Acta Phys. -Chim. Sin. ›› 2024, Vol. 40 ›› Issue (4): 2306003.doi: 10.3866/PKU.WHXB202306003
Special Issue: Multi-Physical Fields Driven Catalysis for Energy Conversion
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Lu Zhuoran1, Li Shengkai1,2, Lu Yuxuan1,3, Wang Shuangyin1, Zou Yuqin1,*(
)
Received:2023-06-01
Revised:2023-07-03
Accepted:2023-07-03
Published:2023-07-10
Contact:
Email: yuqin_zou@hnu.edu.cn (Yuqin Zou)
Supported by:Lu Zhuoran, Li Shengkai, Lu Yuxuan, Wang Shuangyin, Zou Yuqin. Cleavage of C―C Bonds for Biomass Upgrading on Transition Metal Electrocatalysts[J]. Acta Phys. -Chim. Sin. 2024, 40(4), 2306003. doi: 10.3866/PKU.WHXB202306003
Fig 1
(a) Potential dependent FTIR spectra for (1) unmodified Pt electrode and (2) Bi-modified Pt electrode in 0.01 mol∙L−1 HClO4 + 0.1 mol∙L−1 glycerol 15. (b) Schematic illustration of the glycerol oxidation on pure Pt and Bi-modified Pt 15. (c) Infrared spectra recorded each 0.05 V for the electrooxidation 0.1 mol∙L−1 glycerol in 0.1 mol∙L−1 NaOH on the different Pd-NP electrodes 25. (d) Linear voltammograms of glycerol oxidation catalyzed on different AuPt and Au & Pt electrodes in 0.5 mol∙L−1 glycerol & 1 mol∙L−1 KOH solution 26. (e) Linear voltammograms of glycerol oxidation catalyzed by AuPt (15% Ptsurf) in 0.5 mol∙L−1 glycerol in KOH 26. (f) 1H and (g) 13C NMR spectra of the electrolyte solution after 12 h glycerol oxidation on AuPt (15% Ptsurf) in 0.5 mol∙L−1 glycerol & 1 mol∙L−1 KOH solution at 1.05 V vs. RHE 26."
Fig 2
(a) XRD pattern of Ni-Mo-N/CFC 30. (b) Scheme of the glycerol oxidation pathway and the correlation between product selectivity and the Hammett parameters. (c) LSV curves of different MCo2O4 grown on carbon fiber paper and bare carbon fiber paper in the presence (solid lines) or absence (dash-dotted lines) of 0.1 mol∙L−1 glycerol 33. (d) Intrinsic GOR catalytic activities on different MCo2O4 catalysts in 0.1 mol∙L−1 KOH solution with 0.1 mol∙L−1 glycerol after ECSA normalization 33. (e) Intrinsic GOR catalytic activities on different MCo2O4 catalysts 33. (f) Reaction free-energy diagram of OER (LOM) and glycerol oxidation to GLAD 34."
Fig 3
(a) Mass spectra of cyclohexanone in the isotope-labeled electrolyte 46. (b) I–t curves of Ni(OH)2-SDS and Ni(OH)2 at different potentials (V vs. RHE) in normal pulse voltammetry 46. In situ IRRAS spectra of the cyclohexanol oxidation products under 1.47 V vs. RHE with (c) Ni(OH)2, (d) 2% Cu-Ni(OH)2 and (e) 2% Cu-Ni(OH)2 + 4-Carboxy-TEMPO in the electrolyte at a time resolution of 30 s 42. (f) The comparison of the in situ IRRAS spectra at the third scan (90 s) 42."
Fig 5
Selectivity and partial currents toward significant products of the electro-oxidation of (a, c) 100 mmol∙L−1 furfural and (b, d) 100 m mol∙L−1 FA on Pt/C electrode 95. Conversion of furfural and yield of oxidation products obtained using (e) PbO2, (f) MnO2 and (g) Pt anodes at 2.0, 1.8 and 2.2 V vs. RHE, respectively, during electrochemical oxidation of 10 mmol∙L−1 furfural over various charge 96."
Table 1
Summary of electrocatalysts for biomass-derived organic molecules."
| Electrocatalyst | Reactant | Main product | Conversion/Production rate | Selectivity (%) | Electrolyte | Reference |
| Bi-modified Pt/C | Glyceral | DHA | 100 | 100 | 0.5 mol∙L−1 H2SO4 | |
| Bi-modified Pd-NP | Glyceral | Hydroxypyruvate | – | – | 0.5 mol∙L−1 H2SO4 | |
| AuPt | Glyceral | LA | – | 73.0 | 1 mol∙L−1 KOH | |
| Ni-Mo-N/CFC | Glyceral | Formate | – | 95.0 | 1 mol∙L−1 KOH | |
| Ni-phen | Glyceral | Formate | – | 92.7 | 2 mol∙L−1 KOH | |
| Co3O4 | C3-saturated alcohols | – | – | – | 1 mol∙L−1 KOH | |
| CuCo2O4 | Glyceral | Formic acid | 79.7 | 89.1 | 0.1 mol∙L−1 KOH | |
| MnO2/CP | Glyceral | Formic acid | – | – | 0.005 mol∙L−1 H2SO4 | |
| Ni(OH)2-SDS | Cyclohexanol | Adipic acid | – | – | 0.5 mol∙L−1 KOH | |
| Cu-Ni(OH)2 | Cyclohexanol | Adipic acid | 96.55 | 87 | 1 mol∙L−1 NaOH | |
| Fe-Mn/Mn2O3 | Cyclohexanol | Adipic acid | 94.5 | – | 0.5 mol∙L−1 NaOH | |
| Cu | Cyclohexanol | Adipic acid | – | – | 0.1 mol∙L−1 NaOH | |
| Pt1/N-CNTs | 2-phenoxy-1-phenylethanol | Benzaldehyde | 99 | 81.82 | TBHP, 70% aq.soln | |
| hp-Ni | Lignin | Vanillin and syringaldehyde | – | – | 1 mol∙L−1 KOH | |
| MnCoOOH/NF | 1-phenylethanol | Benzoate | – | – | 1 mol∙L−1 KOH | |
| CuS | Furfural | 5-Hydroxy-2(5H)-furanone (HFN) | 70.2 | 83.6 | [Et3NH]NO3 (1.8%, wt), Me-CN, and H2O (12.5%, wt) | |
| Pt | Furfural | Maleic acid (MA) | – | – | 0.25 mol∙L−1 HClO4 | |
| PbO2 | Furfural | Maleic acid (MA) | 99 | 65.76 | 0.05 mol∙L−1 H2SO4 |
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