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CVD Prism Diamonds High Quality Laboratory Diamonds for Optical Applications
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Lab grown diamonds, also known as synthetic diamond , man made diamond or cultured diamonds, are grown in highly controlled laboratory environments using advanced technological processes that duplicate the conditions under which diamonds naturally develop when they form in the mantle, beneath the Earth’s crust.   Lab grown diamonds consist of actual carbon atoms arranged in the characteristic diamond crystal structure. Since they are made of the same material as natural diamonds, they exhibit the same optical and chemical properties.
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Lab grown diamonds, also known as synthetic diamond , man made diamond or cultured diamonds, are grown in highly controlled laboratory environments using advanced technological processes that duplicate the conditions under which diamonds naturally develop when they form in the mantle, beneath the Earth’s crust.   Lab grown diamonds consist of actual carbon atoms arranged in the characteristic diamond crystal structure. Since they are made of the same material as natural diamonds, they exhibit the same optical and chemical properties.
0
0
Lab grown diamonds, also known as synthetic diamond , man made diamond or cultured diamonds, are grown in highly controlled laboratory environments using advanced technological processes that duplicate the conditions under which diamonds naturally develop when they form in the mantle, beneath the Earth’s crust.   Lab grown diamonds consist of actual carbon atoms arranged in the characteristic diamond crystal structure. Since they are made of the same material as natural diamonds, they exhibit the same optical and chemical properties.
0
0
Lab grown diamonds, also known as synthetic diamond , man made diamond or cultured diamonds, are grown in highly controlled laboratory environments using advanced technological processes that duplicate the conditions under which diamonds naturally develop when they form in the mantle, beneath the Earth’s crust.   Lab grown diamonds consist of actual carbon atoms arranged in the characteristic diamond crystal structure. Since they are made of the same material as natural diamonds, they exhibit the same optical and chemical properties.
0
0
Lab grown diamonds, also known as synthetic diamond , man made diamond or cultured diamonds, are grown in highly controlled laboratory environments using advanced technological processes that duplicate the conditions under which diamonds naturally develop when they form in the mantle, beneath the Earth’s crust.   Lab grown diamonds consist of actual carbon atoms arranged in the characteristic diamond crystal structure. Since they are made of the same material as natural diamonds, they exhibit the same optical and chemical properties.
0
0
Lab grown diamonds, also known as synthetic diamond , man made diamond or cultured diamonds, are grown in highly controlled laboratory environments using advanced technological processes that duplicate the conditions under which diamonds naturally develop when they form in the mantle, beneath the Earth’s crust.   Lab grown diamonds consist of actual carbon atoms arranged in the characteristic diamond crystal structure. Since they are made of the same material as natural diamonds, they exhibit the same optical and chemical properties.
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CVD Prism Diamonds High Quality Laboratory Diamonds for Optical Applications

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  • Prism Optical Diamond

  • INFI

CVD Prism Diamonds High Quality Laboratory Diamonds for Optical Applications


Optical-grade CVD single crystal diamond possesses outstanding optical and physical properties: superior light transmission, premium crystalline structure, dimensional stability, wear resistance, and high-temperature tolerance. These characteristics satisfy strict demands for advanced optical systems, boosting performance and reliability in diverse optical applications.


Material Properties
CVD diamond provides broadband wavelength transmission with minimal IR scatter. Extreme hardness and chemical inertness make it perfect for high-power, large-area applications requiring strength and hazard resistance. These properties facilitate compact geometries for lightweight designs. Innovations in diamond shaping address cutting-edge optical challenges.


Competitive Advantages
• Miniaturization: 50% smaller than traditional optical components
• Extreme Environment Operation: Functional from -200°C to 850°C
• Signal Clarity: 40 dB higher SNR compared to sapphire alternatives


Optical Applications

  • Laser Systems: Resonators, output windows, mirrors

  • Imaging & Sensing: Telescopes, cameras, spectrometers, photodetectors

  • Precision Instruments: Interferometer mirrors, beam splitters, gratings

  • Medical Technology: Endoscopes, optical microscopes, laser devices

  • Communication: Fiber optic couplers, modulators, demodulators

  • Industrial: Laser etching equipment, Raman spectrometers

  • Astronomy: Observation instruments


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Specification
Face orientation {100}
Surface finish Polished,Ra<2nm
Edges Laser Cut
Laser Kerf <3°
Density 3.52g/cm³
Raman FWHM ~2.1cm-1
Nitrogen concentation <0.5ppm
Thermal conductivity 1900~2200W/(m*K) @300 K
Transmission >70% @1064nm
Refractiveindex 2.379 @10.6um


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