximately 2.33 g/cm³ |
| Knoop Hardness | Approximately 1150 |
| Young’s Modulus | Approximately 130–188 GPa, orientation dependent |
| Poisson’s Ratio | Approximately 0.28 |
| Thermal Expansion | Approximately 2.6 × 10⁻⁶/K |
| Melting Point | Approximately 1414°C |
| Transmission Range | Approximately 1.2–7 µm, grade and thickness dependent |
|---|---|
| Refractive Index | Approximately 3.42 at 5 µm |
| Visible Appearance | Opaque, dark gray with a polished metallic appearance |
| Reflection Loss | High when uncoated; AR coatings are commonly applied |
| Thermal Conductivity | High compared with many infrared optical materials |
| Coating Compatibility | NIR/MWIR AR, filter, reflective, and protective coatings |
| Available Grades | Optical, float-zone, Czochralski, and application-specific grades |
Silicon is widely used from the near infrared into the mid-wave infrared, especially when low weight, strength, and thermal conductivity are important.
| Property | Germanium | ZnSe | ZnS | Silicon (Si) |
|---|---|---|---|---|
| Density | High | Moderate | Moderate | Low |
| Thermal Conductivity | Moderate | Low | Moderate | High |
| LWIR Performance | Excellent | Very Good | Very Good | Limited |
| Mechanical Strength | Good | Moderate | Good | Very Good |
| Weight-Sensitive Systems | Moderate | Good | Good | Excellent |
COE Sapphire supports prototype, low-volume, and repeat production of precision silicon windows, mirrors, lenses, wafers, and custom infrared components.
Controlled cutting, edging, beveling, coring, and custom geometry fabrication for brittle high-index silicon.
Precision flat, spherical, aspheric, and custom polishing with process control for surface quality and edge integrity.
MWIR and LWIR anti-reflection, protective, filter, and diamond-like carbon coatings.
Dimensional inspection, interferometry, surface inspection, transmission verification, and documentation.
Provide optical grade, operating wavelength, dimensions, tolerances, surface quality, flatness or power, wedge or parallelism, clear aperture, edge treatment, coating, quantity, and environmental requirements.
Discuss Your SpecificationOptical silicon typically transmits from about 1.2 to 7 µm, with practical performance depending on grade, resistivity, thickness, temperature, and coating.
No. Polished silicon appears dark gray and reflective in visible light while transmitting selected infrared wavelengths.
Silicon is lighter, harder, and more thermally conductive than germanium, although its useful infrared range does not extend as far into the long-wave infrared.
Usually yes. Its high refractive index causes significant surface reflection, so AR coatings are commonly applied for the intended spectral band.
Yes. Silicon is widely used as a lightweight substrate for reflective optics and scanning mirrors because of its stiffness, thermal conductivity, and polishability.
Send us your drawing, specification, or application requirements.