Zeng Jinjin, Sastre German, Hong Suk Bong
Center for Ordered Nanoporous Materials Synthesis, Division of Environmental Science and Engineering, POSTECH, Pohang 37673, Korea.
Instituto de Tecnologia Quimica (UPV-CSIC), Universidad Politécnica de Valencia, Av. Naranjos s/n, Valencia 46022, Spain.
J Am Chem Soc. 2024 Oct 9;146(40):27468-27474. doi: 10.1021/jacs.4c07414. Epub 2024 Sep 24.
Despite extensive efforts over the past several decades, the current mechanistic understanding of zeolite crystallization is still far from satisfactory, thus precluding the synthesis of designer zeolites. Here we show that the nucleation and in situ transformation pathways during the synthesis of medium-pore zeolite TNU-9 can be altered by controlling the extent of cooperative structure direction between Na and Cs ions in the presence of 1,4-bis(-methylpyrrolidinium)butane cations as an organic structure-directing agent. The intermediate phase selectivity was found to change from bikitaite to analcime to layered MCM-22 precursor when the gel Na/Cs ratio was adjusted to 7, 15, and 20, respectively. We also show that the transformation of bikitaite into TNU-9 begins at the surface of intermediate crystals, unlike that of analcime and MCM-22 precursor by a dissolution-recrystallization process. The force field simulation results suggest that the nucleation of different intermediate phases is not thermodynamically but kinetically controlled. This study provides a new basis for advancing the fundamental understanding of zeolite crystallization pathways.
尽管在过去几十年里付出了巨大努力,但目前对沸石结晶的机理理解仍远不能令人满意,这使得定制沸石的合成成为泡影。在此我们表明,在作为有机结构导向剂的1,4-双(-甲基吡咯烷鎓)丁烷阳离子存在下,通过控制Na和Cs离子之间协同结构导向的程度,可以改变中孔沸石TNU-9合成过程中的成核和原位转变途径。当凝胶Na/Cs比分别调整为7、15和20时,发现中间相选择性从比克石转变为方沸石,再转变为层状MCM-22前驱体。我们还表明,与方沸石和MCM-22前驱体通过溶解-重结晶过程不同,比克石向TNU-9的转变始于中间晶体的表面。力场模拟结果表明,不同中间相的成核不是由热力学控制,而是由动力学控制。这项研究为深化对沸石结晶途径的基本理解提供了新的基础。