Reduction of lead leakage from damaged lead halide perovskite solar modules using self-healing polymer-based encapsulation

材料科学 封装(网络) 光伏系统 环氧树脂 自愈材料 卤化物 复合材料 自愈 纳米技术 泄漏(经济) 化学 电气工程 计算机科学 无机化学 宏观经济学 病理 工程类 经济 医学 替代医学 计算机网络
作者
Yan Jiang,Longbin Qiu,Emilio J. Juárez‐Pérez,Luis K. Ono,Zhanhao Hu,Zonghao Liu,Zhifang Wu,Lingqiang Meng,Qijing Wang,Yabing Qi
出处
期刊:Nature Energy [Nature Portfolio]
卷期号:4 (7): 585-593 被引量:485
标识
DOI:10.1038/s41560-019-0406-2
摘要

In recent years, the major factors that determine commercialization of perovskite photovoltaic technology have been shifting from solar cell performance to stability, reproducibility, device upscaling and the prevention of lead (Pb) leakage from the module over the device service life. Here we simulate a realistic scenario in which perovskite modules with different encapsulation methods are mechanically damaged by a hail impact (modified FM 44787 standard) and quantitatively measure the Pb leakage rates under a variety of weather conditions. We demonstrate that the encapsulation method based on an epoxy resin reduces the Pb leakage rate by a factor of 375 compared with the encapsulation method based on a glass cover with an ultraviolet-cured resin at the module edges. The greater Pb leakage reduction of the epoxy resin encapsulation is associated with its optimal self-healing characteristics under the operating conditions and with its increased mechanical strength. These findings strongly suggest that perovskite photovoltaic products can be deployed with minimal Pb leakage if appropriate encapsulation is employed. Lead leakage from damaged perovskite solar cells poses a challenge to the deployment of such technology. Here, Jiang, Qiu and co-workers quantify lead leakage caused by a simulated hail impact under a number of weather conditions and show that self-healing encapsulations can effectively reduce it.
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