Suppressed narrowband reflectance of nanopatterned silicon photovoltaic cells

IF 2.3 3区 物理与天体物理 Q2 OPTICS
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Abstract

The increasing demand for efficient yet nonpolluting energy conversion technologies require the photovoltaic (PV) systems to have fine-tuned optical responses and suppressed thermalization. PV cells that are based on Silicon are commonly patterned via lithography and etching techniques to implement micro/nanoscale surface components to reduce their reflectance on a wide spectrum while enhancing their absorption of energies around and higher than its bandgap. In this way, the power output increases while increases in cell temperature (e.g., thermalization) is also expected. In this work, a nanopatterned Si PV cell is designed and optimized evaluating different surface nanostructures to suppress the reflectance only in the vicinity of Si bandgap energy, so the power output can be improved and the thermalization can be suppressed simultaneously. Two- and three-dimensional, periodic structures are simulated by finite-difference time-domain method and optimized via parameter sweep optimization technique. A figure of merit (FOM) is developed to compare the in-band and out-of-band front side reflectance. The results revealed that rectangular gratings provided higher FOM, thus better selectivity compared to triangular ones. Similarly, square prism nanostructures demonstrate better selectivity compared to pyramid structures. Rigorous correlation analyses revealed that the selectivity is more strongly correlated with the height than the width. It is demonstrated that with optimized square prism nanostructures, 20 % increase of the absorption of useful radiation is accompanied by a thermalization that is limited to 15 %. With pattern optimization, it is shown that the electrical power output can be improved without producing substantial increase in the cooling load of solar cells.

抑制纳米图案硅光伏电池的窄带反射率
对高效且无污染的能源转换技术的需求日益增长,这就要求光伏(PV)系统具有微调的光学响应和抑制热化的功能。以硅为基础的光伏电池通常通过光刻和蚀刻技术进行图案化,以实施微/纳米级表面组件,从而降低其在宽光谱上的反射率,同时增强其对带隙附近和高于带隙的能量的吸收。这样,在提高功率输出的同时,还可望提高电池温度(如热化)。在这项工作中,我们设计并优化了一种纳米图案硅光伏电池,通过评估不同的表面纳米结构,仅在硅带隙能量附近抑制反射率,从而提高功率输出并同时抑制热化。二维和三维周期性结构采用有限差分时域法进行模拟,并通过参数扫描优化技术进行优化。通过比较带内和带外的正面反射率,得出了优劣系数(FOM)。结果表明,矩形光栅的 FOM 值更高,因此与三角形光栅相比具有更好的选择性。同样,方形棱镜纳米结构比金字塔结构具有更好的选择性。严格的相关分析表明,选择性与高度的相关性比与宽度的相关性更强。研究表明,在优化方形棱镜纳米结构的同时,有用辐射的吸收率提高了 20%,而热化率却限制在 15%。研究表明,通过优化图案,可以在不大幅增加太阳能电池冷却负荷的情况下提高输出功率。
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来源期刊
CiteScore
5.30
自引率
21.70%
发文量
273
审稿时长
58 days
期刊介绍: Papers with the following subject areas are suitable for publication in the Journal of Quantitative Spectroscopy and Radiative Transfer: - Theoretical and experimental aspects of the spectra of atoms, molecules, ions, and plasmas. - Spectral lineshape studies including models and computational algorithms. - Atmospheric spectroscopy. - Theoretical and experimental aspects of light scattering. - Application of light scattering in particle characterization and remote sensing. - Application of light scattering in biological sciences and medicine. - Radiative transfer in absorbing, emitting, and scattering media. - Radiative transfer in stochastic media.
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