液体焦耳加热合成用于增强氧还原电催化的超细Pd-Se纳米颗粒

IF 2.6 4区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ChemNanoMat Pub Date : 2025-05-27 DOI:10.1002/cnma.202500172
Zhenya Hu, Mengyuan Ma, Dong Chen, Shaonan Tian, Hui Liu, Yu Chen, Jun Yang
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引用次数: 0

摘要

纳米材料的超快合成策略的发展在能量转换和存储方面具有重要的应用前景。本文提出了一种将焦耳加热与湿化学相结合的快速策略,用于合成超细尺寸为≈3.83 nm的碳负载Pd-Se纳米颗粒,该纳米颗粒在氧还原反应中表现出优异的催化性能。特别是,在碳衬底上,Pd/Se比为17/15的超细Pd- Se纳米颗粒的质量和比活性分别为0.29 A和0.74 mA cm−2,大大超过了它们的商业Pd/C同行和最近报道的一些Pd基电催化剂。这种液体焦耳加热(LJH)方法直接将焦耳加热应用于前驱体、封盖剂、还原剂和碳衬底的液体混合物中,从而同时优化颗粒大小并缩短反应时间。这项研究强调了溶剂参与焦耳加热方法的潜力,用于有效合成适合电催化应用的纳米材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Liquid Joule Heating Synthesis of Ultrafine Pd–Se Nanoparticles for Enhanced Oxygen Reduction Electrocatalysis

Liquid Joule Heating Synthesis of Ultrafine Pd–Se Nanoparticles for Enhanced Oxygen Reduction Electrocatalysis

Liquid Joule Heating Synthesis of Ultrafine Pd–Se Nanoparticles for Enhanced Oxygen Reduction Electrocatalysis

Liquid Joule Heating Synthesis of Ultrafine Pd–Se Nanoparticles for Enhanced Oxygen Reduction Electrocatalysis

Liquid Joule Heating Synthesis of Ultrafine Pd–Se Nanoparticles for Enhanced Oxygen Reduction Electrocatalysis

The development of ultrafast synthesis strategies for nanomaterials is highly attractive for their applications in energy conversion and storage. Herein, a rapid strategy that couples Joule heating with wet chemistry for synthesizing carbon-supported Pd–Se nanoparticles with an ultrafine size of ≈3.83 nm, which exhibits superior catalytic performance for the oxygen reduction reaction, is demonstrated. In particular, the ultrafine Pd–Se nanoparticles at Pd/Se ratio of 17/15 on the carbon substrate exhibit mass and specific activities of 0.29 A  and 0.74 mA cm−2, respectively, significantly surpassing those of their commercial Pd/C counterparts and a number of Pd-based electrocatalysts reported recently. This liquid Joule heating (LJH) approach directly applies Joule heating to a liquid mixture of precursors, capping agents, reducing agents, and carbon substrates, enabling simultaneous optimization of particle size and reduction of reaction time. This study highlights the potential of solvent-involved Joule heating methodologies for the efficient synthesis of nanomaterials tailored for electrocatalytic applications.

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来源期刊
ChemNanoMat
ChemNanoMat Energy-Energy Engineering and Power Technology
CiteScore
6.10
自引率
2.60%
发文量
236
期刊介绍: ChemNanoMat is a new journal published in close cooperation with the teams of Angewandte Chemie and Advanced Materials, and is the new sister journal to Chemistry—An Asian Journal.
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