Afre Rakesh A, Pugliese Diego
Centre of Excellence in Nanotechnology (CoEN), Faculty of Engineering, Assam down town University (AdtU), Guwahati 781026, Assam, India.
National Institute of Metrological Research (INRiM), Strada delle Cacce 91, 10135 Torino, Italy.
Micromachines (Basel). 2024 Jan 27;15(2):192. doi: 10.3390/mi15020192.
Perovskite solar cells (PSCs) are gaining popularity due to their high efficiency and low-cost fabrication. In recent decades, noticeable research efforts have been devoted to improving the stability of these cells under ambient conditions. Moreover, researchers are exploring new materials and fabrication techniques to enhance the performance of PSCs under various environmental conditions. The mechanical stability of flexible PSCs is another area of research that has gained significant attention. The latest research also focuses on developing tin-based PSCs that can overcome the challenges associated with lead-based perovskites. This review article provides a comprehensive overview of the latest advances in materials, fabrication techniques, and stability enhancement strategies for PSCs. It discusses the recent progress in perovskite crystal structure engineering, device construction, and fabrication procedures that has led to significant improvements in the photo conversion efficiency of these solar devices. The article also highlights the challenges associated with PSCs such as their poor stability under ambient conditions and discusses various strategies employed to enhance their stability. These strategies include the use of novel materials for charge transport layers and encapsulation techniques to protect PSCs from moisture and oxygen. Finally, this article provides a critical assessment of the current state of the art in PSC research and discusses future prospects for this technology. This review concludes that PSCs have great potential as a low-cost alternative to conventional silicon-based solar cells but require further research to improve their stability under ambient conditions in view of their definitive commercialization.
钙钛矿太阳能电池(PSCs)因其高效率和低成本制造而越来越受欢迎。近几十年来,人们为提高这些电池在环境条件下的稳定性付出了显著的研究努力。此外,研究人员正在探索新材料和制造技术,以提高PSCs在各种环境条件下的性能。柔性PSCs的机械稳定性是另一个受到广泛关注的研究领域。最新研究还聚焦于开发能够克服与铅基钙钛矿相关挑战的锡基PSCs。这篇综述文章全面概述了PSCs在材料、制造技术和稳定性增强策略方面的最新进展。它讨论了钙钛矿晶体结构工程、器件构造和制造工艺方面的最新进展,这些进展使这些太阳能器件的光转换效率有了显著提高。文章还强调了PSCs面临的挑战,如它们在环境条件下稳定性较差,并讨论了为提高其稳定性所采用的各种策略。这些策略包括使用新型材料作为电荷传输层以及采用封装技术来保护PSCs免受水分和氧气的影响。最后,本文对PSCs研究的当前技术水平进行了批判性评估,并讨论了该技术的未来前景。这篇综述得出结论,PSCs作为传统硅基太阳能电池的低成本替代品具有巨大潜力,但鉴于其最终商业化,需要进一步研究以提高其在环境条件下的稳定性。