Recent advances in perovskite/Cu(In,Ga)Se2 tandem solar cells

Yuchen Xiong , Zijun Yi , Wenguang Zhang , Yihuai Huang , Zhihong Zhang , Qinghui Jiang , Xin Ren Ng , Guibin Shen , Yubo Luo , Xin Li , Junyou Yang
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Abstract

Tandem solar cells (TSCs) are poised to revolutionize photovoltaic (PV) technology as they hold the promise of a significantly higher power conversion efficiency (PCE) compared to the current dominant single-junction solar cells. TSCs are composed of two different absorbing materials, strategically utilizing the shared incident solar spectrum to achieve a synergistic boost in PCE. The perovskite/Cu(In,Ga)Se2 (CIGS) TSCs, as a cutting-edge and prospective solar energy conversion device, have sparked widespread research interest by synergistically combining the unique advantages of perovskite and CIGS materials. This comprehensive review presents a thorough investigation of the latest research advancements in perovskite/CIGS TSCs, with a specific focus on the intricacies of device structure design and state-of-the-art fabrication methods. Significant attention is devoted to elucidating the pivotal role of interface engineering, material composition optimization, and precise control of processing parameters in determining the PV performance of the devices. By optimizing the stacked architecture and enhancing material interfaces, the review demonstrates how substantial improvements have been achieved in terms of high-efficiency PV conversion and superior carrier transport, consequently elevating the performance and long-term device stability. Finally, the review provides a compelling outlook on the future development of perovskite/CIGS TSCs, aiming to drive further advancements and practical applications of this advanced technology.

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过氧化物/铜铟镓硒串联太阳能电池的最新进展
串联太阳能电池(TSC)有望彻底改变光伏(PV)技术,因为与目前占主导地位的单结太阳能电池相比,串联太阳能电池有望大幅提高功率转换效率(PCE)。TSCs 由两种不同的吸收材料组成,可战略性地利用共享的入射太阳光谱来协同提高 PCE。透辉石/铜(In,Ga)Se2(CIGS)TSCs 作为一种前沿且具有发展前景的太阳能转换设备,通过协同结合透辉石和 CIGS 材料的独特优势,引发了广泛的研究兴趣。本综述深入探讨了透辉石/CIGS TSCs 的最新研究进展,特别关注复杂的器件结构设计和最先进的制造方法。报告重点阐述了界面工程、材料成分优化和加工参数精确控制在决定器件光伏性能方面的关键作用。通过优化堆叠结构和增强材料界面,综述展示了如何在高效光伏转换和卓越载流子传输方面实现实质性改进,从而提高性能和器件的长期稳定性。最后,综述还对过氧化物/CIGS TSCs 的未来发展进行了令人信服的展望,旨在推动这一先进技术的进一步发展和实际应用。
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