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MSE PRO CVD Continuous Tin Diselenide (SnSe2) Film– MSE Supplies LLC

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MSE PRO Chemical Vapor Deposition (CVD) Continuous Tin Diselenide (SnSe<sub>2</sub>) Film - MSE Supplies LLC

MSE PRO Chemical Vapor Deposition (CVD) Continuous Tin Diselenide (SnSe2) Film

SKU: SU5012

  • $ 43995


MSE PRO™ Chemical Vapor Deposition (CVD) Continuous Tin Diselenide (SnSe2) Film

  • Film: Continuous Tin Diselenide (SnSe2)
  • Substrate: Single Side Polished C-plane Sapphire (SU5012) 
  • Size: 10x10mm
  • Coverage: Full

Applications

Two-dimensional (2D) transition metal dichalcogenides (TMDs) have attracted increasing attention owing to their diverse properties ranging from insulator to metal and promising for wide applications. TMDs and their 2D van der Waals heterostructures have been proposed and demonstrated in various applications, such as electronics, optoelectronics, photonics and photovoltaics.

Among TMDs, SnSe2 has a high intrinsic electron mobility at room temperature and ultralow thermal conductivity. Furthermore, SnSe2 exhibits pressure-induced periodic lattice distortion and, moreover its atomic structure can reversibly change from amorphous to crystalline upon laser heating, being a phase change memory material. Owing to these peculiarities, SnSe2 has high application capabilities in several fields, including superconductivity, batteries, photodetection, photocatalysis, saturable absorbers for eye-safe lasers, and thermoelectricity.

We can offer continuous SnSe2 film on substrates, such as sapphire, Si, Si/SiO2, quartz etc. Substrate size is also customizable. Please contact MSE Supplies if you need bulk pricing or customization.

References:

1. Electronic and optical properties of monolayer tin diselenide: The effect of doping, magnetic field, and defects. Physical Review B 101, no. 12 (2020): 125430.

2. Tin Diselenide (SnSe2) Van der Waals Semiconductor: Surface Chemical Reactivity, Ambient Stability, Chemical and Optical Sensors. Materials 15, no. 3 (2022): 1154.

3. Fast photoresponse from 1T tin diselenide atomic layers. Advanced Functional Materials 26, no. 1 (2016): 137-145.