Tianzhao Liu, Xuemin Li, Jaehee Shim, Owen J. Curnow, Jungkyu Choi* and Alex C. K. Yip*,
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引用次数: 0
摘要
离子液体(IL)以其低熔点和大量阳离子和阴离子的可能组合而著称,是沸石合成的理想模板。MFI 沸石具有独特的三维多孔网络,在石化工艺和环境应用中引起了广泛的兴趣。本研究采用 1-丁基-3-甲基咪唑(BMIM)基 ILs 进行 MFI 型沸石合成,在 18 小时内成功获得了高度结晶的 MFI 型晶体。为了突出使用 ILs 的优势,我们制备了使用传统模板四丙基氢氧化铵合成的 ZSM-5 沸石进行对比分析。研究探讨了离子变化、老化持续时间和铝酸盐含量等参数对晶相生长的影响。此外,还进行了种子辅助合成,以验证 IL 对成核步骤的影响。随后阐明了加速结晶过程的机制,发现合成凝胶中加入 BMIM 能显著促进快速成核。随后立即形成无定形颗粒。这些颗粒随后向内生长,最终形成结晶良好的颗粒。这一发现凸显了 ILs 在高效沸石合成方面的巨大潜力。
Accelerated Crystallization Kinetics of MFI Zeolite via Imidazolium-Based Synthesis
Ionic liquids (ILs), known for their low melting points and vast array of possible combinations of cations and anions, serve as an ideal template for zeolite synthesis. MFI zeolite, with the distinct three-dimensional porous network, has attracted wide interest in petrochemical processes and environmental applications. In this study, we used 1-butyl-3-methylimidazolium (BMIM)-based ILs for MFI-type zeolite synthesis, successfully achieving a highly crystallized MFI-type crystal within 18 h. To highlight the benefits of using ILs, ZSM-5 zeolite synthesized using the conventional template, tetrapropylammonium hydroxide, was prepared for comparative analysis. Parameters including ion variations, aging duration, and aluminate content on crystal phase growth were explored. Furthermore, seed-assisted synthesis was carried out to verify the impact of the IL on the nucleation step. The mechanism underlying the accelerated crystallization process was subsequently elucidated, revealing that the inclusion of BMIM in the synthesis gel significantly contributed to rapid nucleation. This was followed by the immediate formation of amorphous particles. These particles then experienced inward growth, culminating in the development of well-crystallized particles. This discovery underscores the promising potential of ILs for efficient zeolite synthesis.
期刊介绍:
The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials.
Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.