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首页> 外文期刊>Photonics and Nanostructures: Fundamentals and Applications >Optimized design of gradient Al component Al x Ga 1-x N nanostructure with hexagonal periodic arrangement for enhanced optical absorption of ultraviolet photodetectors
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Optimized design of gradient Al component Al x Ga 1-x N nanostructure with hexagonal periodic arrangement for enhanced optical absorption of ultraviolet photodetectors

机译:具有六边形周期性布置的梯度Al组分Al X Ga 1-X N纳米结构的优化设计,用于增强紫外光探测器的光学吸收

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摘要

A three-dimensional electromagnetic field model has been developed to study the photon capture properties of gradient band-gap AlxGa1-xN nanomaterials with built-in electric field using COMSOL Multiphysics commercial software based on finite element numerical simulation. Based on the phototrapping mechanism and the concept of radial mode resonance absorption, we studied AlxGa1-xN nanomaterials with different cross-section shapes and Al component distributions to obtain broad-band and omnidirectional light absorption in the ultraviolet band. In this process, based hexagonal periodic arrangement, we simulated and analyzed the optical responses of cones, hexagonal pyramids and hexagonal prisms structure, including optical absorption, quantum efficiency, electric field distribution and generation rate distribution. The results show that the non-uniform pyramid structure can effectively enhance the optical absorption efficiency at FR = 0.9. The photon generation rate of the pyramid nanostructure is mainly distributed in the cathode nanostructure part, which is significant for improving the emission efficiency of cathode electrons. In addition, we investigated the optical properties of AlxGa1-xN nanostructures by changing the distribution of Al component and the thickness of different sublayers. As a result, the prism structure achieves optimal optical absorption and quantum efficiency when the Al component ranges from 0 to 0.75. Although a strict three-dimensional AlGaN NWAs array model has been established in this work, it is still necessary to demonstrate the experimental results. In the future research, we will experimentally study the effect of different geometric shapes on UV photocathode.
机译:采用基于有限元数值模拟的COMSOL Multiphysics商用软件,建立了一个三维电磁场模型,研究了具有内置电场的梯度带隙AlxGa1-xN纳米材料的光子俘获特性。基于光俘获机理和径向模式共振吸收的概念,我们研究了具有不同截面形状和铝组分分布的AlxGa1-xN纳米材料,以获得紫外波段的宽带和全向光吸收。在这个过程中,基于六角周期排列,我们模拟和分析了圆锥体、六角锥体和六角棱镜结构的光学响应,包括光吸收、量子效率、电场分布和产生速率分布。结果表明,在FR=0.9时,非均匀金字塔结构可以有效地提高光吸收效率。金字塔纳米结构的光子产生率主要分布在阴极纳米结构部分,这对提高阴极电子的发射效率具有重要意义。此外,我们还通过改变Al组分的分布和不同亚层的厚度,研究了AlxGa1-xN纳米结构的光学性质。因此,当铝组分在0到0.75之间时,棱镜结构实现了最佳的光吸收和量子效率。虽然本工作建立了严格的三维AlGaN NWAs阵列模型,但仍有必要证明实验结果。在未来的研究中,我们将实验研究不同几何形状对紫外光电阴极的影响。

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