Efficiency Enhancement of Perovskite Solar Cells Based on Graphene Nanocomposites as Electrons and Holes Transport Layers

Hayder Hasan Ali
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Abstract

This study investigates the use of TiO2/G and ZrO2/G transport layers in perovskite solar cells. The hydrothermal technique was used to synthesize the transport layers. According to the results, using TiO2/G as an electron transport layer enhances the transfer of negative charges from perovskites, which increases the efficiency of the solar cell. This is thanks to improved electrical conductivity and less loss of negative charges in the transport layer. The positive gap transition from the perovskite layer to the gap transport layer was enhanced using ZrO2/G. The chemical and physical properties of ZrO2/G help to build a strong interface with perovskite, which promotes gap crossing and reduces the loss of positive charges. Regarding the photonic layer, the efficiency of the solar cell increased significantly when CsPbBr3 quantum dots were used as the active element due to their strong abilities to absorb light from the visible light spectrum according to absorption spectrometry measurements. The efficiency of converting light into electrical charges increases because they can absorb more sunlight, including low-level solar energy. Quantum dots have efficient charge transfer paths, which reduces charge loss and improves conversion efficiency. CsPbBr3 quantum dots are chemically and crystallineally stable. These factors work together to increase the efficiency of the perovskite solar cell when using CsPbBr3 quantum dots from 10.004% to 10.425%.
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基于石墨烯纳米复合材料作为电子和空穴传输层的过氧化物太阳能电池的效率提升
本研究探讨了在过氧化物太阳能电池中使用 TiO2/G 和 ZrO2/G 传输层的问题。采用水热技术合成了传输层。研究结果表明,使用 TiO2/G 作为电子传输层可增强过氧化物负电荷的转移,从而提高太阳能电池的效率。这要归功于传输层改善了导电性并减少了负电荷的损失。使用 ZrO2/G 增强了从过氧化物层到间隙传输层的正间隙转换。ZrO2/G 的化学和物理特性有助于与包光体建立牢固的界面,从而促进间隙跨越并减少正电荷的损失。在光子层方面,根据吸收光谱测量,CsPbBr3 量子点具有很强的吸收可见光谱光的能力,因此在使用 CsPbBr3 量子点作为活性元素时,太阳能电池的效率显著提高。由于量子点能够吸收更多的太阳光,包括低水平太阳能,因此将光转化为电荷的效率也会提高。量子点具有高效的电荷转移路径,可减少电荷损耗,提高转换效率。CsPbBr3 量子点的化学性质和结晶都很稳定。在这些因素的共同作用下,使用 CsPbBr3 量子点的包晶太阳能电池的效率从 10.004% 提高到了 10.425%。
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