Interfacial Coordinational Bond Triggered Photoreduction Membrane for Continuous Light-Driven Precious Metals Recovery.
basic_science · Level V
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- Record sourced from PubMed, PMID 36913675.
- Also identified by DOI 10.1021/acs.nanolett.2c04852.
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Abstract
Chemical/electric energy-driven processes dominate the traditional precious metal (PM) recovery market. The renewable energy-driven selective PM recycling approach crucial for carbon neutrality is under exploration. Herein, via an interfacial structure engineering approach, coordinational-active pyridine groups are covalently integrated onto the photoactive semiconductor SnS<sub>2</sub> surface to construct Py-SnS<sub>2</sub>. Triggered by the preferred coordinational binding force between PMs and pyridine groups, together with the photoreduction capability of SnS<sub>2</sub>, Py-SnS<sub>2</sub> shows significantly enhanced selective PM-capturing performance toward Au<sup>3+</sup>, Pd<sup>4+</sup>, and Pt<sup>4+</sup> with recycling capacity up to 1769.84, 1103.72, and 617.61 mg/g for Au<sup>3+</sup>, Pd<sup>4+</sup>, and Pt<sup>4+</sup>, respectively. Further integrating the Py-SnS<sub>2</sub> membrane into a homemade light-driven flow cell, 96.3% recovery efficiency was achieved for continuous Au recycling from a computer processing unit (CPU) leachate. This study reported a novel strategy to fabricate coordinational bonds triggered photoreductive membranes for continuous PM recovery, which could be expanded to other photocatalysts for broad environmental applications.