Muhammad Adnan Qaiser, Shahid Khan, Haopeng Jiang, Jinhe Li, Syed Bilal Ahmed, Waqar Ahmad Qureshi, Syed Najeeb-uz Zaman Haider, Weikang Wang, Qinqin Liu
{"title":"Bi2WO6/SV-ZnIn2S4太阳能驱动的纯水H2O2生成二维s方案工程","authors":"Muhammad Adnan Qaiser, Shahid Khan, Haopeng Jiang, Jinhe Li, Syed Bilal Ahmed, Waqar Ahmad Qureshi, Syed Najeeb-uz Zaman Haider, Weikang Wang, Qinqin Liu","doi":"10.1021/acs.inorgchem.5c00538","DOIUrl":null,"url":null,"abstract":"The development of eco-friendly hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>) 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 ZnIn<sub>2</sub>S<sub>4</sub> (S<sub>V</sub>-ZIS) with Bi<sub>2</sub>WO<sub>6</sub> (BWO) nanosheets via an in situ growth method. Band alignment engineering establishes a giant built-in electric field at the Bi<sub>2</sub>WO<sub>6</sub>/S<sub>V</sub>-ZIS interface, which drives directional S-scheme charge transfer, leaving the photogenerated electrons and holes with the highest redox potentials accumulated on BWO and S<sub>V</sub>-ZIS, respectively, for O<sub>2</sub> reduction and H<sub>2</sub>O 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 H<sub>2</sub>O<sub>2</sub> production rate of 822 μmol L<sup>–1</sup> h<sup>–1</sup> in pure water. This work provides a two-dimensional S-scheme engineering strategy for designing high-performance photocatalysts toward sustainable H<sub>2</sub>O<sub>2</sub> synthesis under environmentally benign conditions.","PeriodicalId":40,"journal":{"name":"Inorganic Chemistry","volume":"5 1","pages":""},"PeriodicalIF":4.3000,"publicationDate":"2025-04-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Two-Dimensional S-Scheme Engineering in Bi2WO6/SV-ZnIn2S4 for Solar-Driven H2O2 Generation in Pure Water\",\"authors\":\"Muhammad Adnan Qaiser, Shahid Khan, Haopeng Jiang, Jinhe Li, Syed Bilal Ahmed, Waqar Ahmad Qureshi, Syed Najeeb-uz Zaman Haider, Weikang Wang, Qinqin Liu\",\"doi\":\"10.1021/acs.inorgchem.5c00538\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"The development of eco-friendly hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>) 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 ZnIn<sub>2</sub>S<sub>4</sub> (S<sub>V</sub>-ZIS) with Bi<sub>2</sub>WO<sub>6</sub> (BWO) nanosheets via an in situ growth method. Band alignment engineering establishes a giant built-in electric field at the Bi<sub>2</sub>WO<sub>6</sub>/S<sub>V</sub>-ZIS interface, which drives directional S-scheme charge transfer, leaving the photogenerated electrons and holes with the highest redox potentials accumulated on BWO and S<sub>V</sub>-ZIS, respectively, for O<sub>2</sub> reduction and H<sub>2</sub>O 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 H<sub>2</sub>O<sub>2</sub> production rate of 822 μmol L<sup>–1</sup> h<sup>–1</sup> in pure water. 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Two-Dimensional S-Scheme Engineering in Bi2WO6/SV-ZnIn2S4 for Solar-Driven H2O2 Generation in Pure Water
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.
期刊介绍:
Inorganic Chemistry publishes fundamental studies in all phases of inorganic chemistry. Coverage includes experimental and theoretical reports on quantitative studies of structure and thermodynamics, kinetics, mechanisms of inorganic reactions, bioinorganic chemistry, and relevant aspects of organometallic chemistry, solid-state phenomena, and chemical bonding theory. Emphasis is placed on the synthesis, structure, thermodynamics, reactivity, spectroscopy, and bonding properties of significant new and known compounds.