|
[1]
|
赵雪莹, 李根蒂, 孙晓彤等. “双碳”目标下电解制氢关键技术及其应用进展[J]. 全球能源互联网, 2021, 4(5): 436-446.
|
|
[2]
|
Bertuccioli, L., Chan, A., Hart, D., et al. (2015) Study on Development of Water Electrolysis in the EU. Fuel Cells Hydrogen Joint Undertakings, Lausanne.
|
|
[3]
|
Chen, L. and Shi, J. (2018) Chemical-Assisted Hydrogen Electrocatalytic Evolution Reaction (CAHER). Journal of Materials Chemistry A, 6, 13538-13548. [Google Scholar] [CrossRef]
|
|
[4]
|
Miao, J., Teng, X., Zhang, R., Guo, P., Chen, Y., Zhou, X., et al. (2020) “Carbohydrate-Universal” Electrolyzer for Energy-Saving Hydrogen Production with CO3FePx@NF as Bifunctional Electrocatalysts. Applied Catalysis B: Environmental, 263, Article 118109. [Google Scholar] [CrossRef]
|
|
[5]
|
Arshad, F., Haq, T.U., Hussain, I. and Sher, F. (2021) Recent Advances in Electrocatalysts toward Alcohol-Assisted, Energy-Saving Hydrogen Production. ACS Applied Energy Materials, 4, 8685-8701. [Google Scholar] [CrossRef]
|
|
[6]
|
Wang, Z., Xu, L., Huang, F., Qu, L., Li, J., Owusu, K.A., et al. (2019) Copper-Nickel Nitride Nanosheets as Efficient Bifunctional Catalysts for Hydrazine‐Assisted Electrolytic Hydrogen Production. Advanced Energy Materials, 9, Article 1900390. [Google Scholar] [CrossRef]
|
|
[7]
|
Zhang, K., Zhang, G., Qu, J. and Liu, H. (2018) Intensification of Anodic Charge Transfer by Contaminant Degradation for Efficient H2 Production. Journal of Materials Chemistry A, 6, 10297-10303. [Google Scholar] [CrossRef]
|
|
[8]
|
Li, C., Liu, Y., Zhuo, Z., Ju, H., Li, D., Guo, Y., et al. (2018) Local Charge Distribution Engineered by Schottky Heterojunctions toward Urea Electrolysis. Advanced Energy Materials, 8, Article 1801775. [Google Scholar] [CrossRef]
|
|
[9]
|
Zhao, D., Su, T., Wang, Y., Varma, R.S. and Len, C. (2020) Recent Advances in Catalytic Oxidation of 5-Hydroxy-methylfurfural. Molecular Catalysis, 495, Article 111133. [Google Scholar] [CrossRef]
|
|
[10]
|
Li, X., Xia, Q., Nguyen, V.C., Peng, K., Liu, X., Essayem, N., et al. (2016) High Yield Production of HMF from Carbohydrates over Silica-Alumina Composite Catalysts. Catalysis Science & Technology, 6, 7586-7596. [Google Scholar] [CrossRef]
|
|
[11]
|
Verdeguer, P., Merat, N. and Gaset, A. (1993) Oxydation catalytique du HMF en acide 2,5-furane dicarboxylique. Journal of Molecular Catalysis, 85, 327-344. [Google Scholar] [CrossRef]
|
|
[12]
|
Ait Rass, H., Essayem, N. and Besson, M. (2013) Selective Aqueous Phase Oxidation of 5-Hydroxymethylfurfural to 2,5-Furandicarboxylic Acid over Pt/C Catalysts: Influence of the Base and Effect of Bismuth Promotion. Green Chemistry, 15, 2240-2251. [Google Scholar] [CrossRef]
|
|
[13]
|
Ait Rass, H., Essayem, N. and Besson, M. (2015) Selective Aerobic Oxidation of 5‐HMF into 2,5‐Furandicarboxylic Acid with Pt Catalysts Supported on TiO2‐ and ZrO2‐Based Supports. ChemSusChem, 8, 1206-1217. [Google Scholar] [CrossRef] [PubMed]
|
|
[14]
|
Miao, Z., Wu, T., Li, J., Yi, T., Zhang, Y. and Yang, X. (2015) Aerobic Oxidation of 5-Hydroxymethylfurfural (HMF) Effectively Catalyzed by a Ce0.8Bi0.2O2-δ Supported Pt Catalyst at Room Temperature. RSC Advances, 5, 19823-19829. [Google Scholar] [CrossRef]
