Nonmetal Doping as a Robust Route for Boosting the Hydrogen Evolution of Metal‐Based Electrocatalysts
Qi Hu, Guomin Li, Zhen Han, Ziyu Wang, Xiaowan Huang, Hengpan Yang, Qianling Zhang, Jianhong Liu, Chuanxin He
Abstract
Qi Hu, Guomin Li, Zhen Han, Ziyu Wang, Xiaowan Huang, Hengpan Yang, Qianling Zhang, Jianhong Liu, Chuanxin He
Abstract
Abstract Recently, nonmetal doping has exhibited its great potential for boosting the hydrogen evolution reaction (HER) of transition‐metal (TM)‐based electrocatalysts. To this end, this work overviews the recent achievements made on the design and development of the nonmetal‐doped TM‐based electrocatalysts and their performance for the HER. It is also shown that by rationally doping nonmetal elements, the electronic structures of TM‐based electrocatalysts can be effectively tuned and in turn the Gibbs free energy of the TM for adsorption of H* intermediates (ΔGH*) optimized, consequently enhancing the intrinsic activity of TM‐based electrocatalysts. Notably, we highlight that concurrently doping two nonmetal elements can continuously and precisely regulate the electronic structures of the TM, thereby maximizing the activity for HER. Moreover, nonmetal doping also accounts for enhancing the physical properties of the TM (i.e. surface area). Therefore, nonmetal doping is a robust strategy for simultaneous regulation of the chemical and physical features of the TM.
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Abstract Recently, nonmetal doping has exhibited its great potential for boosting the hydrogen evolution reaction (HER) of transition‐metal (TM)‐based electrocatalysts. To this end, this work overviews the recent achievements made on the design and development of the nonmetal‐doped TM‐based electrocatalysts and their performance for the HER. It is also shown that by rationally doping nonmetal elements, the electronic structures of TM‐based electrocatalysts can be effectively tuned and in turn the Gibbs free energy of the TM for adsorption of H* intermediates (ΔGH*) optimized, consequently enhancing the intrinsic activity of TM‐based electrocatalysts. Notably, we highlight that concurrently doping two nonmetal elements can continuously and precisely regulate the electronic structures of the TM, thereby maximizing the activity for HER. Moreover, nonmetal doping also accounts for enhancing the physical properties of the TM (i.e. surface area). Therefore, nonmetal doping is a robust strategy for simultaneous regulation of the chemical and physical features of the TM.
Key concepts: Nonmetal, Doping, Boosting (machine learning), Materials science, Hydrogen, Nanotechnology, Metal, Adsorption