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设计用于驱动氧化还原电催化的贵金属基纳米合金催化剂的框架结构。

Designing the framework structure of noble-metal based nanoalloy catalysts driving redox electrocatalysis.

作者信息

Chen Guanzhen, Zhang Jie, Chen Wen, Lu Ruihu, Ma Chao, Wang Ziyun, Han Yunhu

机构信息

Institute of Flexible Electronics (IFE) and Frontiers Science Center for Flexible Electronics, Northwestern Polytechnical University Xi'an 710072 China

School of Chemical Sciences, The University of Auckland Auckland 1010 New Zealand

出版信息

Chem Sci. 2024 Jun 26;15(31):12550-12558. doi: 10.1039/d4sc03142c. eCollection 2024 Aug 7.

Abstract

Noble metal-based nanoalloys (NAs) with different entropies have great potential in the field of energy and catalysis. However, it is still very difficult for the reported synthesis strategies to achieve the universal synthesis of small-sized alloys with controllable morphology. Here we develop a general synthesis strategy that combined cation exchange and spatial confinement (CESC). We used this method to construct a library with 21 NAs having low to high entropies. Importantly, we also demonstrate that the method can controllably achieve framing of almost all the NAs obtained, which can be realized by adjusting the amount of non-precious metals, despite the differences in the number of elements. Moreover, the CESC method showed outstanding ability to suppress the sintering of NAs and regulate the particle size of NAs. In the NA library, the framed PtCu/HCN as a redox electrocatalyst shows superior properties. For the methanol oxidation reaction (MOR), the specific and mass activities (7.02 mA cm and 2.81 A mg ) of PtCu/HCN show 28.1- and 13.4-fold enhancement compared to those of commercial Pt/C, and the peak current density is only attenuated by 5% after 50k seconds of chronoamperometry. For the hydrogen evolution reaction (HER), it can operate at ultralow overpotential (23.5 mV and 10 mA cm) for 150 h, far exceeding most of the reported catalysts. Moreover, the catalyst is capable of long-term hydrogen evolution at ultra-low overpotentials. Our work offers opportunities for synthesizing framed superfine noble metal-based NAs with different entropies.

摘要

具有不同熵值的贵金属基纳米合金(NAs)在能源和催化领域具有巨大潜力。然而,对于已报道的合成策略而言,实现具有可控形态的小尺寸合金的通用合成仍然非常困难。在此,我们开发了一种结合阳离子交换和空间限制(CESC)的通用合成策略。我们使用该方法构建了一个包含21种具有低到高熵值的NAs的库。重要的是,我们还证明了该方法能够可控地实现几乎所有所得NAs的框架化,尽管元素数量不同,但通过调整非贵金属的量即可实现。此外,CESC方法在抑制NAs烧结和调节NAs粒径方面表现出卓越能力。在NA库中,作为氧化还原电催化剂的框架化PtCu/HCN表现出优异性能。对于甲醇氧化反应(MOR),PtCu/HCN的比活性和质量活性(分别为7.02 mA cm²和2.81 A mg⁻¹)与商业Pt/C相比分别提高了28.1倍和13.4倍,并且在计时电流法测试50k秒后峰值电流密度仅衰减了5%。对于析氢反应(HER),它可以在超低过电位(23.5 mV和10 mA cm²)下运行150小时,远远超过大多数已报道的催化剂。此外,该催化剂能够在超低过电位下长期析氢。我们的工作为合成具有不同熵值的框架化超细贵金属基NAs提供了机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/47c6/11304777/6f8a70501ba3/d4sc03142c-f1.jpg

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