|
|
[15]
|
Sahu, R. and Dhepe, P.L. (2014) Synthesis of 2,5-Furandicarboxylic Acid by the Aerobic Oxidation of 5-Hydroxymethyl Furfural over Supported Metal Catalysts. Reaction Kinetics, Mechanisms and Catalysis, 112, 173-187. [Google Scholar] [CrossRef]
|
|
[16]
|
Davis, S.E., Benavidez, A.D., Gosselink, R.W., Bitter, J.H., de Jong, K.P., Datye, A.K., et al. (2014) Kinetics and Mechanism of 5-Hydroxymethylfurfural Oxidation and Their Implications for Catalyst Development. Journal of Molecular Catalysis A: Chemical, 388, 123-132. [Google Scholar] [CrossRef]
|
|
[17]
|
Niu, W., Wang, D., Yang, G., Sun, J., Wu, M., Yoneyama, Y., et al. (2014) Pt Nanoparticles Loaded on Reduced Graphene Oxide as an Effective Catalyst for the Direct Oxidation of 5-Hydroxymethylfurfural (HMF) to Produce 2,5-Furandicarboxylic Acid (FDCA) under Mild Conditions. Bulletin of the Chemical Society of Japan, 87, 1124-1129. [Google Scholar] [CrossRef]
|
|
[18]
|
Sharma, P., Solanki, M. and Sharma, R.K. (2019) Metal-Functionalized Carbon Nanotubes for Biomass Conversion: Base-Free Highly Efficient and Recyclable Catalysts for Aerobic Oxidation of 5-Hydroxymethylfurfural. New Journal of Chemistry, 43, 10601-10609. [Google Scholar] [CrossRef]
|
|
[19]
|
Shen, J., Chen, H., Chen, K., Qin, Y., Lu, X., Ouyang, P., et al. (2018) Atomic Layer Deposition of a Pt-Skin Catalyst for Base-Free Aerobic Oxidation of 5-Hydroxymethylfurfural to 2,5-Furandicarboxylic Acid. Industrial & Engineering Chemistry Research, 57, 2811-2818. [Google Scholar] [CrossRef]
|
|
[20]
|
Luo, M., Sun, Y., Qin, Y., Li, Y., Li, C., Yang, Y., et al. (2018) Palladium-Based Nanoelectrocatalysts for Renewable Energy Generation and Conversion. Materials Today Nano, 1, 29-40. [Google Scholar] [CrossRef]
|
|
[21]
|
Schäfer, P.J. and Kibler, L.A. (2010) Incorporation of Pd into Au (111): Enhanced Electrocatalytic Activity for the Hydrogen Evolution Reaction. Physical Chemistry Chemical Physics, 12, 15225-15230. [Google Scholar] [CrossRef] [PubMed]
|
|
[22]
|
Jiang, Y., Yan, Y., Han, Y., Zhang, H. and Yang, D. (2017) Core-Shell and Alloy Integrating PdAu Bimetallic Nanoplates on Reduced Graphene Oxide for Efficient and Stable Hydrogen Evolution Catalysts. RSC Advances, 7, 43373-43379. [Google Scholar] [CrossRef]
|
|
[23]
|
Zong, Z., Xu, K., Li, D., Tang, Z., He, W., Liu, Z., et al. (2018) Peptide Templated Au@Pd Core-Shell Structures as Efficient Bi-Functional Electrocatalysts for Both Oxygen Reduction and Hydrogen Evolution Reactions. Journal of Catalysis, 361, 168-176. [Google Scholar] [CrossRef]
|
|
[24]
|
Jana, R., Bhim, A., Bothra, P., Pati, S.K. and Peter, S.C. (2016) Electrochemical Dealloying of PdCu3 Nanoparticles to Achieve Pt‐Like Activity for the Hydrogen Evolution Reaction. ChemSusChem, 9, 2922-2927. [Google Scholar] [CrossRef] [PubMed]
|
|
[25]
|
Zhang, L., Chang, Q., Chen, H. and Shao, M. (2016) Recent Advances in Palladium-Based Electrocatalysts for Fuel Cell Reactions and Hydrogen Evolution Reaction. Nano Energy, 29, 198-219. [Google Scholar] [CrossRef]
|
|
