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      Deciphering the controlling factors for phase transitions in zeolitic imidazolate frameworks

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          ABSTRACT

          Zeolitic imidazolate frameworks (ZIFs) feature complex phase transitions, including polymorphism, melting, vitrification, and polyamorphism. Experimentally probing their structural evolution during transitions involving amorphous phases is a significant challenge, especially at the medium-range length scale. To overcome this challenge, here we first train a deep learning-based force field to identify the structural characteristics of both crystalline and non-crystalline ZIF phases. This allows us to reproduce the structural evolution trend during the melting of crystals and formation of ZIF glasses at various length scales with an accuracy comparable to that of ab initio molecular dynamics, yet at a much lower computational cost. Based on this approach, we propose a new structural descriptor, namely, the ring orientation index, to capture the propensity for crystallization of ZIF-4 (Zn(Im) 2, Im = C 3H 3N 2 ) glasses, as well as for the formation of ZIF-zni (Zn(Im) 2) out of the high-density amorphous phase. This crystal formation process is a result of the reorientation of imidazole rings by sacrificing the order of the structure around the zinc-centered tetrahedra. The outcomes of this work are useful for studying phase transitions in other metal-organic frameworks (MOFs) and may thus guide the development of MOF glasses.

          Abstract

          A new structural descriptor, the ring orientation index, is proposed as a governing factor for phase transitions in zeolitic imidazolate frameworks (ZIFs), facilitating the design of ZIF glasses for various applications.

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          LAMMPS - a flexible simulation tool for particle-based materials modeling at the atomic, meso, and continuum scales

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            Flexible metal-organic frameworks.

            Advances in flexible and functional metal-organic frameworks (MOFs), also called soft porous crystals, are reviewed by covering the literature of the five years period 2009-2013 with reference to the early pertinent work since the late 1990s. Flexible MOFs combine the crystalline order of the underlying coordination network with cooperative structural transformability. These materials can respond to physical and chemical stimuli of various kinds in a tunable fashion by molecular design, which does not exist for other known solid-state materials. Among the fascinating properties are so-called breathing and swelling phenomena as a function of host-guest interactions. Phase transitions are triggered by guest adsorption/desorption, photochemical, thermal, and mechanical stimuli. Other important flexible properties of MOFs, such as linker rotation and sub-net sliding, which are not necessarily accompanied by crystallographic phase transitions, are briefly mentioned as well. Emphasis is given on reviewing the recent progress in application of in situ characterization techniques and the results of theoretical approaches to characterize and understand the breathing mechanisms and phase transitions. The flexible MOF systems, which are discussed, are categorized by the type of metal-nodes involved and how their coordination chemistry with the linker molecules controls the framework dynamics. Aspects of tailoring the flexible and responsive properties by the mixed component solid-solution concept are included, and as well examples of possible applications of flexible metal-organic frameworks for separation, catalysis, sensing, and biomedicine.
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              Algorithms and tools for high-throughput geometry-based analysis of crystalline porous materials

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                Author and article information

                Contributors
                Journal
                Natl Sci Rev
                Natl Sci Rev
                nsr
                National Science Review
                Oxford University Press
                2095-5138
                2053-714X
                April 2024
                13 January 2024
                13 January 2024
                : 11
                : 4
                : nwae023
                Affiliations
                Department of Chemistry and Bioscience, Aalborg University , Aalborg 9220, Denmark
                Department of Mechanical Engineering-Engineering Mechanics, Michigan Technological University , Houghton MI 49931, USA
                Department of Chemistry and Bioscience, Aalborg University , Aalborg 9220, Denmark
                Physics of AmoRphous and Inorganic Solids Laboratory (PARISlab), Department of Civil and Environmental Engineering, University of California, Los Angeles , Los Angeles, CA 90095, USA
                Department of Chemistry and Bioscience, Aalborg University , Aalborg 9220, Denmark
                Department of Chemistry and Bioscience, Aalborg University , Aalborg 9220, Denmark
                Author notes
                Corresponding author. E-mail: mos@ 123456bio.aau.dk
                Author information
                https://orcid.org/0000-0002-6048-5236
                https://orcid.org/0000-0003-0476-2021
                Article
                nwae023
                10.1093/nsr/nwae023
                10980346
                38560493
                27f60ec0-b93c-481a-b871-6c8644d48308
                © The Author(s) 2024. Published by Oxford University Press on behalf of China Science Publishing & Media Ltd.

                This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( https://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.

                History
                : 04 September 2023
                : 04 January 2024
                : 08 January 2024
                : 29 March 2024
                Page count
                Pages: 13
                Funding
                Funded by: H2020 Marie Skłodowska-Curie Actions, DOI 10.13039/100010665;
                Award ID: 101018156
                Funded by: ERC, DOI 10.13039/100010663;
                Award ID: 101044664
                Funded by: National Science Foundation, DOI 10.13039/100000001;
                Award ID: DMR-1944510
                Categories
                Research Article
                Materials Science
                Nsr/4
                AcademicSubjects/MED00010
                AcademicSubjects/SCI00010

                metal-organic frameworks,phase transitions,melting,glass formation,transferable deep learning force field,ring orientation

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