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Two-Dimensional S-Scheme Engineering in Bi2WO6/SV-ZnIn2S4 for Solar-Driven H2O2 Generation in Pure Water
Muhammad Adnan Qaiser1, Shahid Khan1, Haopeng Jiang1
1School of Materials Science and Engineering, Jiangsu University, Zhenjiang, Jiangsu 212013, P.R. China.
Abstract:
The development of eco-friendly hydrogen peroxide (H2O2) synthesis through the photocatalytic oxygen reduction reaction holds significant potential for sustainable chemical engineering; however, it remains hindered by the necessity of sacrificial agents. Herein, we construct a two-dimensional (2D) S-scheme heterojunction through interfacial coupling of S-vacancy-rich ZnIn2S4 (SV-ZIS) with Bi2WO6 (BWO) nanosheets via an in situ growth method. Band alignment engineering establishes a giant built-in electric field at the Bi2WO6/SV-ZIS interface, which drives directional S-scheme charge transfer, leaving the photogenerated electrons and holes with the highest redox potentials accumulated on BWO and SV-ZIS, respectively, for O2 reduction and H2O oxidation. This spatial separation mechanism enhances both electron-hole pair dissociation efficiency (validated by transient photocurrent analysis) and preserves strong redox potentials (reflected in free-radical capturing experiments). The 2D/2D architecture further amplifies interfacial charge migration through atomic-level contact, leading to an efficient H2O2 production rate of 822 μmol L-1 h-1 in pure water. This work provides a two-dimensional S-scheme engineering strategy for designing high-performance photocatalysts toward sustainable H2O2 synthesis under environmentally benign conditions.

