Acta Phys. -Chim. Sin. ›› 2024, Vol. 40 ›› Issue (10): 2312007.doi: 10.3866/PKU.WHXB202312007
Special Issue: Solar Fuel Photocatalyst
• ARTICLE • Previous Articles Next Articles
Xinyu Yin1, Haiyang Shi1, Yu Wang1, Xuefei Wang1,*(
), Ping Wang1, Huogen Yu2,*(
)
Received:2023-12-06
Revised:2024-01-10
Accepted:2024-01-10
Published:2024-03-13
Contact:
Email: xuefei@whut.edu.cn (Xuefei Wang)yuhuogen@cug.edu.cn (Huogen Yu)
Supported by:Xinyu Yin, Haiyang Shi, Yu Wang, Xuefei Wang, Ping Wang, Huogen Yu. Spontaneously Improved Adsorption of H2O and Its Intermediates on Electron-Deficient Mn(3+δ)+ for Efficient Photocatalytic H2O2 Production[J]. Acta Phys. -Chim. Sin. 2024, 40(10), 2312007. doi: 10.3866/PKU.WHXB202312007
Fig 5
(A) XRD patterns, (B) UV-Vis absorbance spectra, photographs, (C, D) Raman spectra, (E) XPS survey spectra, and high-resolution XPS spectra of (F) Au 4f, (G) Pd 3d, and (H, I) O 1s for various samples: (a) BiVO4, (b) AuPd/BiVO4, (c) AuPd/BiVO4/MnOOH (0.5%), (d) AuPd/BiVO4/MnOOH (2%), and (e) BiVO4/MnOOH (0.5%)."
Fig 6
(A) Photocatalytic H2O2 production; (B) Cycle test for AuPd/BiVO4/MnOOH (0.5%) photocatalyst; (C) Time-dependent curves of photocatalytic H2O2 decomposition and (D) kf and kd values of various samples: (a) BiVO4, (b) AuPd/BiVO4, (c) AuPd/BiVO4/MnOOH (0.2%), (d) AuPd/BiVO4/MnOOH (0.5%), (e) AuPd/BiVO4/MnOOH (1%), (f) BiVO4/MnOOH (0.5%) and (g) without photocatalyst."
Fig 7
Calculated average potential profile along the Z axis of (A) BiVO4 and (B) MnOOH cocatalyst; High-resolution XPS spectra of (C) Mn 2p and (D) Bi 4f for (a) BiVO4 and (b) AuPd/BiVO4/MnOOH (2%); (E) Schematic diagrams for charge transfer between the BiVO4 and MnOOH catalysts: before contact and after contact."
Fig 8
(A) Optimized models for DFT calculations: BiVO4, MnOOH and BiVO4/MnOOH; (B) The local charge density difference of BiVO4/MnOOH; (C) Schematic illustration about the charge modulation to form electron-deficient Mn(3+δ)+ centers; (D) DFT-calculated adsorption energies of H2O and intermediate free radicals of 4-electron WOR; (E) Schematic illustration about the improved catalytic efficiency and interfacial O2-evolution mechanism of the Mn(3+δ)+ cocatalyst in 4-electron WOR."
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