Phase Engineered CuxS–Ag2S with Photothermoelectric Activity for Enhanced Multienzyme Activity and Dynamic Therapy

Author:

Zang Pengyu1,Yu Chenghao1,Zhang Rui1,Yang Dan1,Gai Shili1,Liu Bin2,Shen Ruifang3,Yang Piaoping1,Lin Jun2ORCID

Affiliation:

1. Key Laboratory of Superlight Materials and Surface Technology Ministry of Education College of Material Science and Chemical Engineering Harbin Engineering University Harbin 150001 P. R. China

2. State Key Laboratory of Rare Earth Utilization Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun 130022 P. R. China

3. Laboratory for Space Environment and Physical Sciences Harbin Institute of Technology Harbin 150001 P. R. China

Abstract

AbstractThe insufficient exposure sites and active site competition of multienzyme are the two main factors to hinder its therapeutic effect. Here, a phase‐junction nanomaterial (amorphous‐crystalline CuxS–Ag2S) is designed and prepared through a simple room temperature ion‐exchange process. A small amount of Ag+ is added into Cu7S4 nanocrystals, which transforms Cu7S4 into amorphous phased CuxS and produces crystalline Ag2S simultaneously. In this structure, the overhanging bonds on the amorphous CuxS surface provide abundant active sites for optimizing the therapeutic activity. Meanwhile, the amorphous state enhances the photothermal effect through non‐radiative relaxation, and due to its low thermal resistance, phase‐junction CuxS–Ag2S forms a significant temperature gradient to unlock the optimized thermo‐electrodynamic therapy. Furthermore, benefiting from the high asymmetry of the amorphous state, the material forms a spin‐polarized state that can effectively inhibit electron–hole recombination. In this way, the thermoelectric effect can facilitate the enzyme‐catalyzed cycle by providing electrons and holes, enabling an enhanced coupling of thermoelectric therapy with multienzyme activity, which induces excellent anti‐tumor performance. More importantly, the catalytic process simulated by density‐functional theory proves that Ag+ alleviates the burden on the Cu sites through favorable adsorption of O2 and prevents active site competition.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Natural Science Foundation of Shandong Province

Publisher

Wiley

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