[26]
|
Xie, J., Nie, J. and Liu, H. (2014) Aqueous-Phase Selective Aerobic Oxidation of 5-Hydroxymethylfurfural on Ru/C in the Presence of Base. Chinese Journal of Catalysis, 35, 937-944. [Google Scholar] [CrossRef]
|
|
[27]
|
Nie, J., Xie, J. and Liu, H. (2013) Activated Carbon-Supported Ruthenium as an Efficient Catalyst for Selective Aerobic Oxidation of 5-Hydroxymethylfurfural to 2,5-Diformylfuran. Chinese Journal of Catalysis, 34, 871-875. [Google Scholar] [CrossRef]
|
|
[28]
|
Artz, J. and Palkovits, R. (2015) Base‐Free Aqueous‐Phase Oxidation of 5‐Hydroxymethylfurfural over Ruthenium Catalysts Supported on Covalent Triazine Frameworks. ChemSusChem, 8, 3832-3838. [Google Scholar] [CrossRef] [PubMed]
|
|
[29]
|
Gao, T., Yin, Y., Fang, W. and Cao, Q. (2018) Highly Dispersed Ruthenium Nanoparticles on Hydroxyapatite as Selective and Reusable Catalyst for Aerobic Oxidation of 5-Hydroxymethylfurfural to 2,5-Furandicarboxylic Acid under Base-Free Conditions. Molecular Catalysis, 450, 55-64. [Google Scholar] [CrossRef]
|
|
[30]
|
Mishra, D.K., Lee, H.J., Kim, J., Lee, H., Cho, J.K., Suh, Y., et al. (2017) MnCo2O4 Spinel Supported Ruthenium Catalyst for Air-Oxidation of HMF to FDCA under Aqueous Phase and Base-Free Conditions. Green Chemistry, 19, 1619-1623. [Google Scholar] [CrossRef]
|
|
[31]
|
Han, X., Li, C., Liu, X., Xia, Q. and Wang, Y. (2017) Selective Oxidation of 5-Hydroxymethylfurfural to 2,5-Furandi-carboxylic Acid over MnOx-CeO2 Composite Catalysts. Green Chemistry, 19, 996-1004. [Google Scholar] [CrossRef]
|
|
[32]
|
Gao, T., Chen, J., Fang, W., Cao, Q., Su, W. and Dumeignil, F. (2018) Ru/Mnx Ce1OY Catalysts with Enhanced Oxygen Mobility and Strong Metal-Support Interaction: Exceptional Performances in 5-Hydroxymethylfurfural Base-Free Aerobic Oxidation. Journal of Catalysis, 368, 53-68. [Google Scholar] [CrossRef]
|
|
[33]
|
He, M., Xu, B. and Lu, Q. (2022) Probing the Role of Surface Speciation of Tin Oxide and Tin Catalysts on CO2 Electroreduction Combining in Situ Raman Spectroscopy and Reactivity Investigations. Chinese Journal of Catalysis, 43, 1473-1477. [Google Scholar] [CrossRef]
|
|
[34]
|
Guo, X., Fu, H., Yang, J., Luo, L., Zhou, H., Xu, M., et al. (2023) Promoting Electrocatalytic Hydrogenation of 5-Hydroxymethylfurfural over a Cooperative Ag/SnO2 Catalyst in a Wide Potential Window. ACS Catalysis, 13, 13528-13539. [Google Scholar] [CrossRef]
|
|
[35]
|
Zhang, Y., Hai, G., Huang, Z., et al. (2024) Ce-Doping Rather than CeO2 Modification and Their Synergistic Effect: Promotion from Ce Species in the Electrocatalytic Oxidation of 5‐Hydroxymethylfurfural Over NiFe-LDH. Advanced Energy Materials, Article 2401449. [Google Scholar] [CrossRef]
|
|
[36]
|
Rahmani, A., Shabanloo, A. and Shabanloo, N. (2023) A Mini-Review of Recent Progress in Lead Dioxide Electrocatalyst for Degradation of Toxic Organic Pollutants. Materials Today Chemistry, 27, Article 101311. [Google Scholar] [CrossRef]
|
|
[37]
|
