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A Self-Supported High-Entropy Metallic Class with a Nanosponge Architecture for Efficient Hydrogen Evolution under Alkaline and Acidic Conditions

机译:一种独立的高熵金属级,具有纳米泊型架构,用于碱性和酸性条件下的高效氢化

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摘要

Developing highly efficient and durable electrocatalysts for hydrogen evolution reaction (HER) under both alkaline and acidic media is crucial for the future development of a hydrogen economy. However, state-of-the-art high-performance electrocatalysts recently developed are based on carbon carriers mediated by binding noble elements and their complicated processing methods are a major impediment to commercialization. Here, inspired by the high-entropy alloy concept with its inherent multinary nature and using a glassy alloy design with its chemical homogeneity and tunability, we present a scalable strategy to alloy five equiatomic elements, PdPtCuNiP, into a high-entropy metallic glass (HEMG) for HER in both alkaline and acidic conditions. Surface dealloying of the HEMG creates a nanosponge-like architecture with nanopores and embedded nanocrystals that provides abundant active sites to achieve outstanding HER activity. The obtained overpotentials at a current density of 10 mA cm(-2) are 32 and 62 mV in 1.0 m KOH and 0.5 m H2SO4 solutions, respectively, outperforming most currently available electrocatalysts. Density functional theory reveals that a lattice distortion and the chemical complexity of the nanocrystals lead to a strong synergistic effect on the electronic structure that further stabilizes hydrogen proton adsorption/desorption. This HEMG strategy establishes a new paradigm for designing compositionally complex alloys for electrochemical reactions.
机译:在碱性和酸性介质下开发用于氢进化反应(她)的高效和耐用的电催化剂对氢气经济的未来发展至关重要。然而,最近开发的最先进的高性能电催化剂是基于通过结合惰性元素介导的碳载体,并且其复杂的加工方法是商业化的主要障碍。在这里,通过高熵合金概念的灵感,具有其固有的多级自然,并使用玻璃合金设计具有化学均匀性和可调性,我们向合金五赤素元素,pdptcunip,进入高熵金属玻璃(Hemg )在碱性和酸性条件下为她。 HEMG的表面易用性地用纳米孔和嵌入式纳米晶体创造了一种纳米泊,纳米晶体,提供丰富的活跃点,以实现优秀的她的活动。所获得的电流密度为10 mA cm(-2)的过电位分别为32和62mV,分别为0.5μmH2SO4溶液,优于当前可用的电催化剂。密度函数理论揭示了纳米晶体的晶格变形和化学复杂性导致对进一步稳定氢质子吸附/解吸的电子结构的强协同作用。该HEMG策略建立了一种用于设计用于电化学反应的合成复杂合金的新型范式。

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  • 来源
    《Advanced Functional Materials》 |2021年第38期|2101586.1-2101586.12|共12页
  • 作者单位

    Univ New South Wales UNSW Sydney Sch Mech & Mfg Engn Sydney NSW 2052 Australia;

    Univ New South Wales UNSW Sydney Sch Mech & Mfg Engn Sydney NSW 2052 Australia|Univ Sydney Australian Ctr Microscopy & Microanal Sydney NSW 2006 Australia|Univ Sydney Sch Aerosp Mech & Mechatron Engn Sydney NSW 2006 Australia;

    Shanghai Univ Lab Microstruct Inst Mat Sci Shanghai 200072 Peoples R China|City Univ Hong Kong Hong Kong Branch Natl Precious Met Mat Engn Res Ctr Hong Kong Peoples R China|City Univ Hong Kong Dept Mech Engn Hong Kong Peoples R China;

    Univ New South Wales UNSW Sydney Electron Microscope Unit Sydney NSW 2052 Australia;

    Harbin Inst Technol Sch Sci Shenzhen 518055 Peoples R China;

    Edith Cowan Univ Sch Engn 270 Joondalup Dr Perth WA 6027 Australia;

    Edith Cowan Univ Sch Engn 270 Joondalup Dr Perth WA 6027 Australia;

    City Univ Hong Kong Hong Kong Branch Natl Precious Met Mat Engn Res Ctr Hong Kong Peoples R China|City Univ Hong Kong Dept Mech Engn Hong Kong Peoples R China|City Univ Hong Kong Shenzhen Res Inst Greater Bay Joint Div Ctr Adv Struct Mat Shenyang Natl Lab Mat Sci Shenzhen 518057 Peoples R China;

    Univ New South Wales UNSW Sydney Sch Mech & Mfg Engn Sydney NSW 2052 Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    chemical complexity; electrocatalysis; high-entropy metallic glass; lattice distortion; metallurgy;

    机译:化学复杂性;电催化;高熵金属玻璃;格子畸变;冶金;

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