Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 84 checked references that resolve
resolves10.1038/nmat2608Porous metal–organic-framework nanoscale carriers as a potential platform for drug delivery and imaging
resolves10.1039/C0CS00130ALuminescent multifunctional lanthanides-based metal–organic frameworks
resolves10.1002/anie.201006913Hydrogen Storage by Cryoadsorption in Ultrahigh‐Porosity Metal–Organic Frameworks
resolves10.1039/c1ee01240aThe current status of hydrogen storage in metal–organic frameworks—updated
resolves10.1039/b802430hRecent advances on simulation and theory of hydrogen storage in metal–organic frameworks and covalent organic frameworks
resolves10.1021/ja0771639Metal-Organic Framework from an Anthracene Derivative Containing Nanoscopic Cages Exhibiting High Methane Uptake
resolves10.1021/ja900258tHigh-Capacity Methane Storage in Metal−Organic Frameworks M<sub>2</sub>(dhtp): The Important Role of Open Metal Sites
resolves10.1002/anie.201007583A Metal–Organic Framework with Optimized Open Metal Sites and Pore Spaces for High Methane Storage at Room Temperature
resolves10.1038/nchem.834De novo synthesis of a metal–organic framework material featuring ultrahigh surface area and gas storage capacities
resolves10.1126/science.1067208Systematic Design of Pore Size and Functionality in Isoreticular MOFs and Their Application in Methane Storage
resolves10.1021/ic060437tHydrogen Adsorption in an Interpenetrated Dynamic Metal−Organic Framework
resolves10.1021/ic0616434Rationally Designed Micropores within a Metal−Organic Framework for Selective Sorption of Gas Molecules
resolves10.1038/nature02311A route to high surface area, porosity and inclusion of large molecules in crystals
resolves10.1126/science.1116275A Chromium Terephthalate-Based Solid with Unusually Large Pore Volumes and Surface Area
resolves10.1021/ja0392871Microporous Metal Organic Materials: Promising Candidates as Sorbents for Hydrogen Storage
resolves10.1002/anie.200462787High H
<sub>2</sub>
Adsorption in a Microporous Metal–Organic Framework with Open Metal Sites
resolves10.1021/ja063538zA Metal−Organic Framework with Entatic Metal Centers Exhibiting High Gas Adsorption Affinity
resolves10.1021/ar100023yMetal−Organic Frameworks with Functional Pores for Recognition of Small Molecules
resolves10.1021/ja066616rA Mesoporous Metal−Organic Framework with Permanent Porosity
resolves10.1021/ar0401606Design, Chirality, and Flexibility in Nanoporous Molecule-Based Materials
resolves10.1039/b808322nThe current status of hydrogen storage in metal–organic frameworks
resolves10.1021/jp060433+Effects of Surface Area, Free Volume, and Heat of Adsorption on Hydrogen Uptake in Metal−Organic Frameworks
resolves10.1021/ic701917wExpanded Sodalite-Type Metal−Organic Frameworks: Increased Stability and H<sub>2</sub> Adsorption through Ligand-Directed Catenation
resolves10.1021/ja302623wDesigning Higher Surface Area Metal–Organic Frameworks: Are Triple Bonds Better Than Phenyls?
resolves10.1021/ja3055639Metal–Organic Framework Materials with Ultrahigh Surface Areas: Is the Sky the Limit?
