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利用壳晶格超材料中的螺旋位错制备高效、稳定的电催化剂。

Harnessing screw dislocations in shell-lattice metamaterials for efficient, stable electrocatalysts.

作者信息

Wang Liqiang, Yin Di, Surjadi James Utama, Ding Junhao, Fu Huangliu, Zhou Xin, Li Rui, Chen Mengxue, Li Xinxin, Song Xu, Ho Johnny C, Lu Yang

机构信息

Department of Mechanical Engineering, City University of Hong Kong, Hong Kong, China.

Department of Materials Science and Engineering, City University of Hong Kong, Kowloon, China.

出版信息

Nat Commun. 2025 Aug 7;16(1):7273. doi: 10.1038/s41467-025-62489-0.

Abstract

Developing highly active and robust catalysts remains a critical challenge for the industrial realization and implementation of nitrate reduction. Here, we proposed a screw dislocation-mediated three-dimensional (3D) printing strategy for scalable, integrated manufacturing of metamaterial catalysts. Specifically, screw dislocation was introduced into the 3D printing process to mediate the simultaneous synthesis of 3D architecture and chiral surface nanostructures, effectively eliminating conventional heterointerfaces. Additionally, severe strain effects induced by dislocation multiplication in curved spaces enhance intrinsic catalytic activity by promoting NO adsorption and lowering the energy barrier of NO-to-NH conversion. Consequently, the FeCoNi dual-scale shell-lattice metamaterials with high dislocation density achieve a Faraday efficiency of 95.4%, an NH yield rate of 20.58 mg h cm, and long-term stability exceeding 500 hours. A flow-through electrolyzer coupled with an acid absorption unit successfully produced NHCl fertilizer products. Our work opens a new perspective for advancing 3D printing technology in catalysis applications.

摘要

开发高活性和稳健的催化剂仍然是硝酸盐还原工业实现和应用面临的关键挑战。在此,我们提出了一种螺旋位错介导的三维(3D)打印策略,用于超材料催化剂的可扩展、集成制造。具体而言,将螺旋位错引入3D打印过程,以介导3D结构和手性表面纳米结构的同步合成,有效消除传统异质界面。此外,弯曲空间中位错增殖引起的严重应变效应通过促进NO吸附和降低NO转化为NH的能垒来增强本征催化活性。因此,具有高位错密度的FeCoNi双尺度壳晶格超材料实现了95.4%的法拉第效率、20.58 mg h cm的NH产率以及超过500小时的长期稳定性。与酸吸收单元耦合的流通式电解槽成功生产出NHCl肥料产品。我们的工作为推动3D打印技术在催化应用中的发展开辟了新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/275e/12332154/5aa48e8e5cb3/41467_2025_62489_Fig1_HTML.jpg

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