钙钛矿在太阳能电池商业化中的应用进展

Tejas Dhanalaxmi Raju , Vignesh Murugadoss , Kiran A. Nirmal , Tukaram D. Dongale , Arul Varman Kesavan , Tae Geun Kim
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引用次数: 0

摘要

钙钛矿太阳能电池(PSCs)的效率发展迅速,单结器件的效率超过26%,钙钛矿-硅串联结构的效率超过34%,使PSCs成为传统光伏技术的有前途的替代品。然而,它们的商业化受到户外环境稳定性挑战的限制。这篇综述严格审查了影响psc长期性能和可靠性的关键细胞水平问题,重点关注钙钛矿吸收剂固有相和外部应力因素引起的不稳定性。本文讨论了增强稳定性的缓解策略,以及电荷传输层、电极和界面的最新进展,这些进展旨在减少环境退化,提高能量水平对齐,以实现有效的电荷提取。加速老化试验和标准化方案的建立对于准确预测设备寿命和识别故障机制的重要性得到强调,从而确保在实际条件下的稳定性。此外,全面的技术经济分析评估了材料和战略创新的进步如何影响效率、耐用性和成本,这些对psc的商业应用至关重要。这篇综述描述了将PSC技术从实验室规模的研究过渡到全球光伏产业广泛商业化所需的基本步骤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advancements in perovskites for solar cell commercialization: A review

Advancements in perovskites for solar cell commercialization: A review
The efficiency of perovskite solar cells (PSCs) has progressed rapidly, exceeding 26% for single-junction devices and surpassing 34% in perovskite-silicon tandem configurations, establishing PSCs as a promising alternative to traditional photovoltaic technologies. However, their commercialization is constrained by significant stability challenges in outdoor environments. This review critically examines key cell-level issues affecting the long-term performance and reliability of PSCs, focusing on instabilities arising from the intrinsic phases of the perovskite absorber and external stress factors. Mitigation strategies to enhance stability are discussed, alongside recent advancements in charge transport layers, electrodes, and interfaces aimed at reducing environmental degradation and improving energy level alignment for efficient charge extraction. The importance of accelerated aging tests and the establishment of standardized protocols is underscored for accurately predicting device lifetimes and identifying failure mechanisms, thereby ensuring stability under real-world conditions. Furthermore, a comprehensive techno-economic analysis evaluates how advancements in materials and strategic innovations influence efficiency, durability, and cost, which are critical for the commercial adoption of PSCs. This review delineates the essential steps required to transition PSC technology from laboratory-scale research to widespread commercialization within the global photovoltaic industry.
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CiteScore
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