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Published on: April 3, 2016
Determination of Polymorph A-Enrichment and Absolute Structure of Chiral Zeolite Beta Through Electron
Teng-Yu Huang1, Xu-Dong Wang1, Yu-Fei Ao1,2
1Beijing National Laboratory For Molecular Sciences, CAS Key Laboratory of Molecular Recognition and Function, Institute of Chemistry, Chinese Academy of Sciences, Beijing, China.
Abstract:
Zeolite Beta, one of the earliest recognized chiral zeolitic systems and widely used in the chemical industry, poses a significant challenge for characterizing its chiral structure because of its intergrowth of polymorphs. Herein, we report a comprehensive electron crystallography framework for the determination of polymorph ratios, absolute structures, and enantiomeric distributions in zeolite Beta. By developing an optimized real-space imaging protocol based on scanning transmission electron microscopy, we circumvent the mechanical tilting limits of electron microscopy, enabling chiral identification even at arbitrary crystal orientations. Furthermore, we introduce a weighted refinement strategy for 3D electron diffraction (3D ED). By utilizing dynamical diffraction simulations to derive weighting factors from enantiomeric intensity disparities, the sensitivity of absolute structure determination is significantly enhanced, overcoming the dilution of chiral signals by centrosymmetric components. Experimental validation confirms that this integrated approach accurately quantifies regional polymorph A enrichment and successfully discriminates between P4122 and P4322 enantiomers. This work not only addresses long-standing challenges in characterizing intergrown chiral zeolites but also provides a refined methodological paradigm for investigating such complex porous materials.
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