Enhancement of optical absorption in Plasmonic thin film solar cell

P. Sarkar, Saradindu Panda, B. Maji, A. Mukhopadhyay
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Abstract

Recently, plasmonics gives very much interest and closely involves in the main domains of nanophotonics that can control of optical fields at the nanoscale level. Its remarkable property is to concentrate and enhance the electromagnetic field on the nanometres scale especially in solar cell. In plasmonic field, Nobel metals used as nanoparticle where density of electron gas which oscillates at surface Plasmon frequency at the same time also improves absorption by scattering. So the use of plasmonic in solar cell gives better opportunity to enhance efficiency by absorption as the optical spectrum loss are main part of total loss in solar cell. So we investigate the induction of surface Plasmon theory for enhancement of extinction in terms of absorption and scattering. In this paper, we also studied finite-difference time domain based proposed model and find various plasmonic field component of Eigen value and characterized optical improvement in plasmonic thin film solar cell.
等离子体薄膜太阳能电池光吸收的增强
近年来,等离子体在纳米光子学的主要领域引起了人们的极大兴趣,并与纳米级光场控制密切相关。它的显著特性是在纳米尺度上集中和增强电磁场,特别是在太阳能电池中。在等离子体场中,用诺贝尔金属作为纳米粒子,同时以表面等离子体频率振荡的电子气体密度也通过散射提高吸收。由于光谱损耗是太阳能电池总损耗的主要部分,因此等离子体在太阳能电池中的应用为吸收提高效率提供了更好的机会。因此,我们从吸收和散射的角度研究了表面等离子体理论对消光增强的诱导作用。本文还对基于时域有限差分模型进行了研究,发现了等离子体薄膜太阳能电池中各等离子体场分量的本征值,并对其光学性能进行了表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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