Acta Phys. -Chim. Sin. ›› 2024, Vol. 40 ›› Issue (7): 2307019.doi: 10.3866/PKU.WHXB202307019
Special Issue: Electrocatalytic Functional Materials
• ARTICLE • Previous Articles Next Articles
Ye Wang1, Ruixiang Ge1, Xiang Liu1, Jing Li1, Haohong Duan1,2,*(
)
Received:2023-07-11
Revised:2023-08-25
Accepted:2023-08-25
Published:2023-12-01
Contact:
Email: hhduan@mail.tsinghua.edu.cn; Tel.: +86-10-62780648 (Haohong Duan)
Supported by:Ye Wang, Ruixiang Ge, Xiang Liu, Jing Li, Haohong Duan. An Anion Leaching Strategy towards Metal Oxyhydroxides Synthesis for Electrocatalytic Oxidation of Glycerol[J]. Acta Phys. -Chim. Sin. 2024, 40(7), 2307019. doi: 10.3866/PKU.WHXB202307019
Fig 1
Continuous 30 CV cycles of (a) Ni(OH)2 and (b) NiMoO4 measured at 0.924–2.124 V vs. RHE at 50 mV∙s−1 with no iR compensation. Insets enlarge the oxidation (Ni2+ → Ni3+ + e−) and reduction (Ni3+ + e− → Ni2+) regions. The black arrows indicate the forward and backward scan directions of the CV curves."
Fig 2
(a) FESEM image of Mo-NiOOH. Scale bar, 500 nm. (b) EDS mapping of Mo-NiOOH (Ni, green; Mo, blue; O, red; scale bars, 100 μm), showing the homogeneous distribution of Ni, Mo, and O. (c) Ex situ Raman spectroscopies of Ni(OH)2 at 466 cm−1 and NiOOH at 474 and 553 cm−1. (d) In situ Raman spectroscopies of the reconstruction process from NiMoO4 to Mo-NiOOH in the 30 CV cycles. Ni 2p XPS spectra of (e) Ni(OH)2 and NiOOH and (f) NiMoO4 and Mo-NiOOH from 890 to 850 eV, exhibiting Ni 2p3/2 and Ni 2p1/2 peaks. Light green and dark green shadows represent deconvoluted peak areas of Ni2+ and Ni3+, respectively. Color online."
Fig 3
90% iR-corrected LSV curves measured for NiOOH and Mo-NiOOH in 1.0 mol∙L−1 KOH (a) in the absence or (b) in the presence of 0.1 mol∙L−1 glycerol at a scan rate of 5 mV·s−1. Tafel slopes of NiOOH and Mo-NiOOH in (c) OER and (d) GOR derived from the plots of the applied potentials against the logarithm of the current densities in Fig. 3a, b, respectively. (e) The FE of formate at various applied potentials measured in an AEM-divided H-cell with a typical three-electrode configuration. The reaction time is 1 h. (f) The FE of lactate and oxalate at various applied potentials measured in an AEM-divided H-cell with a typical three-electrode configuration. The reaction time is 1 h."
Fig 4
Multi-potential step experiments for (a) NiOOH and (b) Mo-NiOOH, consisting of three stages: (1) 1.6 V vs. RHE to enrich NiOOH, (2) OCP to detect the possible reaction between NiOOH and glycerol, and (3) 1.0 V vs. RHE to observe the reduction of NiOOH. In situ Raman spectroscopies for (c) NiOOH and (d) Mo-NiOOH in 1.0 mol∙L−1 KOH. In situ Raman spectroscopies for (e) NiOOH and (f) Mo-NiOOH in 1.0 mol∙L−1 KOH with 0.1 mol∙L−1 glycerol."
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