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通过纳滤从钙钛矿薄膜太阳能电池废料中回收铟和银。

Indium and Silver Recovery from Perovskite Thin Film Solar Cell Waste by Means of Nanofiltration.

作者信息

Amrein Meret, Rohrer Karina, Hengevoss Dirk, Jin Heon, Snaith Henry J, Thomann Michael, Nüesch Frank, Lenz Markus

机构信息

Institute for Ecopreneurship, School of Life Sciences, University of Applied Sciences and Arts Northwestern Switzerland, Hofackerstrasse 30, 4132 Muttenz, Switzerland.

EPFL, Institute of Materials Science and Engineering, Ecole Polytechnique Fédérale de Lausanne, Station 12, Lausanne 1015, Switzerland.

出版信息

ACS Sustain Resour Manag. 2025 May 16;2(6):1087-1095. doi: 10.1021/acssusresmgt.5c00109. eCollection 2025 Jun 26.

Abstract

Due to minimal material use and low-cost processing, next-generation thin film solar cells represent a promising alternative to traditional crystalline silicon solar cells. Among these, metal-halide perovskite solar cells have seen significant improvements in power conversion efficiency and are now on the verge of market entry. However, most efficient and stable perovskite solar cells contain lead in the perovskite absorber layer, along with indium and silver in their electrodes. This study demonstrates an environmentally benign recycling process for recovering all three elements from end-of-life perovskite solar cells. In short, the process consists of mechanical dismantling (milling), aqueous extraction/purification of PbI, and acid extraction and purification of indium and silver by nanofiltration. After the quantitative recovery of lead as PbI (95 ± 5%), indium and silver were dissolved using nitric acid with recovery rates of 87 ± 7% for both metals. Life cycle assessment calculations were used to determine optimal conditions in terms of minimal environmental impact per gram of extracted element. After acid extraction, nanofiltration was employed using both custom-made layer-by-layer membranes and commercially available acid-resistant flat sheet membranes to separate indium from silver. Using an optimized membrane design, indium was almost entirely retained (96.9 ± 0.4%) using a layer-by-layer membrane at 50% permeate recovery. Hence, a twofold concentration of indium was achieved over the course of the filtration. In contrast, silver was not retained (retention of -7.6 ± 6.3%), resulting in a dilute Ag permeate. Using the commercial flat sheet membrane resulted in similar retention rates, with 98.5 ± 0.4% for indium and 5.8 ± 11.6% for silver. However, this came at the expense of considerably higher operating pressure (25 bar vs 5 bar) and lower flux (6 L/mh vs 30 L/mh), resulting in higher energy demand (72 Wh/L vs 9 Wh/L). Therefore, layer-by-layer membrane filtration proved to be the superior method for element recovery from perovskite photovoltaic devices. This study has shown that combining hydrometallurgical processing (aqueous and acidic extraction) with layer-by-layer membrane filtration offers an efficient and environmentally benign approach for metal recovery from end-of-life solar cells. Since indium and silver are also key elements for other thin film photovoltaic applications, layer-by-layer membrane filtration may represent a platform technology for future photovoltaic panel recycling.

摘要

由于材料使用量极少且加工成本低,下一代薄膜太阳能电池是传统晶体硅太阳能电池的一个有前景的替代方案。其中,金属卤化物钙钛矿太阳能电池的功率转换效率有了显著提高,目前已接近进入市场。然而,大多数高效且稳定的钙钛矿太阳能电池在钙钛矿吸收层中含有铅,在其电极中含有铟和银。本研究展示了一种环境友好的回收工艺,用于从报废的钙钛矿太阳能电池中回收这三种元素。简而言之,该工艺包括机械拆解(研磨)、水相萃取/纯化碘化铅,以及通过纳滤进行酸萃取和铟与银的纯化。在将铅定量回收为碘化铅(95±5%)后,使用硝酸溶解铟和银,两种金属的回收率均为87±7%。生命周期评估计算用于确定每克提取元素对环境影响最小的最佳条件。酸萃取后,使用定制的逐层膜和市售的耐酸平板膜进行纳滤,以分离铟和银。采用优化的膜设计,在渗透液回收率为50%时,使用逐层膜铟几乎被完全保留(96.9±0.4%)。因此,在过滤过程中铟实现了两倍的浓缩。相比之下,银未被保留(保留率为-7.6±6.3%),从而得到稀释后的银渗透液。使用商业平板膜得到了类似的保留率,铟为98.5±0.4%,银为5.8±11.6%。然而,这是以相当高的操作压力(25巴对5巴)和较低的通量(6升/小时对30升/小时)为代价的,导致更高的能源需求(72瓦时/升对9瓦时/升)。因此,逐层膜过滤被证明是从钙钛矿光伏器件中回收元素的更优方法。本研究表明,将湿法冶金工艺(水相和酸萃取)与逐层膜过滤相结合,为从报废太阳能电池中回收金属提供了一种高效且环境友好的方法。由于铟和银也是其他薄膜光伏应用的关键元素,逐层膜过滤可能代表了未来光伏面板回收的一种平台技术。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/eb51/12207669/ef4e0c28dafc/rm5c00109_0001.jpg

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