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大面积二维多晶过渡金属碳化物的自组装用于析氢电催化。

Self-Assembly of Large-Area 2D Polycrystalline Transition Metal Carbides for Hydrogen Electrocatalysis.

机构信息

Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.

Mechanical Engineering, University of California Berkley, Berkeley, CA, 94704, USA.

出版信息

Adv Mater. 2018 Dec;30(50):e1805188. doi: 10.1002/adma.201805188. Epub 2018 Oct 9.

Abstract

Low-dimensional (0/1/2 dimension) transition metal carbides (TMCs) possess intriguing electrical, mechanical, and electrochemical properties, and they serve as convenient supports for transition metal catalysts. Large-area single-crystalline 2D TMC sheets are generally prepared by exfoliating MXene sheets from MAX phases. Here, a versatile bottom-up method is reported for preparing ultrathin TMC sheets (≈10 nm in thickness and >100 μm in lateral size) with metal nanoparticle decoration. A gelatin hydrogel is employed as a scaffold to coordinate metal ions (Mo , W , Co ), resulting in ultrathin-film morphologies of diverse TMC sheets. Carbonization of the scaffold at 600 °C presents a facile route to the corresponding MoC , WC , CoC , and to metal-rich hybrids (Mo W C and W/Mo C-Co). Among these materials, the Mo C-Co hybrid provides excellent hydrogen evolution reaction (HER) efficiency (Tafel slope of 39 mV dec and 48 mVj = 10 mA cm-2 in overpotential in 0.5 m H SO ). Such performance makes Mo C-Co a viable noble-metal-free catalyst for the HER, and is competitive with the standard platinum on carbon support. This template-assisted, self-assembling, scalable, and low-cost manufacturing process presents a new tactic to construct low-dimensional TMCs with applications in various clean-energy-related fields.

摘要

低维(0/1/2 维)过渡金属碳化物(TMCs)具有有趣的电学、力学和电化学性质,并且它们是过渡金属催化剂的方便载体。大面积单晶 2D TMC 片通常是通过从 MAX 相中剥离 MXene 片来制备的。在此,报道了一种通用的自下而上的方法,用于制备具有金属纳米粒子修饰的超薄 TMC 片(≈10nm 厚和>100μm 横向尺寸)。明胶水凝胶用作配位金属离子(Mo、W、Co)的支架,导致不同 TMC 片的超薄薄膜形态。在 600°C 下对支架进行碳化,提供了一种简便的途径来制备相应的 MoC、WC、CoC 和富金属混合体(Mo-W-C 和 W/Mo-C-Co)。在这些材料中,MoC-Co 混合体提供了优异的析氢反应(HER)效率(在 0.5m H2SO4 中过电势为 39mV dec 和 48mVj = 10mA cm-2)。这种性能使 MoC-Co 成为 HER 的一种可行的无贵金属催化剂,与标准碳载铂相竞争。这种模板辅助、自组装、可扩展和低成本的制造工艺为构建在各种清洁能源相关领域具有应用前景的低维 TMC 提供了一种新策略。

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