April 02, 2026  ·  IR Mirror

Choosing a IR Mirror for 3D Scanning & Structured Light: A Checklist

Every 3D Scanning & Structured Light system eventually meets the same question: where does the light go, and how much of it survives the turn? A well-specified IR Mirror…

Every 3D Scanning & Structured Light system eventually meets the same question: where does the light go, and how much of it survives the turn? A well-specified IR Mirror answers both, which is why it earns a place on the bill of materials long before the enclosure is drawn.

At its core, the IR Mirror is a silicon, germanium or ZnSe element carrying a gold or dielectric for the infrared. That stack is engineered to return incident light efficiently over 700 nm – 10.6 µm, giving designers a predictable, low-loss way to steer a beam where they need it.

Reflection on a first surface is straightforward physics: photons strike the coated face and are returned according to the law of reflection, angle in equals angle out. Because the coating sits on top, there is no second surface behind it to create a faint ghost image, which matters whenever contrast or measurement accuracy is at stake.

Most of the engineering in a IR Mirror lives in its gold or dielectric for the infrared. The stack is designed for 700 nm – 10.6 µm and delivers > 98%, and its environmental protection layer keeps the metal from tarnishing so the mirror keeps working year after year.

Behind the coating sits the silicon, germanium or ZnSe substrate. Its job is mechanical: hold flatness, survive cutting and mounting, and stay stable with temperature. For many 3D Scanning & Structured Light uses, silicon, germanium or ZnSe hits the right balance of cost, flatness (λ/4) and workability.

A practical IR Mirror datasheet reads: silicon, germanium or ZnSe substrate, λ/4 flatness, 40-20 quality, 1–6 mm thick, > 98% over 700 nm – 10.6 µm. Those five lines settle most design reviews for 3D Scanning & Structured Light. See the standard size list for what we stock and what we cut to order.

In 3D Scanning & Structured Light, the IR Mirror usually appears wherever projecting and capturing patterned light accurately. Designers value it because it keeps the beam path predictable and the loss budget small, which translates directly into a more stable instrument. The applications overview maps where each industry places it.

Selecting a IR Mirror for 3D Scanning & Structured Light starts with the wavelength and angle of incidence, then the acceptable loss. Match the gold or dielectric for the infrared to 700 nm – 10.6 µm, confirm > 98%, and make sure the silicon, germanium or ZnSe and 1–6 mm fit the mount you already have. The spec and size tables make that comparison quick.

A short checklist covers most 3D Scanning & Structured Light cases: what band (700 nm – 10.6 µm)? at what angle? how much loss is allowed (> 98%)? then pick gold or dielectric for the infrared on silicon, germanium or ZnSe at 1–6 mm. Getting these four right avoids the most common rework — the application notes show how each sector resolves them.

Treat the gold or dielectric for the infrared as the asset it is. In 3D Scanning & Structured Light service, a IR Mirror that is cleaned rarely and handled by the edge outlasts one that is wiped often. Less touching, more performance.

Our production of a IR Mirror follows a simple, repeatable route: laser-cut the silicon, germanium or ZnSe to ±0.01 mm, smooth the edges, deposit the gold or dielectric for the infrared, and inspect to λ/4 / 40-20. Thickness options span 1–6 mm, and the same Hangzhou line that builds first-surface mirrors also runs windows, substrates and custom coatings.

A practical IR Mirror datasheet reads: silicon, germanium or ZnSe substrate, λ/4 flatness, 40-20 quality, 1–6 mm thick, > 98% over 700 nm – 10.6 µm. Those five lines settle most design reviews for 3D Scanning & Structured Light. See the standard size list for what we stock and what we cut to order.

Where projecting and capturing patterned light accurately, a IR Mirror earns its place by doing one job reliably: turning the beam without adding noise. In 3D Scanning & Structured Light that reliability is the difference between a prototype and a shippable product. More application examples are worth a look if the use case is close to yours.

Typical specs worth putting on a drawing: surface flatness λ/4, surface quality 40-20 (scratch-dig), substrate silicon, germanium or ZnSe, thickness 1–6 mm, and reflectivity > 98% over 700 nm – 10.6 µm. Stating these up front saves rounds of sampling later. Our full technical specifications and standard sizes list the tolerances we hold routinely.

Mounting notes

A IR Mirror is only as good as its mount. Use edge contact rather than clamping the face, avoid over-tightening that bends the silicon, germanium or ZnSe and degrades λ/4, and keep the coated side clear of adhesive. In 3D Scanning & Structured Light a kinematically supported mirror stays aligned through thermal cycles and shipping.

How the part is checked

Before a IR Mirror leaves the line it is inspected for flatness (λ/4), finish (40-20) and reflectance (> 98% over 700 nm – 10.6 µm). A simple 45° visual check reveals coating defects, and a flatness test confirms the wavefront stays within tolerance — the same discipline JYOPTO applies across its optical glass, vacuum-coating and precision cold-processing since 2020.

Coating a IR Mirror means laying down a gold or dielectric for the infrared whose optical thickness is controlled to a fraction of a wavelength. Done well, the part holds > 98% over 700 nm – 10.6 µm; done carelessly, it drifts and the system loses light it cannot afford to lose.

One term worth knowing

"Reflectivity" on a IR Mirror is the fraction of incident light returned by the gold or dielectric for the infrared. Quoting > 98% without the band (700 nm – 10.6 µm) is meaningless, because the same coating can be excellent at one wavelength and poor at another — always pair the number with the range.

A practical IR Mirror datasheet reads: silicon, germanium or ZnSe substrate, λ/4 flatness, 40-20 quality, 1–6 mm thick, > 98% over 700 nm – 10.6 µm. Those five lines settle most design reviews for 3D Scanning & Structured Light. See the standard size list for what we stock and what we cut to order.

Selecting a IR Mirror for 3D Scanning & Structured Light starts with the wavelength and angle of incidence, then the acceptable loss. Match the gold or dielectric for the infrared to 700 nm – 10.6 µm, confirm > 98%, and make sure the silicon, germanium or ZnSe and 1–6 mm fit the mount you already have. The spec and size tables make that comparison quick.

One term worth knowing

"Reflectivity" on a IR Mirror is the fraction of incident light returned by the gold or dielectric for the infrared. Quoting > 98% without the band (700 nm – 10.6 µm) is meaningless, because the same coating can be excellent at one wavelength and poor at another — always pair the number with the range.

Our production of a IR Mirror follows a simple, repeatable route: laser-cut the silicon, germanium or ZnSe to ±0.01 mm, smooth the edges, deposit the gold or dielectric for the infrared, and inspect to λ/4 / 40-20. Thickness options span 1–6 mm, and the same Hangzhou line that builds first-surface mirrors also runs windows, substrates and custom coatings.

Wrapping up

A IR Mirror is a small part with an outsized effect on 3D Scanning & Structured Light. Get the gold or dielectric for the infrared, silicon, germanium or ZnSe and flatness right and the rest of the system behaves. If your drawing calls for something specific, the team at JYOPTO can cut and coat it to match — start from the specifications and standard sizes, then tell us the wavelength and angle.

Talk to JYOPTO about your mirror needs

Custom sizes, coatings and substrates — cut to ±0.01 mm, shipped worldwide.