Dual- and triple-absorber solar cell architecture achieves significant efficiency improvements

IF 2.2 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Computational Electronics Pub Date : 2024-12-18 DOI:10.1007/s10825-024-02271-5
M. T. Islam, Mukaddar Shaikh, Atul Kumar
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Abstract

Perovskite solar cells (PSCs) are improving in efficiency, but their stability remains a challenge compared to other solar technologies due to the use of hybrid organic–inorganic materials. To overcome this, researchers have shifted focus from methylammonium-based PSCs to more stable cesium (Cs)-based PSCs. By optimizing multi-layer structures to enhance solar spectrum absorption, substantial performance improvements are possible. In this study, we explored single (CsPbIBr2), dual (CsPbIBr2/KSnI3), and triple (CsPbIBr2/KSnI3/MASnBr3) absorber layer designs. The optimization of bilayer and triple-layer PSCs takes into account various factors, such as absorber layer thickness, defect density, and interface defect density for each PSC type. Finally, using the optimal triple-absorber layer combination, we optimized the electron transport layer, hole transport layer, series resistance, and shunt resistance. In this research, we attained impressive efficiencies of 34.22% for the triple-layer solar cell, 20.41% for the bilayer solar cell, and 7.32% for the single-junction PSC. This design approach led to an optimal configuration that showed substantial improvements over the experimental benchmark, including a 7.08% increase in open circuit voltage, a 256.9% increase in short circuit current, a 22.32% increase in fill factor, and a 367.5% increase in efficiency. By meticulously aligning multiple absorber layers in perovskite solar cells, we can unlock new pathways to developing highly efficient solar cells for the future.

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双吸收器和三吸收器太阳能电池结构显著提高了效率
钙钛矿太阳能电池(PSCs)的效率正在提高,但由于使用了有机-无机混合材料,与其他太阳能技术相比,它们的稳定性仍然是一个挑战。为了克服这一点,研究人员已经将重点从基于甲基铵的psc转移到更稳定的基于铯(Cs)的psc。通过优化多层结构来增强太阳光谱吸收,可以大幅提高性能。在这项研究中,我们探索了单(CsPbIBr2),双(CsPbIBr2/KSnI3)和三重(CsPbIBr2/KSnI3/MASnBr3)吸收层设计。双层和三层PSC的优化考虑了各种因素,如吸收层厚度、缺陷密度和每种PSC的界面缺陷密度。最后,采用最优的三吸收层组合,对电子输运层、空穴输运层、串联电阻和分流电阻进行了优化。在这项研究中,我们获得了令人印象深刻的三层太阳能电池效率34.22%,双层太阳能电池效率20.41%,单结PSC效率7.32%。这种设计方法导致了一个优化配置,显示出比实验基准有实质性的改进,包括开路电压增加7.08%,短路电流增加256.9%,填充因子增加22.32%,效率提高367.5%。通过精心排列钙钛矿太阳能电池中的多个吸收层,我们可以为未来开发高效太阳能电池开辟新的途径。
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来源期刊
Journal of Computational Electronics
Journal of Computational Electronics ENGINEERING, ELECTRICAL & ELECTRONIC-PHYSICS, APPLIED
CiteScore
4.50
自引率
4.80%
发文量
142
审稿时长
>12 weeks
期刊介绍: he Journal of Computational Electronics brings together research on all aspects of modeling and simulation of modern electronics. This includes optical, electronic, mechanical, and quantum mechanical aspects, as well as research on the underlying mathematical algorithms and computational details. The related areas of energy conversion/storage and of molecular and biological systems, in which the thrust is on the charge transport, electronic, mechanical, and optical properties, are also covered. In particular, we encourage manuscripts dealing with device simulation; with optical and optoelectronic systems and photonics; with energy storage (e.g. batteries, fuel cells) and harvesting (e.g. photovoltaic), with simulation of circuits, VLSI layout, logic and architecture (based on, for example, CMOS devices, quantum-cellular automata, QBITs, or single-electron transistors); with electromagnetic simulations (such as microwave electronics and components); or with molecular and biological systems. However, in all these cases, the submitted manuscripts should explicitly address the electronic properties of the relevant systems, materials, or devices and/or present novel contributions to the physical models, computational strategies, or numerical algorithms.
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