基于优化ETL和html的高效Cs2TiI6基无铅钙钛矿太阳能电池的SCAPS-1D软件数值模拟

Md. Abdul Halim, Md. Shafiqul Islam, M. Z. Hossain, Md. Yakub Ali Khan
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摘要

为了提供最佳的光伏应用,本文研究了铯钛(IV)基单卤化物钙钛矿吸收材料的物理,光学和电学方面的问题。钙钛矿太阳能电池作为一种可再生能源,在自然资源利用多样化的背景下越来越有必要。由于其1.8 eV的有效带隙,Cs2TiI6已成为当今薄膜太阳能电池的理想竞争者。本文给出了以Au/FTO/C60/Cs2TiI6/CH3NH3SnI3/Al为基,以CH3NH3SnI3为空穴传输层(HTL),以C60和FTO为电子传输层(ETL)的平面结构在300K温度条件下的光谱响应。研究表明,利用FTO和C60作为电子传输层,可以实现电荷提取。FTO为沉积层提供高透射率、强导电性和良好的粘附性。当用于共蒸发钙钛矿太阳能电池时,理想厚度小于15 nm的C60层改善了电荷提取。由于镉对环境的毒性,本文尽量避免在太阳能电池生产中使用镉。模拟包括吸收层厚度、HTL、ETL、缺陷密度、波长、温度和串联电阻的详细配置优化。通过在1µm ~ 6µm范围内改变吸收层厚度,测量了功率转换效率(η)、填充系数(FF)、开路电压(Voc)、J-V曲线、量子效率和短路电流(Jsc)。当吸收层厚度为4µm,电子传输层厚度为0.6µm时,优化后的钙钛矿太阳能电池的功率转换效率为21.8429%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Simulation of Highly Efficient Cs2TiI6 based Pb Free Perovskites Solar Cell with the Help of Optimized ETL and HTL Using SCAPS-1D Software
In order to provide the best photovoltaic application, this paper examines the physical, optical, and electrical aspects of Cesium Titanium (IV) based single halide Perovskite absorption materials. Perovskite solar cell for scavenging renewable energy, has grown more and more necessary in the context of the diversification of the use of natural resources. Due to its efficient band gap of 1.8 eV, Cs2TiI6 has become a desirable contender for today's thin-film solar cell. This article shows the spectrum responses of a planar Au/FTO/C60/Cs2TiI6/CH3NH3SnI3/Al based structure where CH3NH3SnI3 is used as a Hole transport layer (HTL) and C60 and FTO are utilized as Electron transport layers (ETL) under 300K temperature conditions. This research demonstrates that employing FTO and C60 as Electron transport layer charge extraction can be achieved. FTO provides High transmission, strong conductivity, and good adherence for the deposited layers. When used in a coevaporated perovskite solar cell, a C60 layer with an ideal thickness less than 15 nm improves charge extraction. This article tried to avoid cadmium for solar cell generation due to its toxicity on environment. The simulation included detailed configuration optimization for the thickness of the absorber layer, HTL, ETL, defect density, Wavelength, temperature, and series resistance.  In this work the Power Conversion Efficiency (η), Fill Factor (FF), Open-circuit Voltage (Voc), J-V Curve, Quantum Efficiency and Short-circuit current (Jsc) have been measured by varying thickness of absorber layer in the range of 1µm to 6 µm. The optimized perovskite solar cell shows a power conversion efficiency of 21.8429% when the absorber layer thickness is 4µm and electron transport layer thickness is 0.6µm.
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