Spatiotemporally Synchronous Oxygen Self-Supply and Reactive Oxygen Species Production on Z-Scheme Heterostructures for Hypoxic Tumor Therapy.

Cheng, Yan; Kong, Xiangpeng; Chang, Yun; Feng, Yanlin; Zheng, Runxiao; Wu, Xiaqing; Xu, Keqiang; Gao, Xingfa et al. · Adv Mater · 2020

basic_science · Level V

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Abstract

Photodynamic therapy (PDT) efficacy has been severely limited by oxygen (O<sub>2</sub> ) deficiency in tumors and the electron-hole separation inefficiency in photosensitizers, especially the long-range diffusion of O<sub>2</sub> toward photosensitizers during the PDT process. Herein, novel bismuth sulfide (Bi<sub>2</sub> S<sub>3</sub> )@bismuth (Bi) Z-scheme heterostructured nanorods (NRs) are designed to realize the spatiotemporally synchronous O<sub>2</sub> self-supply and production of reactive oxygen species for hypoxic tumor therapy. Both narrow-bandgap Bi<sub>2</sub> S<sub>3</sub> and Bi components can be excited by a near-infrared laser to generate abundant electrons and holes. The Z-scheme heterostructure endows Bi<sub>2</sub> S<sub>3</sub> @Bi NRs with an efficient electron-hole separation ability and potent redox potentials, where the hole on the valence band of Bi<sub>2</sub> S<sub>3</sub> can react with water to supply O<sub>2</sub> for the electron on the conduction band of Bi to produce reactive oxygen species. The Bi<sub>2</sub> S<sub>3</sub> @Bi NRs overcome the major obstacles of conventional photosensitizers during the PDT process and exhibit a promising phototherapeutic effect, supplying a new strategy for hypoxic tumor elimination.

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