Acta Phys. -Chim. Sin. ›› 2025, Vol. 41 ›› Issue (12): 100159.doi: 10.1016/j.actphy.2025.100159
• ARTICLE • Previous Articles Next Articles
Ruyan Liu1, Zhenrui Ni1, Olim Ruzimuradov2,3, Khayit Turayev4, Tao Liu1, Luo Yu1, Panyong Kuang1,*(
)
Received:2025-07-24
Revised:2025-08-12
Accepted:2025-08-14
Published:2025-10-23
Contact:
Email: kuangpanyong@cug.edu.cn (Panyong Kuang)
Supported by:Ruyan Liu, Zhenrui Ni, Olim Ruzimuradov, Khayit Turayev, Tao Liu, Luo Yu, Panyong Kuang. Ni-induced modulation of Pt 5d-H 1s antibonding orbitals for enhanced hydrogen evolution and urea oxidation[J]. Acta Phys. -Chim. Sin. 2025, 41(12), 100159. doi: 10.1016/j.actphy.2025.100159
Fig 2
(a) XANES spectra at the Pt L3-edge and (b) k3-weighted EXAFS spectra at the Pt L3-edge for Pt@PtNi3-500, Pt-500, PtO2, and Pt foil. (c) XANES spectra at the Ni K-edge and (d) k3-weighted EXAFS spectra at the Ni K-edge for Pt@PtNi3-500, Ni-500, NiO, and Ni foil. (e) WT maps of Pt@PtNi3-500, Pt-500, and Ni-500."
Fig 3
(a) LSV curves of Pt@PtNi3-500, Pt@PtNi3-500-Ref, Pt-500, Ni-500, and 20 wt% Pt/C for HER. (b, c) Corresponding mass activity, η10, and TOF for HER. (d) LSV curves of Pt@PtNi3-500 for UOR and OER. (e) LSV curves of Pt@PtNi3-500, Pt@PtNi3-500-Ref, Pt-500, and Ni-500 for UOR. (f) TOF curves of Pt@PtNi3-500, Pt@PtNi3-500-Ref, and Ni-500 for UOR."
Fig 4
(a) Schematic illustration of the UOR-assisted asymmetric acid-alkaline electrolyzer. (b, c) LSV curves and required potentials at 10 mA cm−2 for Pt@PtNi3-500 in asymmetric acid-alkaline electrolyzer and conventional symmetric alkaline electrolyzer. (d) FE and H2 evolution rate of Pt@PtNi3-500 in UOR-assisted H2 production process. The inset shows the digital photo of the drainage method."
Fig 5
(a) Calculated ΔGH* of Pt@PtNi3, PtNi3, Pt, and Ni. (b) Pt–H bond length, (c) εd, and (d) Pt 5d–H 1s antibonding orbital occupancy state of Pt, Pt@PtNi3, and PtNi3. (e) Free energy profiles of UOR on Pt@PtNi3, PtNi3, Pt, and Ni (inset is the schematic illustration for the UOR process on Pt@PtNi3)."
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