首页> 外文期刊>International Journal of Modern Physics, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Design of plasmonic backcontact nanogratings for broadband and polarization-insensitive absorption enhancement in thin-film solar cell
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Design of plasmonic backcontact nanogratings for broadband and polarization-insensitive absorption enhancement in thin-film solar cell

机译:用于薄膜太阳能电池的宽带和极化不敏感吸收增强的等离激元背面接触纳米光栅的设计

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摘要

We discuss the rules for designing nanostructured plasmonic backcontact of thin-film crystalline silicon solar cells using two-dimensional finite-difference time-domain (2D-FDTD) method. A novel efficient quasi-periodic plasmonic nanograting is designed. Numerical calculations demonstrate that broadband and polarization-insensitive absorption enhancement is achieved by the proposed structure which is based on a supercell geometry containing N subcells in each of which there is one Ag nanowire deposited on the backcontact of the solar cell. The proposed structure offers the possibility of controlling the number and location of photonic and plasmonic modes and outperforms the periodic plasmonic nanogratings which only utilize plasmonic resonances. We start by tuning the plasmonic mode of one subcell and then construct the supercell based on the final design of the subcell. Our findings show that with a proper choice of key parameters of the nanograting, several photonic and plasmonic modes can be excited across the entire spectral region where crystalline silicon (c-Si) is absorbing. The absorption enhancement is significant, particularly in the long wavelength region where c-Si is weakly absorbing.
机译:我们讨论了使用二维有限差分时域(2D-FDTD)方法设计薄膜晶体硅太阳能电池的纳米结构等离子体回接触的规则。设计了一种新型的高效准周期等离子体纳米光栅。数值计算表明,所提出的结构是基于包含N个子电池的超级电池几何结构而实现的,对宽带和偏振不敏感的吸收增强得以实现,在每个子电池中,有一个Ag纳米线沉积在太阳能电池的背触点上。所提出的结构提供了控制光子和等离子体模式的数量和位置的可能性,并且优于仅利用等离子体共振的周期性等离子体纳米光栅。我们首先调整一个子电池的等离子体模式,然后根据子电池的最终设计构造超级电池。我们的发现表明,通过适当选择纳米光栅的关键参数,可以在吸收晶体硅(c-Si)的整个光谱区域中激发几种光子和等离子体模式。吸收增强是显着的,特别是在c-Si吸收弱的长波长区域。

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