表征(材料科学)
材料科学
拉伤
催化作用
透射电子显微镜
领域(数学)
纳米
高分辨率透射电子显微镜
吸收(声学)
纳米技术
还原(数学)
氨生产
时间分辨率
化学物理
分辨率(逻辑)
图像分辨率
电极
化学工程
氨
产量(工程)
电催化剂
硝酸盐
分析化学(期刊)
生物系统
扫描透射电子显微镜
显微镜
纳米颗粒
膜
法拉第效率
应变工程
作者
Yiyuan Tao,Xingyu Zheng,Shi Huang,Ershuai Liu,Yangjian Lin,Qike Jiang,Long Yang,Walter S. Drisdell,T. D. Xu,Yao Yang
标识
DOI:10.1038/s41467-026-70447-7
摘要
Strain engineering serves as a pivotal strategy to optimize catalytic activity in electrocatalysis. However, the catalyst sizes under industrial conditions are usually large and even beyond nanometer regime. The critical methodological limitations on strain imaging of such catalysts with both large field of view and high spatial resolution obscure the mechanistic understanding of strain-performance correlations. Here, we present an optimized four-dimensional scanning transmission electron microscopy (4D-STEM) method to acquire strain mapping of both bulk and surface across particles up to 500 nm with 0.6 nm spatial resolution and 0.55% precision. We observe the ripple-like periodic strain coupled with elemental fluctuations inside a perovskite-type hydroxide CuCoSn(OH)6 and find it correlated to electrocatalytic nitrate reduction (NO3–RR) absorption energy to achieve the 92.6% Faradaic efficiency and long-term test over 1000 h at membrane electrode assembly (MEA) for ammonia electrosynthesis. This universal framework design offers a practical method that not only develops an advanced measurement combining multi-modal characterization techniques but also reveals the intrinsic structure-property constitutive law of industry-level catalysts. Imaging strain in large catalytic particles with high precision remains a challenge. Here, the authors apply four-dimensional scanning transmission electron microscopy to map strain in perovskite-type hydroxides, revealing correlations that enable high-performance nitrate reduction to ammonia.
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