Fundamental Mechanisms, Synthesis Strategies and Key Challenges of Transition Metal Borides for Electrocatalytic Hydrogen Evolution
Tongzhou Hong , Chengzhi Xiao , Jin Jia , Yuanyuan Zhu , Qiang Wang , Yu Liang , Xiao Wang , Bentian Zhang , Guang Zhu , Zhong-Shuai Wu
Electrochemical Energy Reviews ›› 2025, Vol. 8 ›› Issue (1) : 17
Owing to their unique electronic structures and metallic-like properties, transition metal borides (TMBs) have demonstrated activity and stability that surpass those of traditional catalysts in the hydrogen evolution reaction (HER) of water splitting, becoming a research focus in the energy materials field. However, existing research generally lacks a systematic decoupling of the multidimensional correlation mechanisms of synthetic methods, structural regulation, and performance optimisation, severely restricting the rational design process of TMB catalysts. The aim of this review is to provide a cross-scale design paradigm for the development of high-performance TMB-based HER electrocatalysts by constructing a three-in-one analytical framework of theoretical guidance, synthetic innovation, and mechanism analysis. First, based on a fundamental understanding of the HER mechanism and d-band theory, we propose core principles for designing efficient catalysts. We review various synthetic methods, from traditional methods to innovative methods, and discuss their impact on catalytic performance. Through an in-depth analysis of the correlation between synthetic parameters and HER activity, valuable insights are provided for researchers seeking to optimise TMB-based electrocatalysts. Finally, this review highlights the current challenges and outlines future directions, emphasising the immense potential of TMB-based electrocatalysts in advancing sustainable hydrogen production.
Transition metal borides / Hydrogen evolution reaction / Electrocatalysts / Electrochemical water splitting / Synthesis strategies
| [1] |
|
| [2] |
|
| [3] |
|
| [4] |
|
| [5] |
|
| [6] |
|
| [7] |
|
| [8] |
|
| [9] |
|
| [10] |
|
| [11] |
|
| [12] |
|
| [13] |
|
| [14] |
|
| [15] |
|
| [16] |
|
| [17] |
|
| [18] |
|
| [19] |
|
| [20] |
|
| [21] |
|
| [22] |
|
| [23] |
|
| [24] |
|
| [25] |
|
| [26] |
|
| [27] |
|
| [28] |
|
| [29] |
|
| [30] |
|
| [31] |
|
| [32] |
|
| [33] |
|
| [34] |
|
| [35] |
|
| [36] |
|
| [37] |
|
| [38] |
|
| [39] |
|
| [40] |
|
| [41] |
|
| [42] |
|
| [43] |
|
| [44] |
|
| [45] |
|
| [46] |
|
| [47] |
|
| [48] |
|
| [49] |
|
| [50] |
|
| [51] |
|
| [52] |
|
| [53] |
|
| [54] |
|
| [55] |
|
| [56] |
|
| [57] |
|
| [58] |
|
| [59] |
|
| [60] |
|
| [61] |
|
| [62] |
|
| [63] |
|
| [64] |
|
| [65] |
|
| [66] |
|
| [67] |
|
| [68] |
|
| [69] |
|
| [70] |
|
| [71] |
|
| [72] |
|
| [73] |
|
| [74] |
|
| [75] |
|
| [76] |
|
| [77] |
|
| [78] |
|
| [79] |
|
| [80] |
|
| [81] |
|
| [82] |
|
| [83] |
|
| [84] |
|
| [85] |
|
| [86] |
|
| [87] |
|
| [88] |
Mandavkar, R., Habib, M.A., Lin, S.S., et al.: Electron enriched ternary NiMoB electrocatalyst for improved overall water splitting: better performance as compared to the Pt/C || RuO2 at high current density. Appl. Mater. Today 29, 101579 (2022). https://doi.org/10.1016/j.apmt.2022.101579 |
