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Decoding the Biomimetic Mineralization of Metal-Organic Frameworks in Water
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Decoding the Biomimetic Mineralization of Metal-Organic Frameworks in Water

Shang-Wei Lin, Phuc Khanh Lam, Chin-Teng Wu, Kuan-Hsuan Su, Chi-Fang Sung, Sen-Ruo Huang, Je-Wei Chang, Orion Shih, Yi-Qi Yeh, Trung Hieu Vo, …
ACS Nano, 卷.18(36), 頁碼.25170-25182
09/2024
PMID: 39189348

摘要

amine dual N-site early-stage nucleation modular dynamics (MD) simulation polydispersity proton transfer (PT) size focusing small- to wide-angle X-ray scattering (SWAXS) Materials Science (all) Engineering (all) Physics and Astronomy (all)
This study unveils the “green” metal-organic framework (MOF) structuring mechanism by decoding proton transfer in water during ZIF-8 synthesis. Combining in situ small- to wide-angle X-ray scattering, multiscale simulations, and quantum calculations, we reveal that the ZIF-8 early-stage nucleation and crystallization process in aqueous solution unfolds in three distinct stages. In stage I, imidazole ligands replace water in zinc-water cages, triggering an “acidity flip” that promotes proton transfer. This leads to the assembly of structures from single zinc ions to 3D amorphous cluster nuclei. In stage II, amorphous nuclei undergo a critical transformation, evolving into crystalline nuclei and subsequently forming mesoscale-ordered structures and crystallites. The process proceeds until the amorphous precursors are completely consumed, with the transformation kinetics governed by an energy barrier that determines the rate-limiting step. In stage III, stable crystallite nanoparticles form in solution, characterized by a temperature-dependent thermal equilibrium of molecular interactions at the crystal-solution interface. Beyond these core advancements, we explore the influence of encapsulated pepsin and nonencapsulated lysozyme on ZIF-8 formation, finding that their amino acid proton transfer capacity and concentration influence the resulting biomolecule-MOF composite’s shape and encapsulation efficiency. The findings contribute to understanding the molecular mechanisms behind biomimetic mineralization and have potential implications for engineering proteins within amorphous MOF nuclei as protein embryo growth sites.

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