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Chemical and structural engineering of transition metal boride towards excellent and sustainable hydrogen evolution reaction

机译:过渡金属硼化物朝向优异可持续氢化反应的化学与结构工程

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Herein, holey, thin, conductive nickel substituted cobalt molybdenum boride (Ni-CMB) nanosheets have been designed to obtain superior electrochemical HER performance with small overpotential of 69 mV at 10 mA cm(-2) current density and lower Tafel slope of 76.3 mV dec(-1) in alkaline medium. Incorporation of Ni leads to improved conductivity and favorable hydrogen adsorption on Mo sites, which collectively yield efficient electrocatalytic H-2 production from Ni-CMB catalyst. The ultrathin nature (thickness = 5.0 nm) of the designed material expectedly helps to attain high exposure of active sites and facile charge transportation through the nanosheets. Additionally, the decorated mesopores (average size = 3.86 nm) on nanosheets have benefitted towards faster electrolyte diffusion, easy gas escape from catalyst surface to support high electrocatalytic performance. Finally, well-maintained morphology of the sample and evolution of HER active sites in the material have guaranteed long-term, sustainable hydrogen production even at high current densities, which clearly demonstrate its superiority over an expensive electrolyzer (Pt-C) in alkaline water.
机译:在此,已经设计了多孔,薄的导电镍取代的钴钼钼(Ni-CMB)纳米晶片,以获得优异的电化学性能,在10 mA cm(-2)电流密度和76.3mV的下塔拉菲斜率下,具有69mV的小过电位。 Dec(-1)碱性培养基。 Ni的掺入导致Mo位点的导电性和有利的氢吸附,其来自Ni-CMB催化剂的共同促进有效的电催化H-2产生。设计材料的超薄性质(厚度= 5.0nm)预期有助于通过纳米片获得高度暴露的活性位点和容易电荷运输。另外,纳米片上的装饰中孔(平均尺寸= 3.86nm)有利于更快的电解质扩散,易于燃气逸出,从催化剂表面逸出,以支持高电催化性能。最后,即使在高电流密度下,材料中,材料中活性部位的样本和演化的样本和演化的良好形态也能保证长期的可持续氢气,这在碱性水中清楚地证明了其优于昂贵的电解器(PT-C)的优越性。

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