通过 Dealloying 技术实现同源温度调节的分层纳米多孔结构。

IF 10.7 2区 材料科学 Q1 CHEMISTRY, PHYSICAL
Small Methods Pub Date : 2025-01-01 Epub Date: 2024-08-04 DOI:10.1002/smtd.202400729
Huiyou Shen, Jing Jiang, Min Zhang, Zhen Lu, Jiuhui Han
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引用次数: 0

摘要

通过脱合金制造的纳米多孔金属具有多种应用,但通常仅限于单模态多孔结构,这就阻碍了孔径相关特性的整合。本文提出了一种策略,利用同源温度(TH)相关的特征尺寸缩放,通过改变脱合金温度或材料熔点,在不同的 TH 水平下进行多步脱合金,生成分层多孔结构。这种技术有助于创建双模多孔镍和三模多孔碳的整体结构,每种结构都具有不同长度尺度上定义明确、自相似的双连续孔隙率。这些材料将大面积的表面积与高效的质量传输相结合,在电催化制氢和电化学超级电容器的电极中显示出更强的电流传输和速率能力。这些结果突出表明,TH 是精确定制脱合金纳米多孔材料特征尺寸的统一参数,为开发具有分层结构的材料开辟了途径,从而实现了新的功能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Homologous Temperature Regulated Hierarchical Nanoporous Structures by Dealloying.

Homologous Temperature Regulated Hierarchical Nanoporous Structures by Dealloying.

Nanoporous metals, fabricated via dealloying, offer versatile applications but are typically limited to unimodal porous structures, which hinders the integration of conflicting pore-size-dependent properties. A strategy is presented that exploits the homologous temperature (TH)-dependent scaling of feature sizes to generate hierarchical porous structures through multistep dealloying at varied TH levels, adjusted by altering dealloying temperatures or the material melting points. This technique facilitates the creation of monolithic architectures of bimodal porous nickel and trimodal porous carbon, each characterized by well-defined, self-similar bicontinuous porosities across distinct length scales. These materials merge extensive surface area with efficient mass transport, showing improved current delivery and rate capabilities as electrodes in electrocatalytic hydrogen production and electrochemical supercapacitors. These results highlight TH as a unifying parameter for precisely tailoring feature sizes of dealloyed nanoporous materials, opening avenues for developing materials with hierarchical structures that enable novel functionalities.

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来源期刊
Small Methods
Small Methods Materials Science-General Materials Science
CiteScore
17.40
自引率
1.60%
发文量
347
期刊介绍: Small Methods is a multidisciplinary journal that publishes groundbreaking research on methods relevant to nano- and microscale research. It welcomes contributions from the fields of materials science, biomedical science, chemistry, and physics, showcasing the latest advancements in experimental techniques. With a notable 2022 Impact Factor of 12.4 (Journal Citation Reports, Clarivate Analytics, 2023), Small Methods is recognized for its significant impact on the scientific community. The online ISSN for Small Methods is 2366-9608.
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