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首页> 外文期刊>RSC Advances >Micron-scale rod-like scattering particles for light trapping in nanostructured thin film solar cells
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Micron-scale rod-like scattering particles for light trapping in nanostructured thin film solar cells

机译:用于纳米结构薄膜太阳能电池的光捕获的微米级棒状散射颗粒

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摘要

Spherical dielectric particles, nanofibers, and nanorods have been widely used as embedded scattering objects in nanostructured thin film solar cells. Here we propose micron-scale rod-like dielectric particles as a more effective alternative to the spherical ones for light trapping in thin film solar cells. The superior performance of these micro-rods is attributed to their larger scattering efficiency relative to the spherical particles as evidenced by full-wave optical calculations. Using a one-pot process, 1.7 mu m-long bullet-shaped silica rods with 330 nm diameter are synthesized and their concentration in a N719-sensitized solar cell is optimized. A solar cell with an optimal concentration of rod-like particles delivers 8.74% power conversion efficiency (PCE), given the 6.33% PCE of the cell without any scattering particle. Moreover, a silver layer is deposited by chemical reduction of AgNO3 (Tollens' process) on the rear-side of the counter electrode, and hence the PCE of the optimal cell reaches 9.94%, showing 14% extra improvement due to the presence of the silver back-reflector. The rod-like scattering particles introduced here can be applied to other sensitized solar cells such as quantum-dot and organometallic perovskite solar cells.
机译:球形介电颗粒,纳米纤维和纳米棒被广泛用作纳米结构薄膜太阳能电池中的嵌入散射物体。在这里,我们将微米级棒状介电颗粒提出为用于薄膜太阳能电池的光捕获的球形型胶片介电粒子。这些微杆的优异性能归因于它们相对于球形颗粒的散射效率较大,如全波光学计算所证明的。使用单罐方法,合成具有330nm直径的1.7μm长的子弹形二氧化硅棒,并优化了N719敏化太阳能电池中的浓度。给定8.74%的电气转换效率(PCE)的太阳能电池提供了8.74%的电池,但没有任何散射颗粒。此外,通过对反电极的后侧的AgNO3(Tollens'方法)的化学还原沉积银层,因此最佳细胞的PCE达到9.94%,显示出由于存在而额外的额外改善银背反射器。这里介绍的杆状散射颗粒可以应用于其他敏化太阳能电池,例如量子点和有机金属钙钛矿太阳能电池。

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