硅酸铝
材料科学
沸石
介孔材料
纳米颗粒
纳米技术
化学工程
无定形固体
制作
多孔性
催化作用
结晶学
化学
有机化学
复合材料
病理
工程类
替代医学
医学
作者
Xiaoling Chen,Tiesen Li,Qingyan Cui,Jie Shi,Yisheng Tan,Xiaojun Bao,Yuanyuan Yue
标识
DOI:10.1021/acsami.4c15200
摘要
Controllable synthesis of hierarchical zeolites from natural aluminosilicate minerals is considered an efficient and eco-friendly approach for the production of high-performance zeolites, but its synthesis mechanism is still obscure. Herein, we take the synthesis of a single-crystalline hierarchical NaA zeolite using submolten salt depolymerized kaolin (SMS-K) as the sole source of silicon and aluminum via a mesoscale reorganization strategy as an example to elucidate the reorganization process. Comprehensive morphological and structural analyses reveal that sodium-rich voids in SMS-K facilitate concurrent assembly both within the interior and at the interface of the amorphous gel, leading to the formation of numerous nanoparticles with short-range order which assemble into single-crystal nanocube NaA zeolites with intracrystalline mesopores. By harnessing confinement effects, SMS-K modulates the growth of nanoparticle sizes and enhances the intimate interconnection of nanocubes, thereby yielding NaA zeolite aggregates that exhibit hierarchical porosity, encompassing micro-, meso-, and macropores. This study offers the potential for designing and precisely controlling the fabrication of hierarchical zeolites derived from natural minerals.
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