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Doped-MoSe_2 Nanoflakes/3d Metal Oxide–Hydr(Oxy) Oxides Hybrid Catalysts for pH-Universal Electrochemical Hydrogen Evolution Reaction

机译:掺杂MoSe_2纳米片/ 3d金属氧化物-Hydr(Oxy)氧化物杂化催化剂,用于pH值通用的电化学制氢反应

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摘要

Clean hydrogen production is highly promising to meet future global energy demands. The design of earth-abundant materials with both high activity for hydrogen evolution reaction (HER) and electrochemical stability in both acidic and alkaline environments is needed, in order to enable practical applications. Here, the authors report a non-noble 3d metal Cl-chemical doping of liquid phase exfoliated single-/few-layer flakes of MoSe2 for creating MoSe2/3d metal oxide-hydr(oxy)oxide hybrid HER-catalysts. It is proposed that the electron-transfer from MoSe2 nanoflakes to metal cations and the chlorine complexation-induced neutralization, as well as the in situ formation of metal oxide-hydr(oxy)oxides on the MoSe2 nanoflakes' surface, tailor the proton affinity of the catalysts, increasing the number and HER-kinetics of their active sites in both acidic and alkaline electrolytes. The electrochemical coupling between doped-MoSe2/metal oxide-hydr(oxy)oxide hybrids and single-walled carbon nanotubes heterostructures further accelerates the HER process. Lastly, monolithic stacking of multiple heterostructures is reported as a facile electrode assembly strategy to achieve overpotential for a cathodic current density of 10 mA cm(-2) of 0.081 and 0.064 V in 0.5 M H2SO4 and 1 M KOH, respectively. This opens up new opportunities to address the current density versus overpotential requirements targeted in pH-universal hydrogen production.
机译:清洁氢气生产有望满足未来全球能源需求。为了能够实际应用,需要设计既具有高活性的氢释放反应(HER)又具有在酸性和碱性环境下的电化学稳定性的地球土材料。在这里,作者报告了MoSe2液相剥离的单层/少量层薄片的非贵金属3d金属Cl化学掺杂,用于生成MoSe2 / 3d金属氧化物-水(氧)氧化物杂化HER催化剂。有人提出,从MoSe2纳米薄片到金属阳离子的电子转移以及氯络合诱导的中和反应,以及在MoSe2纳米薄片表面上原位形成金属氧化物-氢(氧)氧化物,都可以调节催化剂,增加了它们在酸性和碱性电解质中的活性位点的数量和HER动力学。掺杂的MoSe2 /金属氧化物-氢(氧)氧化物杂化物与单壁碳纳米管异质结构之间的电化学偶联进一步加速了HER过程。最后,多个异质结构的单片堆叠被报告为一种简便的电极组装策略,以实现在0.5 M H2SO4和1 M KOH中分别具有0.081和0.064 V的10 mA cm(-2)的阴极电流密度的超电势。这为解决当前普遍使用的pH值和过电位要求提供了新的机会。

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