Morphological Design of the Photonic Crystals Influence on Improving the Optoelectronic Properties of a-SiGe:H Thin Film Solar Cell

IF 0.5 Q4 PHYSICS, MULTIDISCIPLINARY
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引用次数: 0

Abstract

Abstract: With their nano-engineered feature, Photonic Crystals (PhCs) allow the best control of the propagation and absorption of light in an increased way. In our work, we applied the Rigorous Coupled Wave Analysis (RCWA) method to calculate the diffraction efficiency, field distribution, for a specific incidence angle and absorption energy in a periodic structures using unpatterned, 1DPhC, half circle and triangular grating structures with both a-Si:H, a-SiGe:H thin film semiconductor materials with different gratings of PhCs to improve optical absorption, taking into account the J-V solar cell characteristics. According to our simulation, the ideal result was in the case of triangular grating with a-SiGe:H semiconductor material so for the presence of Germanium, which enhances light absorption by reducing the band gap energy. The optical light absorption was more than 85.7% by increase the lattice parameter from 0.3µm to 0.5µm. Moreover, we found a solar cell efficiency enhancement of 16.6%, with a total improvement of 7.74%; as compared with unpatterned grating. Concerning the incidence angle effect, the better one is ranged between 50° and 70° with a peak absorption ratio of 99%. Keywords: Photonic crystals, RCWA, Incidence angle, Triangular grating, Solar cell.
光子晶体的形态设计对改善a-SiGe:H薄膜太阳能电池光电性能的影响
摘要:光子晶体(Photonic Crystals, PhCs)具有纳米工程特性,可以更好地控制光的传播和吸收。在我们的工作中,我们应用严格耦合波分析(RCWA)方法计算了衍射效率、场分布、特定入射角和周期性结构中的吸收能量,采用a- si:H、a- sige:H薄膜半导体材料的无图案、1DPhC、半圆和三角形光栅结构,采用不同的phc光栅来提高光吸收,同时考虑到J-V太阳能电池的特性。根据我们的模拟,理想的结果是在三角形光栅与a-SiGe:H半导体材料的情况下,由于锗的存在,它通过减少带隙能量来增强光吸收。当晶格参数从0.3µm增加到0.5µm时,光学光吸收率达到85.7%以上。此外,我们发现太阳能电池效率提高了16.6%,总效率提高了7.74%;与无图案光栅相比。入射角效应在50°~ 70°范围内效果较好,峰值吸收比为99%。关键词:光子晶体,RCWA,入射角,三角光栅,太阳能电池
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来源期刊
Jordan Journal of Physics
Jordan Journal of Physics PHYSICS, MULTIDISCIPLINARY-
CiteScore
0.90
自引率
14.30%
发文量
38
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