| Literature DB >> 32110343 |
Shuai Li1, Hong-Min Mei1, Shi-Lin Yao1, Zhi-Yao Chen1, Yu-Lin Lu1, Li Zhang1, Cheng-Yong Su1.
Abstract
Effective conversion of solar energy into chemical energy by visible light represents a potential strategy for sustainable development. Among which, photocatalytic hydrogen evolution reaction (HER) with a relatively small activation energy (1.23 eV, around 1000 nm light irradiation) is especially attractive. In this work, well-distributedEntities:
Year: 2019 PMID: 32110343 PMCID: PMC7020662 DOI: 10.1039/c9sc01866b
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 1Schematic illustration of the structure and photocatalytic behavior of the MOF composite Pt@Pd-PCN-222(Hf).
Fig. 2The syntheses of Pd-PCN-222(Hf) and Pt@Pd-PCN-222(Hf).
Fig. 3PXRD patterns (a) and N2 sorption isotherms at 77 K (b) of Pd-PCN-222(Hf) and Pt@Pd-PCN-222(Hf).
Fig. 4SEM (a) and TEM (b) images of Pd-PCN-222(Hf), and median-magnification TEM (c), high-magnification TEM (insert c) and aberration-corrected HAADF-STEM (d) images of Pt@Pd-PCN-222(Hf).
Fig. 5Accumulated TONs (TON = n(H2)/n(Pt)) and TOFs (TOF = d(TON)/dt) based on Pt-NPs in the catalyst durability test of Pt@Pd-PCN-222(Hf) over 32 h (a), and the amount of H2 (μmol g–1) produced by different photocatalysts (b).
Fig. 6Recycling experiments of Pt@Pd-PCN-222(Hf).
Fig. 7TA spectra of Pd-PCN-222(Hf) (a) and Pt@Pd-PCN-222(Hf) (b), and TA kinetics at the probing wavelength of 505 nm (c).
Fig. 8Photocurrent responses (a) and EIS Nyquist plots (b) of PCN-222(Hf), Pd-PCN-222(Hf) and Pt@Pd-PCN-222(Hf).
Fig. 9The possible HER reaction mechanism of Pt@Pd-PCN-222(Hf).