Sheng Minhao, Bin Xiaoqing, Yang Yawei, Tang Yi, Que Wenxiu
Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education, International Center for Dielectric Research, Shaanxi Engineering Research Center of Advanced Energy Materials and Devices, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an, 710049, P. R. China.
Small. 2022 Aug;18(32):e2203471. doi: 10.1002/smll.202203471. Epub 2022 Jul 17.
MAX phases are frequently dominated as precursors for the preparation of the star material MXene, but less eye-dazzling by their own potential applications. In this work, the electrocatalytic hydrogen evolution reaction (HER) activity of MAX phase is investigated. The MAX-derived electrocatalysts are prepared by a two-step in situ electrosynthesis process, an electrochemical etching step followed by an electrochemical deposition step. First, a Mo TiAlC MAX phase is electrochemically etched in 0.5 m H SO electrolyte. Just several hours, electrochemical dealloy etching of Mo TiAlC MAX powders by applying anode current can acquire a moderated HER performance, outperforming most of reported pure MXene. It is speculated that in situ superficially architecting endogenous MAX/amorphous carbide (MAC) improves its intrinsic catalytic activity. Subsequently, highly active metallic Pt nanoparticles immobilized on MAC (MAC@Pt) shows a transcendental overpotential of 40 mV versus RHE in 0.5 m H SO and 79 mV in 1.0 m KOH at the current density of 10 mA cm without iR correction. Ultrahigh mass activity of MAC@Pt (1.5 A mg ) at 100 mV overpotential is also achieved, 29-folds than those of commercial PtC catalysts.
MAX相常作为制备明星材料MXene的前驱体,但相比其自身潜在应用却没那么耀眼。在这项工作中,研究了MAX相的电催化析氢反应(HER)活性。通过两步原位电合成工艺制备MAX衍生的电催化剂,即先进行电化学蚀刻步骤,再进行电化学沉积步骤。首先,在0.5 m H₂SO₄电解液中对Mo₂TiAlC MAX相进行电化学蚀刻。只需几个小时,通过施加阳极电流对Mo₂TiAlC MAX粉末进行电化学脱合金蚀刻就能获得适度的HER性能,优于大多数已报道的纯MXene。据推测,原位表面构建内源性MAX/非晶碳化物(MAC)提高了其固有催化活性。随后,固定在MAC上的高活性金属Pt纳米颗粒(MAC@Pt)在0.5 m H₂SO₄中相对于可逆氢电极(RHE)在电流密度为10 mA cm⁻²且无iR校正时显示出40 mV的过电位,在1.0 m KOH中为79 mV。在100 mV过电位下,MAC@Pt还实现了超高的质量活性(1.5 A mg⁻¹),是商业Pt/C催化剂的29倍。