Ji Pengxia, Yu Ruohan, Wang Pengyan, Pan Xuelei, Jin Huihui, Zheng Deyong, Chen Ding, Zhu Jiawei, Pu Zonghua, Wu Jinsong, Mu Shichun
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, P. R. China.
Foshan Xianhu Laboratory of the Advanced Energy Science and Technology Guangdong Laboratory, Xianhu hydrogen Valley, Foshan, 528200, China.
Adv Sci (Weinh). 2022 Jan;9(3):e2103567. doi: 10.1002/advs.202103567. Epub 2021 Nov 12.
Hitherto, there are almost no reports on the complete reconstruction in hydrogen evolution reaction (HER). Herein, the authors develop a new type of reconfigurable fluoride (such as CoF ) pre-catalysts, with ultra-fast and in-depth self-reconstruction, substantially promoting HER activity. By experiments and density functional theory (DFT) calculations, the unique surface structure of fluorides, alkaline electrolyte and bias voltage are identified as key factors for complete reconstruction during HER. The enrichment of F atoms on surface of fluorides provides the feasibility of spontaneous and continuous reconstruction. The alkaline electrolyte triggers rapid F leaching and supplies an immediate complement of OH to form amorphous α-Co(OH) which rapidly transforms into β-Co(OH) . The bias voltage promotes amorphous crystallization and accelerates the reconstruction process. These endow the generation of mono-component and crystalline β-Co(OH) with a loose and defective structure, leading to an ultra-low overpotential of 54 mV at 10 mA cm and super long-term stability exceeding that of Pt/C. Moreover, DFT calculations confirm that F leaching optimizes hydrogen and water adsorption energies, boosting HER kinetics. Impressively, the self-reconstruction is also applicable to other non-noble transition metal fluorides. The work builds the fundamental comprehension of complete self-reconstruction during HER and provides a new perspective to conceive advanced catalysts.
迄今为止,关于析氢反应(HER)中完全重构的报道几乎没有。在此,作者开发了一种新型的可重构氟化物(如CoF)预催化剂,具有超快和深度的自重构能力,极大地促进了HER活性。通过实验和密度泛函理论(DFT)计算,确定了氟化物独特的表面结构、碱性电解质和偏压是HER过程中完全重构的关键因素。氟化物表面F原子的富集为自发和连续重构提供了可行性。碱性电解质引发快速的F浸出,并立即补充OH以形成无定形α-Co(OH),其迅速转变为β-Co(OH)。偏压促进无定形结晶并加速重构过程。这些使得生成具有松散和缺陷结构的单组分结晶β-Co(OH),在10 mA cm时具有54 mV的超低过电位和超过Pt/C的超长稳定性。此外,DFT计算证实F浸出优化了氢和水的吸附能,提高了HER动力学。令人印象深刻的是,这种自重构也适用于其他非贵金属过渡金属氟化物。这项工作建立了对HER过程中完全自重构的基本理解,并为构思先进催化剂提供了新的视角。