石墨
材料科学
阳极
光催化
化学工程
纳米技术
化学
冶金
工程类
催化作用
有机化学
电极
物理化学
作者
Jian Hu,Yangzi Shangguan,Shengyao Jin,Jiaxiang Liang,Wenhan Cheng,Hao Fan,Songhe Yang,Xiaosong Gu,Weixu Zhong,Xihan Chen,Qiushi Hu,Huiling Zhou,Yong Zhang,Hong Chen
标识
DOI:10.1021/acsestengg.5c00292
摘要
Selective separation and recovery of precious metals with sustainable solar energy via adsorption and photocatalytic reduction processes has emerged as a promising green and low-carbon technology with significant advantages compared to traditional hydrometallurgy and pyrometallurgy methods. Developing low-cost photocatalytic materials with favorable electronic and interfacial structures remains a critical challenge. Herein, we successfully constructed chlorine-hybrid graphene oxide (GO-Cl) via a simple oxidation-chlorination process using low-value spent graphite from lithium-ion batteries. Benefiting from the exceptional electronic structure and favorable interfacial structure of GO-Cl, a state-of-the-art high saturation Ag+ adsorption capacity of 1182.46 mg g–1 has been achieved with high adsorption selectivity from artificial Ag+-contaminated wastewater. Further integrating the GO-Cl within polyurethane foam (PUF), we fabricated a three-dimensional (3D) photocatalytic GO-Cl@PUF foam. When the 3D GO-Cl@PUF foam is incorporated into a custom continuous-flow cyclic photocatalytic reactor, it enables highly selective and stable cyclic Ag+ recovery efficiencies from waste LED and mineral leachates with a broad range of Ag+ concentrations. A comprehensive mechanistic study reveals that Ag+ undergoes an adsorption-reduction-crystallization reaction pathway at the GO-Cl interface under light irradiation. The present study not only introduces a novel approach for recovering and engineering low-quality waste graphite from spent lithium-ion batteries for photocatalytic 3D GO-Cl@PUF foam fabrication but also offers valuable insights into sustainable and selective redox-active critical metals recovery from complex solid matrixes, paving the way for developing solid waste materialization and sustainable critical metal recovery techniques.
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