Edge‐Engineered Interfacial Carrier Dynamics for Efficient Photocatalytic Gold Recovery

Y Yangzi Shangguan (Shenzhen Key Laboratory of Interfacial Science and Engineering of Materials, State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control, Guangdong Provincial Key Laboratory of Soil and Groundwater Pollution Control, SUSTech Energy Institute for Carbon Neutrality, State Key Laboratory of Soil Pollution Control and Safety, School of Environmental Science and Engineering) X Xiaosong Gu S Songhe Yang X Xuezhen Feng Q Qiushi Hu (SUSTech Energy Institute for Carbon Neutrality Department of Mechanical and Energy Engineering Southern University of Science and Technology Shenzhen Guangdong China) X Xihan Chen (Department of Mechanical and Energy Engineering) H Hong Chen (State Key Laboratory of Polymer Science and Technology, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, No.5625, Renmin Street, Changchun, Jilin 130022, P. R. China)

Abstract

ABSTRACT Developing highly efficient and sustainable precious metal recovery technologies is critical for meeting escalating global demand and mitigating the severe environmental impact of conventional metallurgy methods. Here, we report a novel edge‐engineering strategy utilizing amino‐functionalized graphitic carbon nitride (g‐C 3 N 4 ‐NH 2 ) to achieve unprecedented performance in photocatalytic gold recovery. This material exhibits a state‐of‐the‐art photocatalytic gold recovery capacity of 3819.3 mg g −1 , achieving an efficiency exceeding 99.7%, and ultrahigh selectivity ( K d = 2.97×10 7  mL g −1 ) in complex leachates. Comprehensive multiscale analyses reveal that the engineered −NH 2 sites, upon protonation to −NH 3 + , govern preferential carrier dynamics. This mechanism enables a unique proton‐coupled electron transfer (PCET) pathway that drives the highly efficient reduction of Au(III) and subsequent surface nanocrystal crystallization. To validate practical scalability, the g‐C 3 N 4 ‐NH 2 catalyst was successfully integrated onto a polyurethane foam (PUF) matrix and rigorously tested in a custom, pilot‐scale continuous‐flow photoreactor. This system achieved a 99% gold recovery rate from diverse e‐waste and ore leachates. A detailed techno‐economic analysis confirms the commercial viability of this approach, projecting a 2431.2% return on investment, thereby establishing a scalable photometallurgy paradigm for solar‐driven, highly selective, and sustainable precious metals recovery.

Article Details

Volume / Issue Vol. 65, Issue 25
Published June 15, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

Y

Yangzi Shangguan

Shenzhen Key Laboratory of Interfacial Science and Engineering of Materials, State Environmental Protection Key Laboratory of Integrated Surface Water-Groundwater Pollution Control, Guangdong Provincial Key Laboratory of Soil and Groundwater Pollution Control, SUSTech Energy Institute for Carbon Neutrality, State Key Laboratory of Soil Pollution Control and Safety, School of Environmental Science and Engineering

X

Xiaosong Gu

S

Songhe Yang

X

Xuezhen Feng

Q

Qiushi Hu

SUSTech Energy Institute for Carbon Neutrality Department of Mechanical and Energy Engineering Southern University of Science and Technology Shenzhen Guangdong China

X

Xihan Chen

Department of Mechanical and Energy Engineering

H

Hong Chen

State Key Laboratory of Polymer Science and Technology, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, No.5625, Renmin Street, Changchun, Jilin 130022, P. R. China