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Band gap engineering of Ca_xSr_(1-x)F_2 and its application as filterless vacuum ultraviolet photodetectors with controllable spectral responses

机译:Ca_xSr_(1-x)F_2的带隙工程及其在光谱响应可控的无滤光真空紫外光电探测器中的应用

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We experimentally demonstrate that the band gap of mixed crystals of calcium fluoride and strontium fluoride (CaF2 - SrF2, CaxSr1-xF2) can be engineered by modulating the composition ratio of CaF2 and SrF2. By increasing the CaF2 content, the band gap increases and the absorption edge is blue-shifted. A range of band gap energies can be obtained between 9.73 eV for pure SrF2 and 10.24 eV for pure CaF2. The first order Raman frequency shift increases linearly from 285.2 cm(-1) for pure SrF2 to 327.8 cm(-1) for pure CaF2. The ability to manipulate the band gap is maintained even at very low temperatures. Vacuum ultraviolet (VUV) photoconductive detectors are fabricated to explore the effect of varying composition ratios on spectral sensitivity. The spectral response of the photodetectors shifts to shorter wavelengths as the band gap increases. This allows the spectral response to be controlled by appropriately choosing the CaF2 - SrF2 ratio. Using CaxSr1-xF2 sensors also eliminates the need for extra filters to cut off unwanted longer wavelengths as the onset of their absorption occur in the VUV region. The controllable spectral response and filterless feature of CaxSr1-xF2 photodetectors provide an advantage over currently available oxide-, nitride-, and diamond-based photodetectors.
机译:我们实验证明,可以通过调节CaF2和SrF2的组成比来设计氟化钙和氟化锶混合晶体(CaF2-SrF2,CaxSr1-xF2)的带隙。通过增加CaF 2含量,带隙增加并且吸收边缘蓝移。在纯SrF2的9.73 eV和纯CaF2的10.24 eV之间,可以获得一定的带隙能量。一阶拉曼频移从纯SrF2的285.2 cm(-1)线性增加到纯CaF2的327.8 cm(-1)。即使在非常低的温度下,也能保持控制带隙的能力。制作了真空紫外(VUV)光电导检测器,以探索变化的组成比对光谱灵敏度的影响。随着带隙的增加,光电探测器的光谱响应将移至较短的波长。这样可以通过适当选择CaF2-SrF2比来控制光谱响应。使用CaxSr1-xF2传感器还消除了额外的滤光片,以切断不需要的较长波长,因为它们的吸收开始发生在VUV区域。 CaxSr1-xF2光电探测器的可控光谱响应和无滤波器功能提供了优于当前基于氧化物,氮化物和金刚石的光电探测器的优势。

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