连接器
多孔性
星团(航天器)
材料科学
相(物质)
纳米技术
功能(生物学)
化学物理
金属有机骨架
催化作用
生物系统
计算机科学
化学
吸附
生物
操作系统
复合材料
进化生物学
有机化学
生物化学
程序设计语言
作者
Sergio Tatay,Sonia Martínez‐Giménez,Ana Rubio‐Gaspar,Eloy Pablo Gómez-Oliveira,Javier Castells‐Gil,Zhuoya Dong,Álvaro Mayoral,Neyvis Almora‐Barrios,Natalia M. Padial,Carlos Martí‐Gastaldo
标识
DOI:10.1038/s41467-023-41936-w
摘要
Changing the perception of defects as imperfections in crystalline frameworks into correlated domains amenable to chemical control and targeted design might offer opportunities for the design of porous materials with superior performance or distinctive behavior in catalysis, separation, storage, or guest recognition. From a chemical standpoint, the establishment of synthetic protocols adapted to control the generation and growth of correlated disorder is crucial to consider defect engineering a practicable route towards adjusting framework function. By using UiO-66 as experimental platform, we systematically explored the framework chemical space of the corresponding defective materials. Periodic disorder arising from controlled generation and growth of missing cluster vacancies can be chemically controlled by the relative concentration of linker and modulator, which has been used to isolate a crystallographically pure "disordered" reo phase. Cs-corrected scanning transmission electron microscopy is used to proof the coexistence of correlated domains of missing linker and cluster vacancies, whose relative sizes are fixed by the linker concentration. The relative distribution of correlated disorder in the porosity and catalytic activity of the material reveals that, contrarily to the common belief, surpassing a certain defect concentration threshold can have a detrimental effect.
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