| [89] |
|
| [90] |
|
| [91] |
|
| [92] |
|
| [93] |
|
| [94] |
|
| [95] |
|
| [96] |
|
| [97] |
|
| [98] |
|
| [99] |
|
| [100] |
|
| [101] |
|
| [102] |
|
| [103] |
|
| [104] |
Ai, X., Zou, X., Chen, H., et al.: Transition-metal–boron intermetallics with strong interatomic d–sp orbital hybridization for high-performance electrocatalysis. Angew. Chem. Int. Ed. 59, 3961–3965 (2020). https://doi.org/10.1002/anie.201915663 |
| [105] |
|
| [106] |
|
| [107] |
|
| [108] |
|
| [109] |
|
| [110] |
|
| [111] |
|
| [112] |
|
| [113] |
|
| [114] |
|
| [115] |
|
| [116] |
|
| [117] |
|
| [118] |
|
| [119] |
|
| [120] |
|
| [121] |
|
| [122] |
|
| [123] |
|
| [124] |
|
| [125] |
|
| [126] |
|
| [127] |
|
| [128] |
|
| [129] |
|
| [130] |
|
| [131] |
|
| [132] |
|
| [133] |
|
| [134] |
|
| [135] |
|
| [136] |
|
| [137] |
|
| [138] |
|
| [139] |
|
| [140] |
|
| [141] |
|
| [142] |
|
| [143] |
|
| [144] |
|
| [145] |
|
| [146] |
|
| [147] |
|
| [148] |
|
| [149] |
|
| [150] |
|
| [151] |
|
| [152] |
|
| [153] |
|
| [154] |
|
| [155] |
|
| [156] |
|
| [157] |
|
| [158] |
|
| [159] |
|
| [160] |
|
| [161] |
|
| [162] |
Feltrin AC, Hedman D, Akhtar F.: Thermal properties and high-temperature ablation of high-entropy (Ti0.25V0.25Zr0.25Hf0.25)B2 coating on graphite substrate. J. Adv. Ceram. 13, 1268–1281 (2024). https://doi.org/10.26599/jac.2024.9220935 |
| [163] |
|
| [164] |
|
| [165] |
|
| [166] |
|
| [167] |
|
| [168] |
|
| [169] |
|
| [170] |
|
| [171] |
|
| [172] |
|
| [173] |
|
| [174] |
|
| [175] |
|
| [176] |
|
| [177] |
|
| [178] |
|
| [179] |
|
| [180] |
|
| [181] |
|
| [182] |
|
| [183] |
|
| [184] |
|
| [185] |
|
| [186] |
|
| [187] |
|
| [188] |
|
| [189] |
|
| [190] |
|
| [191] |
|
| [192] |
|
| [193] |
|
| [194] |
|
| [195] |
|
| [196] |
|
| [197] |
|
| [198] |
|
| [199] |
|
| [200] |
|
| [201] |
|
| [202] |
|
| [203] |
|
| [204] |
|
| [205] |
|
| [206] |
|
| [207] |
|
| [208] |
|
| [209] |
Meng, W.X., Pang, R., Li, M., et al.: Integrated catalyst-substrate electrodes for electrochemical water splitting: a review on dimensional engineering strategy. Small 21, 2310469 (2025). https://doi.org/10.1002/smll.202310469 |
| [210] |
|
| [211] |
|
| [212] |
|
| [213] |
|
| [214] |
|
| [215] |
|
| [216] |
|
| [217] |
|
| [218] |
|
| [219] |
|
| [220] |
|
| [221] |
|
| [222] |
|
| [223] |
|
| [224] |
|
| [225] |
|
| [226] |
|
| [227] |
|
| [228] |
|
| [229] |
|
| [230] |
|
| [231] |
|
| [232] |
|
| [233] |
|
| [234] |
|
| [235] |
|
| [236] |
|
| [237] |
|
| [238] |
|
| [239] |
|
| [240] |
|
| [241] |
|
| [242] |
|
| [243] |
|
| [244] |
|
| [245] |
|
| [246] |
|
| [247] |
|
| [248] |
|
| [249] |
|
| [250] |
|
| [251] |
|
| [252] |
|
| [253] |
|
| [254] |
|
| [255] |
|
| [256] |
|
| [257] |
|
| [258] |
|
| [259] |
|
| [260] |
|
| [261] |
ul Haq, T., Mansour, S.A., Munir, A., et al.: Gold-supported gadolinium doped CoB amorphous sheet: a new benchmark electrocatalyst for water oxidation with high turnover frequency. Adv. Funct. Mater. 30, 1910309(2020). https://doi.org/10.1002/adfm.201910309 |
