An extensive comparative analysis of two MOF databases: high-throughput screening of computation-ready MOFs for CH4 and H2 adsorption

被引:95
作者
Altintas, Cigdem [1 ]
Avci, Gokay [1 ]
Daglar, Hilal [1 ]
Azar, Ayda Nemati Vesali [1 ]
Erucar, Ilknur [2 ]
Velioglu, Sadiye [1 ]
Keskin, Seda [1 ]
机构
[1] Koc Univ, Dept Chem & Biol Engn, Rumelifeneri Yolu, TR-34450 Istanbul, Turkey
[2] Ozyegin Univ, Fac Engn, Dept Nat & Math Sci, TR-34794 Istanbul, Turkey
基金
欧洲研究理事会;
关键词
METAL-ORGANIC FRAMEWORKS; CRYSTAL-STRUCTURE; 3D FRAMEWORK; DESIGN; SIMULATIONS; FLEXIBILITY; GAS;
D O I
10.1039/c9ta01378d
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Computation-ready metal-organic framework (MOF) databases (DBs) have tremendous value since they provide directly useable crystal structures for molecular simulations. The currently available two DBs, the CoRE DB (computation-ready, experimental MOF database) and CSDSS DB (Cambridge Structural Database non-disordered MOF subset) have been widely used in high-throughput molecular simulations. These DBs were constructed using different methods for collecting MOFs, removing bound and unbound solvents, treating charge balancing ions, missing hydrogens and disordered atoms of MOFs. As a result of these methodological differences, some MOFs were reported under the same name but with different structural features in the two DBs. In this work, we first identified 3490 common MOFs of CoRE and CSDSS DBs and then performed molecular simulations to compute their CH4 and H-2 uptakes. We found that 387 MOFs result in different gas uptakes depending on from which DB their structures were taken and we identified them as problematic' MOFs. CH4/H-2 mixture adsorption simulations showed that adsorbent performances of problematic MOFs, such as selectivity and regenerability, also significantly change depending on the DB used and lead to large variations in the ranking of materials and identification of the top MOFs. Possible reasons of different structure modifications made by the two DBs were investigated in detail for problematic MOFs. We described five main cases to categorize the problematic MOFs and discussed what types of different modifications were performed by the two DBs in terms of removal of unbound and bound solvents, treatment of missing hydrogen atoms, charge balancing ions etc. with several examples in each case. With this categorization, we aimed to direct researchers to computation-ready MOFs that are the most consistent with their experimentally reported structures. We also provided the new computation-ready structures for 54 MOFs for which the correct structures were missing in both DBs. This extensive comparative analysis of the two DBs will clearly show how and why the DBs differently modified the same MOFs and guide the users to choose either of the computation-ready MOFs from the two DBs depending on their purpose of molecular simulations.
引用
收藏
页码:9593 / 9608
页数:16
相关论文
共 48 条
[31]   Metal-Organic Frameworks: A Rapidly Growing Class of Versatile Nanoporous Materials [J].
Meek, Scott T. ;
Greathouse, Jeffery A. ;
Allendorf, Mark D. .
ADVANCED MATERIALS, 2011, 23 (02) :249-267
[32]   Development of a Cambridge Structural Database Subset: A Collection of Metal-Organic Frameworks for Past, Present, and Future [J].
Moghadam, Peyman Z. ;
Li, Aurelia ;
Wiggin, Seth B. ;
Tao, Andi ;
Maloney, Andrew G. P. ;
Wood, Peter A. ;
Ward, Suzanna C. ;
Fairen-Jimenez, David .
CHEMISTRY OF MATERIALS, 2017, 29 (07) :2618-2625
[33]   High-throughput computational screening of metal-organic framework membranes for upgrading of natural gas [J].
Qiao, Zhiwei ;
Xu, Qisong ;
Jiang, Jianwen .
JOURNAL OF MEMBRANE SCIENCE, 2018, 551 :47-54
[34]   In silico screening of 4764 computation-ready, experimental metal-organic frameworks for CO2 separation [J].
Qiao, Zhiwei ;
Zhang, Kang ;
Jiang, Jianwen .
JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (06) :2105-2114
[35]   UFF, A FULL PERIODIC-TABLE FORCE-FIELD FOR MOLECULAR MECHANICS AND MOLECULAR-DYNAMICS SIMULATIONS [J].
RAPPE, AK ;
CASEWIT, CJ ;
COLWELL, KS ;
GODDARD, WA ;
SKIFF, WM .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1992, 114 (25) :10024-10035
[36]   CHARGE EQUILIBRATION FOR MOLECULAR-DYNAMICS SIMULATIONS [J].
RAPPE, AK ;
GODDARD, WA .
JOURNAL OF PHYSICAL CHEMISTRY, 1991, 95 (08) :3358-3363
[37]   Biobutanol Separation with the Metal-Organic Framework ZIF-8 [J].
Saint Remi, Julien Cousin ;
Remy, Tom ;
Van Hunskerken, Vincent ;
van de Perre, Stijn ;
Duerinck, Tim ;
Maes, Michael ;
De Vos, Dirk ;
Gobechiya, Elena ;
Kirschhock, Christine E. A. ;
Baron, Gino V. ;
Denayer, Joeri F. M. .
CHEMSUSCHEM, 2011, 4 (08) :1074-1077
[38]   Synthesis of a honeycomb-like Cu-based metal-organic framework and its carbon dioxide adsorption behaviour [J].
Sanz, Raul ;
Martinez, Fernando ;
Orcajo, Gisela ;
Wojtas, Lukasz ;
Briones, David .
DALTON TRANSACTIONS, 2013, 42 (07) :2392-2398
[39]   Multivariable linear models of structural parameters to predict methane uptake in metal-organic frameworks [J].
Sezginel, Kutay Berk ;
Uzun, Alper ;
Keskin, Seda .
CHEMICAL ENGINEERING SCIENCE, 2015, 124 :125-134
[40]   The materials genome in action: identifying the performance limits for methane storage [J].
Simon, Cory M. ;
Kim, Jihan ;
Gomez-Gualdron, Diego A. ;
Camp, Jeffrey S. ;
Chung, Yongchul G. ;
Martin, Richard L. ;
Mercado, Rocio ;
Deem, Michael W. ;
Gunter, Dan ;
Haranczyk, Maciej ;
Sholl, David S. ;
Snurr, Randall Q. ;
Smit, Berend .
ENERGY & ENVIRONMENTAL SCIENCE, 2015, 8 (04) :1190-1199