Samarghandi, M.R., Ansari, A., Dargahi, A., Shabanloo, A., Nematollahi, D., Khazaei, M., et al. (2021) Enhanced Electrocatalytic Degradation of Bisphenol a by Graphite/β-PbO2 Anode in a Three-Dimensional Electrochemical Reactor. Journal of Environmental Chemical Engineering, 9, Article 106072. [Google Scholar] [CrossRef]
|
|
[38]
|
Samarghandi, M.R., Dargahi, A., Rahmani, A., Shabanloo, A., Ansari, A. and Nematollahi, D. (2021) Application of a Fluidized Three-Dimensional Electrochemical Reactor with Ti/SnO2–Sb/β-PbO2 Anode and Granular Activated Carbon Particles for Degradation and Mineralization of 2,4-Dichlorophenol: Process Optimization and Degradation Pathway. Chemosphere, 279, Article 130640. [Google Scholar] [CrossRef] [PubMed]
|
|
[39]
|
Feng, D., Shang, Z., Xu, P., Yue, H. and Li, X. (2022) Electrochemical Degradation of Hydrolyzed Polyacrylamide by a Novel La-In Co-Doped PbO2 Electrode: Electrode Characterization, Influencing Factors and Degradation Pathway. Journal of Electroanalytical Chemistry, 906, Article 116017. [Google Scholar] [CrossRef]
|
|
[40]
|
Feng, J., Tao, Q., Lan, H., Xia, Y. and Dai, Q. (2022) Electrochemical Oxidation of Sulfamethoxazole by Nitrogen-Doped Carbon Nanosheets Composite PbO2 Electrode: Kinetics and Mechanism. Chemosphere, 286, Article 131610. [Google Scholar] [CrossRef] [PubMed]
|
|
[41]
|
Tan, X., Zhao, Y., Sun, W., Jin, C., Chen, L., Wei, H., et al. (2020) Three-Dimensional Hierarchically Porous PbO2 Electrode for Electrochemical Degradation of m-Cresol. Journal of Electroanalytical Chemistry, 856, Article 113726. [Google Scholar] [CrossRef]
|
|
[42]
|
Duan, X., Wang, W., Wang, Q., Sui, X., Li, N. and Chang, L. (2020) Electrocatalytic Degradation of Perfluoroocatane Sulfonate (PFOS) on a 3D Graphene-Lead Dioxide (3DG-PbO2) Composite Anode: Electrode Characterization, Degradation Mechanism and Toxicity. Chemosphere, 260, Article 127587. [Google Scholar] [CrossRef] [PubMed]
|
|
[43]
|
Chen, S., He, P., Wang, X., Xiao, F., Zhou, P., He, Q., et al. (2021) Co/Sm-Modified Ti/PbO2 Anode for Atrazine Degradation: Effective Electrocatalytic Performance and Degradation Mechanism. Chemosphere, 268, Article 128799. [Google Scholar] [CrossRef] [PubMed]
|
|
[44]
|
Zhou, Z., Chen, C., Gao, M., Xia, B. and Zhang, J. (2019) In situ Anchoring of a Co3O4 Nanowire on Nickel Foam: An Outstanding Bifunctional Catalyst for Energy-Saving Simultaneous Reactions. Green Chemistry, 21, 6699-6706. [Google Scholar] [CrossRef]
|
|
[45]
|
Chong, X., Liu, C., Wang, C., Yang, R. and Zhang, B. (2021) Integrating Hydrogen Production and Transfer Hydrogenation with Selenite Promoted Electrooxidation of α‐Nitrotoluenes to E‐Nitroethenes. Angewandte Chemie, 133, 22181-22187. [Google Scholar] [CrossRef]
|
|
[46]
|
Wang, T., Cao, X., Qin, H., Chen, X., Li, J. and Jiao, L. (2021) Integrating Energy-Saving Hydrogen Production with Methanol Electrooxidation over Mo Modified Co4N Nanoarrays. Journal of Materials Chemistry A, 9, 21094-21100. [Google Scholar] [CrossRef]
|
|
[47]
|
Liu, W., Xu, Z., Zhao, D., Pan, X., Li, H., Hu, X., et al. (2020) Efficient Electrochemical Production of Glucaric Acid and H2 via Glucose Electrolysis. Nature Communications, 11, Article No. 265. [Google Scholar] [CrossRef] [PubMed]
|
|
