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◆ ACS Nano2026-01-27· Metastability

Adsorption Mechanism in Crystalline Micropores: Multimodal Fluctuations, Metastability and Phase Transformations in Nanoconfinement

M. Stankiewicz, Anthony Dorhauer, Kornel Roztocki, Volodymyr Bon, Bartosz Mazur, C Wexler, Stefan Kaskel, L. Firlej, Bogdan Kuchta

原始摘要(英文原文)· Original abstract
High Resolution Image Download MS PowerPoint Slide Understanding molecular adsorption in microporous materials is key to advancing gas separation, storage, and catalysis. Here, we study CO 2 and CH 4 adsorption in crystalline metal–organic frameworks (IRMOF-1, 8, 10, and 14), emphasizing the emergence of metastable states. Molecular simulations reveal that adsorption is governed by a fine balance between fluid–fluid and fluid–framework interactions, leading to transitions between low- and high-density pore-filling states. These metastable features are highly sensitive to pore geometry and thermodynamic conditions, especially near the adsorbate’s triple point. In contrast, water adsorption displays more complex behavior: strong hydrogen bonding induces stable clusters, multiple free energy minima, and exceptionally slow equilibration. These features often escape conventional simulations. Our results underscore the importance of metastability in accurately modeling and designing advanced nanoporous materials for practical applications.
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Adsorption Mechanism in Crystalline Micropores: Multimodal Fluctuations, Metastability and Phase Transformations in Nanoconfinement — 科研速览 Science Skim