普鲁士蓝
成核
化学物理
密度泛函理论
吸收光谱法
材料科学
纳米技术
螺旋(铁路)
晶体生长
吸附
Crystal(编程语言)
结晶学
光谱学
配位复合体
化学
化学工程
金属
光学
物理化学
计算化学
电极
物理
数学分析
程序设计语言
数学
有机化学
量子力学
计算机科学
冶金
电化学
工程类
作者
Guangxun Zhang,Yong Li,Guangyu Du,Jingqi Lu,Wang Qiujing,Ke Wu,Songtao Zhang,Han‐Yi Chen,Yizhou Zhang,Huaiguo Xue,Mohsen Shakouri,Zheng Liu,Huan Pang
标识
DOI:10.1002/ange.202414650
摘要
Investigating the formation and transformation mechanisms of spiral‐concave crystals holds significant potential for advancing innovative material design and comprehension. We examined the kinetics‐controlled nucleation and growth mechanisms of Prussian Blue crystals with spiral concave structures, and constructed a detailed crystal growth phase diagram. The spiral‐concave hexacyanoferrate (SC‐HCF) crystals, characterized by high‐density surface steps and a low stress‐strain architecture, exhibit enhanced activity due to their facile interaction with reactants. Notably, the coordination environment of SC‐HCF can be precisely modulated by the introduction of diverse metals. Utilizing X‐ray absorption fine structure spectroscopy and in‐situ ultraviolet‐visible spectroscopy, we elucidated the formation mechanism of SC‐HCF to Co‐HCF facilitated by oriented adsorption‐ion exchange (OA‐IE) process. Both experimental data, and density functional theory confirm that Co‐HCF possesses an optimized energy band structure, capable of adjusting the local electronic environment and enhancing the performance of the oxygen evolution reaction. This work not only elucidates the formation mechanism and coordination regulation for rich steps HCF, but also offers a novel perspective for constructing nanocrystals with intricate spiral‐concave structures.
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