| [262] |
|
| [263] |
|
| [264] |
|
| [265] |
|
| [266] |
Jiang, J., Wang, M., Yan, W.S., et al.: Highly active and durable electrocatalytic water oxidation by a NiB0.45/NiOx core-shell heterostructured nanoparticulate film. Nano Energy 38, 175–184(2017). https://doi.org/10.1016/j.nanoen.2017.05.045 |
| [267] |
|
| [268] |
|
| [269] |
|
| [270] |
|
| [271] |
|
| [272] |
|
| [273] |
|
| [274] |
|
| [275] |
|
| [276] |
|
| [277] |
|
| [278] |
|
| [279] |
|
| [280] |
|
| [281] |
|
| [282] |
|
| [283] |
|
| [284] |
|
| [285] |
|
| [286] |
|
| [287] |
Schäf, O., Ghobarkar, H., Knauth, P.: Hydrothermal synthesis of nanomaterials. In: Knauth, P. and Schoonman, J. (eds.) Nanostructured Materials: Selected Synthesis Methods, Properties and Applications, pp. 23–41. Springer New York, NY (2002). https://doi.org/10.1007/b113934 |
| [288] |
|
| [289] |
|
| [290] |
|
| [291] |
|
| [292] |
|
| [293] |
|
| [294] |
|
| [295] |
|
| [296] |
|
| [297] |
Paunovic, M., Schlesinger, M.: Fundamentals of electrochemical deposition. John Wiley & Sons, Hoboken (2006). https://doi.org/10.1002/0470009403 |
| [298] |
Brenner, A.: Electrodeposition of Alloys: Principles and Practice. Elsevier, New York (2013). https://doi.org/10.1016/B978-1-4831-9807-1.50001-5 |
| [299] |
|
| [300] |
|
| [301] |
|
| [302] |
Djokić, S.S.: Electroless deposition of metals and alloys. In: Conway, B.E. and White, R.E. (ed.) Modern Aspects of Electrochemistry, pp. 51–133. Springer, Boston, MA (2002). https://doi.org/10.1007/0-306-47604-5_2 |
| [303] |
Djokić, S.S., Cavallotti, P.L.: Electroless deposition: theory and applications. In: Djokic, S. (ed.) Electrodeposition. Modern Aspects of Electrochemistry, vol 48. Springer, New York, NY (2010). https://doi.org/10.1007/978-1-4419-5589-0_6 |
| [304] |
|
| [305] |
|
| [306] |
|
| [307] |
|
| [308] |
|
| [309] |
|
| [310] |
|
| [311] |
|
| [312] |
|
| [313] |
|
| [314] |
|
| [315] |
|
| [316] |
|
| [317] |
|
| [318] |
|
| [319] |
|
| [320] |
|
| [321] |
|
| [322] |
|
| [323] |
|
| [324] |
|
| [325] |
|
| [326] |
|
| [327] |
|
| [328] |
|
| [329] |
|
| [330] |
|
| [331] |
|
| [332] |
|
| [333] |
|
| [334] |
|
| [335] |
|
| [336] |
|
| [337] |
|
| [338] |
|
| [339] |
|
| [340] |
|
| [341] |
|
| [342] |
|
| [343] |
|
| [344] |
|
| [345] |
|
| [346] |
|
| [347] |
|
| [348] |
|
| [349] |
|
| [350] |
|
| [351] |
|
| [352] |
|
| [353] |
Rafiq, M., Harrath, K., Feng, M.J., et al.: NixB/Mo0.8B3 nanorods encapsulated by a boron-rich amorphous layer for universal pH water splitting at the ampere level. Adv. Energy Mater. 14, 2402866 (2024). https://doi.org/10.1002/aenm.202402866 |
| [354] |
|
| [355] |
|
| [356] |
|
| [357] |
|
| [358] |
|
| [359] |
|
| [360] |
|
| [361] |
|
| [362] |
Silviya, R., Vernekar, Y., Bhide, A., et al.: Non-noble bifunctional amorphous metal boride electrocatalysts for selective seawater electrolysis. ChemCatChem 15, e202300635 (2023). https://doi.org/10.1002/cctc.202300635 |
The Author(s)
/
| 〈 |
|
〉 |