resolves10.1021/ja801411fHydrogen Adsorption in a Highly Stable Porous Rare-Earth Metal-Organic Framework: Sorption Properties and Neutron Diffraction Studies
resolves10.1021/cg8001114Structure, Hydrogen Storage, and Luminescence Properties of Three 3D Metal−Organic Frameworks with NbO and PtS Topologies
resolves10.1002/anie.200801488A Comparison of the H<sub>2</sub> Sorption Capacities of Isostructural Metal–Organic Frameworks With and Without Accessible Metal Sites: [{Zn<sub>2</sub>(abtc)(dmf)<sub>2</sub>}<sub>3</sub>] and [{Cu<sub>2</sub>(abtc)(dmf)<sub>2</sub>}<sub>3</sub>] versus [{Cu<sub>2</sub>(abtc)}<sub>3</sub>]
resolves10.1002/anie.200802087Enhancing H<sub>2</sub> Uptake by “Close‐Packing” Alignment of Open Copper Sites in Metal–Organic Frameworks
resolves10.1021/cm800403dMetal−Organic Frameworks Based on Double-Bond-Coupled Di-Isophthalate Linkers with High Hydrogen and Methane Uptakes
resolves10.1021/ja806624jHigh Capacity Hydrogen Adsorption in Cu(II) Tetracarboxylate Framework Materials: The Role of Pore Size, Ligand Functionalization, and Exposed Metal Sites
resolves10.1039/c002767gA NbO-type metal–organic framework derived from a polyyne-coupled di-isophthalate linker formed in situ
resolves10.1002/chem.201002135High Gas Sorption and Metal‐Ion Exchange of Microporous Metal–Organic Frameworks with Incorporated Imide Groups
resolves10.1021/ja800439pTemperature Controlled Reversible Change of the Coordination Modes of the Highly Symmetrical Multitopic Ligand To Construct Coordination Assemblies: Experimental and Theoretical Studies
resolves10.1021/ja110042bEnhanced CO<sub>2</sub> Binding Affinity of a High-Uptake <i>rht</i>-Type Metal−Organic Framework Decorated with Acylamide Groups
resolves10.1039/c0cc04146gControlling the shifting degree of interpenetrated metal–organic frameworks by modulator and temperature and their hydrogen adsorption properties
resolves10.1039/c2cc16231hHighly selective CO2 capture of an agw-type metal–organic framework with inserted amides: experimental and theoretical studies
resolves10.1039/c2cc17593bHigh and selective CO2 capture by two mesoporous acylamide-functionalized rht-type metal–organic frameworks
resolves10.1021/ja076877gImpact of Preparation and Handling on the Hydrogen Storage Properties of Zn<sub>4</sub>O(1,4-benzenedicarboxylate)<sub>3</sub> (MOF-5)
resolves10.1039/b703608fIndependent verification of the saturation hydrogen uptake in MOF-177 and establishment of a benchmark for hydrogen adsorption in metal–organic frameworks
resolves10.1021/ja056639qEffects of Functionalization, Catenation, and Variation of the Metal Oxide and Organic Linking Units on the Low-Pressure Hydrogen Adsorption Properties of Metal−Organic Frameworks
resolves10.1039/b900013eExceptionally high H2 storage by a metal–organic polyhedral framework
resolves10.1039/b909250aLarge H2 storage capacity of a new polyhedron-based metal–organic framework with high thermal and hygroscopic stability
resolves10.1021/ja0656853Hydrogen Storage in a Microporous Metal−Organic Framework with Exposed Mn<sup>2+</sup> Coordination Sites
resolves10.1021/ja1001407Metal−Organic Polyhedral Frameworks: High H<sub>2</sub> Adsorption Capacities and Neutron Powder Diffraction Studies
resolves10.1039/c1cc13170bA mesoporous metal–organic framework constructed from a nanosized C3-symmetric linker and [Cu24(isophthalate)24] cuboctahedra
resolves10.1002/aic.10012Separation of CO<sub>2</sub>/N<sub>2</sub> mixtures using MFI‐type zeolite membranes
resolves10.1021/je0498917Adsorption Equilibrium of Methane, Carbon Dioxide, and Nitrogen on Zeolite 13X at High Pressures
resolves10.1021/ie061042kNonequilibrium Kinetic Model That Describes the Reversible Adsorption and Desorption Behavior of CO<sub>2</sub> in a K-Promoted Hydrotalcite-like Compound
resolves10.1002/anie.200906382Inside Cover: Sequential Logic Operations with Surface‐Confined Polypyridyl Complexes Displaying Molecular Random Access Memory Features (Angew. Chem. Int. Ed. 1/2010)
resolves10.1039/B916295JGas storage in porous metal–organic frameworks for clean energy applications
resolves10.1021/ja0570032Metal−Organic Frameworks with Exceptionally High Capacity for Storage of Carbon Dioxide at Room Temperature
resolves10.1021/la800369sMolecular Screening of Metal−Organic Frameworks for CO<sub>2</sub> Storage
resolves10.1038/ncomms1956Microporous metal-organic framework with potential for carbon dioxide capture at ambient conditions
resolves10.1039/c0sc00179aHydrogen storage and carbon dioxide capture in an iron-based sodalite-type metal–organic framework (Fe-BTT) discovered via high-throughput methods
resolves10.1021/ja909169xHigh and Selective CO<sub>2</sub> Uptake in a Cobalt Adeninate Metal−Organic Framework Exhibiting Pyrimidine- and Amino-Decorated Pores
resolves10.1021/ja809459eControl of Pore Size and Functionality in Isoreticular Zeolitic Imidazolate Frameworks and their Carbon Dioxide Selective Capture Properties
resolves10.1021/es9032309Adsorption of CO<sub>2</sub>, CH<sub>4</sub>, N<sub>2</sub>O, and N<sub>2</sub> on MOF-5, MOF-177, and Zeolite 5A
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