[48]
|
Hu, E., Yao, Y., Chen, Y., Cui, Y., Wang, Z. and Qian, G. (2021) Boosting Hydrogen Generation by Anodic Oxidation of Iodide over Ni-Co(OH)2 Nanosheet Arrays. Nanoscale Advances, 3, 604-610. [Google Scholar] [CrossRef] [PubMed]
|
|
[49]
|
Pang, X., Zhao, H., Huang, Y., Luo, B., Bai, H. and Fan, W. (2023) Electrochemically Induced NIOOH/Ag+ Active Species for Efficient Oxidation of 5-Hydroxymethylfurfural. Applied Surface Science, 608, Article 155152. [Google Scholar] [CrossRef]
|
|
[50]
|
Guo, L., Zhang, X., Gan, L., Pan, L., Shi, C., Huang, Z., et al. (2022) Advances in Selective Electrochemical Oxidation of 5‐Hydroxymethylfurfural to Produce High‐Value Chemicals. Advanced Science, 10, Article 2205540. [Google Scholar] [CrossRef] [PubMed]
|
|
[51]
|
Zhang, B., Fu, H. and Mu, T. (2022) Hierarchical NiSx/Ni2P Nanotube Arrays with Abundant Interfaces for Efficient Electrocatalytic Oxidation of 5-Hydroxymethylfurfural. Green Chemistry, 24, 877-884. [Google Scholar] [CrossRef]
|
|
[52]
|
Zhang, N., Zou, Y., Tao, L., Chen, W., Zhou, L., Liu, Z., et al. (2019) Electrochemical Oxidation of 5‐Hydroxyme-thylfurfural on Nickel Nitride/Carbon Nanosheets: Reaction Pathway Determined by in Situ Sum Frequency Generation Vibrational Spectroscopy. Angewandte Chemie, 131, 16042-16050. [Google Scholar] [CrossRef]
|
|
[53]
|
Poerwoprajitno, A.R., Gloag, L., Watt, J., Cychy, S., Cheong, S., Kumar, P.V., et al. (2020) Faceted Branched Nickel Nanoparticles with Tunable Branch Length for High‐Activity Electrocatalytic Oxidation of Biomass. Angewandte Chemie International Edition, 59, 15487-15491. [Google Scholar] [CrossRef] [PubMed]
|
|
[54]
|
Barwe, S., Weidner, J., Cychy, S., Morales, D.M., Dieckhöfer, S., Hiltrop, D., et al. (2018) Electrocatalytic Oxidation of 5‐(Hydroxymethyl)Furfural Using High‐Surface‐Area Nickel Boride. Angewandte Chemie International Edition, 57, 11460-11464. [Google Scholar] [CrossRef] [PubMed]
|
|
[55]
|
Zhao, B., Liu, J., Wang, X., Xu, C., Sui, P., Feng, R., et al. (2021) CO2-Emission-Free Electrocatalytic CH3OH Selective Upgrading with High Productivity at Large Current Densities for Energy Saved Hydrogen Co-Generation. Nano Energy, 80, Article 105530. [Google Scholar] [CrossRef]
|
|
[56]
|
Glasscott, M.W., Pendergast, A.D., Goines, S., Bishop, A.R., Hoang, A.T., Renault, C., et al. (2019) Electrosynthesis of High-Entropy Metallic Glass Nanoparticles for Designer, Multi-Functional Electrocatalysis. Nature Communications, 10, Article No. 2650. [Google Scholar] [CrossRef] [PubMed]
|
|
[57]
|
Huang, K., Zhang, B., Wu, J., Zhang, T., Peng, D., Cao, X., et al. (2020) Exploring the Impact of Atomic Lattice Deformation on Oxygen Evolution Reactions Based on a Sub-5 Nm Pure Face-Centred Cubic High-Entropy Alloy Electrocatalyst. Journal of Materials Chemistry A, 8, 11938-11947. [Google Scholar] [CrossRef]
|
|
[58]
|
Qiu, H., Fang, G., Gao, J., Wen, Y., Lv, J., Li, H., et al. (2019) Noble Metal-Free Nanoporous High-Entropy Alloys as Highly Efficient Electrocatalysts for Oxygen Evolution Reaction. ACS Materials Letters, 1, 526-533. [Google Scholar] [CrossRef]
|