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On the electronic properties and performance of new nano thick solar material based on GeSe/SnS hetro-bilayer

机译:基于GESE / SNS Hetro-Bilayer的新型纳米厚太阳能材料的电子特性与性能

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摘要

Motivated by recent works dealing with electronic properties and high carrier mobility of monolayer materials and their potential applications in nano thick solar cells, we investigate the electronic properties and performance of new nano thick solar material based on GeSe/SnS hetro-bilayer. The calculations are performed using DFT calculations within GGA + vdW and HSE06 hybrid functional approximations. Our results indicate that this hetro-bilayer has a direct band gap of 1.48 eV, which is in the optimal range of the efficient single-junction solar cell, and forms the type-Ⅱ band alignment in which SnS is the donor and GeSe is the acceptor. The values of V_(oc), FF and J_(sc) using an external quantum efficiency with a limit of 100% are also calculated. Using Scharber model, the upper limit of power conversion efficiency, PCE, is estimated to be 18.74% which is higher than the reported efficiencies of hetro-bilayers. Another estimate of PCE via the descriptor model is found to be 28.83%. These findings make this hetero-bilayer a good candidate for solar energy conversion as an efficient nano-thick solar cell material, and optoelectronics applications as well.
机译:最近作品的推动,处理单层材料的电子特性和高载体移动性及其在纳米厚太阳能电池中的潜在应用,我们研究了基于GESE / SNS Hetro-Bilayer的新型纳米厚太阳能材料的电子特性和性能。使用GGA + VDW和HSE06混合功能近似的DFT计算来执行计算。我们的结果表明,该Hetro-Bilayer具有1.48eV的直接带隙,这是在高效的单结太阳能电池的最佳范围内,形成Ⅱ型带对准,其中SNS是供体和GESE受体。还计算使用具有100%限制的外部量子效率的V_(OC),FF和J_(SC)的值。使用舒尔博模型,功率转换效率的上限,PCE估计为18.74%,高于报告的Hetro-双层的效率。发现通过描述符模型的PCE的另一估计为28.83%。这些发现使得这种异性双层是太阳能转换的良好候选者,作为高效的纳米厚的太阳能电池材料和光电子应用。

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