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Tuning electronic structure of the carbon skeleton to accelerate electron transfer for promoting the capture of gold

Authors :
Dewei Li
Xianxin Luo
Penghui Shao
Zhu Meng
Ziwei Yao
Liming Yang
Jiachuang Shao
Hao Dong
Li Zhang
Lingrong Zeng
Xubiao Luo
Source :
Environment International, Vol 180, Iss , Pp 108192- (2023)
Publication Year :
2023
Publisher :
Elsevier, 2023.

Abstract

The efficient and selective recovery of gold from secondary sources is key to sustainable development. However, the complexity of the recovery environment can significantly complicate the compositions of utilized sorbents. Here, we report a straw-derived mesoporous carbon as an inexpensive support material. This mesoporous carbon is modified by anions (sulfur modulation, C-S-180) to improve its electron-transfer efficiency and tune the electronic structure of its skeleton toward enhanced gold reduction. The high surface area of C-S-180 (989.4 m2/g), as well as the presence of abundant C–S in the porous structure of the adsorbent, resulted in an outstanding Au3+-uptake capacity (3422.75 mg/g), excellent resistance to interference, and favorable Au3+ selectivity. Dissimilar to most existing carbon-based adsorbents, electrochemistry-based studies on the electron-transfer efficiencies of adsorbents reveal that sulfur modulation is crucial to optimizing their adsorption performances. Furthermore, the density functional theory reveals that the optimization mechanism is attributable to the adjustment of the electronic structure of the carbon skeleton by C–S, which optimizes the band-gap energy for enhanced Au3+ reduction. These findings offer a strategy for constructing green and efficient adsorbents, as well as a basis for extending the applications of inexpensive carbon materials in gold recovery from complex environments.

Details

Language :
English
ISSN :
01604120
Volume :
180
Issue :
108192-
Database :
Directory of Open Access Journals
Journal :
Environment International
Publication Type :
Academic Journal
Accession number :
edsdoj.0cdcbeb81434b26b0220d05f8f0f6c8
Document Type :
article
Full Text :
https://doi.org/10.1016/j.envint.2023.108192