4.8 Article

Significantly Enhanced Photocatalytic CO2 Reduction by Surface Amorphization of Cocatalysts

期刊

SMALL
卷 17, 期 45, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202102105

关键词

activity and selectivity; CO; (2) reduction; cocatalyst; photocatalysis; surface amorphization

资金

  1. National Natural Science Foundation of China [21603191, 21775138]
  2. Zhejiang Provincial Natural Science Foundation of China [LY20B030003, LQ16B010001]
  3. Key Research and Development Program of Zhejiang Province [2021C03163]
  4. Self Topic Fund of Zhejiang Normal University [2020ZS04]
  5. Zhejiang Key Laboratory for Reactive Chemistry on Solid Surfaces, Zhejiang Normal University
  6. Open Research Fund of Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Zhejiang Normal University

向作者/读者索取更多资源

By developing a surface amorphization strategy, this study successfully fabricated crystalline@amorphous semi-core-shell cocatalysts, achieving a synergistic effect between crystalline core and amorphous shell, leading to enhanced efficiency and selectivity in the conversion of CO2 to chemical feedstocks.
Rational phase engineering of reduction cocatalyst offers a promising route to modulate the photocatalytic activity and selectivity in the conversion of CO2 to chemical feedstocks. However, it remains a great challenge to choose a suitable phase given that high-crystallinity phase is more conducive to the charge transfer and separation, while amorphous phase is more favorable for the adsorption and activation of CO2 molecules. To resolve this dilemma, herein, with Pd as a well-defined model, a surface amorphization strategy has been developed to fabricate crystalline@amorphous semi-core-shell cocatalysts based on the transformation of outer layer atoms of crystalline cocatalysts to disorder phase. According to the theoretical and experimental analysis, in the heterostructured cocatalysts, crystalline core shuttles the photoexcited electrons from light-harvesting semiconductor to amorphous shell due to its strong electronic coupling with both components. Meanwhile, amorphous shell provides efficient active sites for preferential activation and conversion of CO2 and suppression of undesirable proton reduction. Benefiting from the synergistic effects between crystalline core and amorphous shell, the optimized heterophase cocatalyst with suitable thickness of amorphous shell achieves superior CO (22.2 mu mol g(cat)(-1) h(-1)) and CH4 (38.1 mu mol g(cat)(-1) h(-1)) formation rates with considerable selectivity and high stability in comparison with crystalline and amorphous counterparts.

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