Graphene-confined ultrafast radiant heating for high-loading subnanometer metal cluster catalysts.

IF 16.3 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
Ye-Chuang Han, Jun Yi, Beibei Pang, Ning Wang, Xu-Cheng Li, Tao Yao, Kostya S Novoselov, Zhong-Qun Tian
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引用次数: 3

Abstract

Thermally activated ultrafast diffusion, collision and combination of metal atoms comprise the fundamental processes of synthesizing burgeoning subnanometer metal clusters for diverse applications. However, so far, no method has allowed the kinetically controllable synthesis of subnanometer metal clusters without compromising metal loading. Herein, we have developed, for the first time, a graphene-confined ultrafast radiant heating (GCURH) method for the synthesis of high-loading metal cluster catalysts in microseconds, where the impermeable and flexible graphene acts as a diffusion-constrained nanoreactor for high-temperature reactions. Originating from graphene-mediated ultrafast and efficient laser-to-thermal conversion, the GCURH method is capable of providing a record-high heating and cooling rate of ∼109°C/s and a peak temperature above 2000°C, and the diffusion of thermally activated atoms is spatially limited within the confinement of the graphene nanoreactor. As a result, due to the kinetics-dominant and diffusion-constrained condition provided by GCURH, subnanometer Co cluster catalysts with high metal loading up to 27.1 wt% have been synthesized by pyrolyzing a Co-based metal-organic framework (MOF) in microseconds, representing one of the highest size-loading combinations and the quickest rate for MOF pyrolysis in the reported literature. The obtained Co cluster catalyst not only exhibits an extraordinary activity similar to that of most modern multicomponent noble metal counterparts in the electrocatalytic oxygen evolution reaction, but is also highly convenient for catalyst recycling and refining due to its single metal component. Such a novel GCURH technique paves the way for the kinetically regulated, limited diffusion distance of thermally activated atoms, which in turn provides enormous opportunities for the development of sophisticated and environmentally sustainable metal cluster catalysts.

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高负载亚纳米金属团簇催化剂的石墨烯约束超快辐射加热。
热激活的超快扩散、碰撞和金属原子的结合构成了合成亚纳米金属团簇的基本过程。然而,到目前为止,还没有一种方法可以在不影响金属负载的情况下实现亚纳米金属团簇的动力学可控合成。在此,我们首次开发了一种石墨烯约束超快辐射加热(GCURH)方法,用于在微秒内合成高负载金属团簇催化剂,其中不渗透和柔性石墨烯作为高温反应的扩散约束纳米反应器。GCURH方法源于石墨烯介导的超快速高效激光-热转换,能够提供创纪录的加热和冷却速度(~ 109°C/s)和2000°C以上的峰值温度,并且热活化原子的扩散在石墨烯纳米反应器的限制范围内受到空间限制。结果,由于GCURH提供的动力学优势和扩散约束条件,通过在微秒内热解Co基金属-有机骨架(MOF),合成了金属负载高达27.1 wt%的亚纳米Co簇催化剂,这是文献报道中MOF热解的最高尺寸负载组合和最快速率之一。所制得的Co簇催化剂不仅在电催化析氧反应中表现出与大多数现代多组分贵金属催化剂相似的优异活性,而且由于其金属组分单一,便于催化剂的回收和精炼。这种新颖的GCURH技术为热活化原子的动力学调节、有限扩散距离铺平了道路,这反过来又为开发复杂的、环境可持续的金属团簇催化剂提供了巨大的机会。
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来源期刊
National Science Review
National Science Review MULTIDISCIPLINARY SCIENCES-
CiteScore
24.10
自引率
1.90%
发文量
249
审稿时长
13 weeks
期刊介绍: National Science Review (NSR; ISSN abbreviation: Natl. Sci. Rev.) is an English-language peer-reviewed multidisciplinary open-access scientific journal published by Oxford University Press under the auspices of the Chinese Academy of Sciences.According to Journal Citation Reports, its 2021 impact factor was 23.178. National Science Review publishes both review articles and perspectives as well as original research in the form of brief communications and research articles.
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