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 74 checked references that resolve
resolves10.1039/b802426jSelective gas adsorption and separation in metal–organic frameworks
resolves10.1021/ja907556qCo-adsorption and Separation of CO<sub>2</sub>−CH<sub>4</sub> Mixtures in the Highly Flexible MIL-53(Cr) MOF
resolves10.1039/b807083kEnantioselective catalysis with homochiral metal–organic frameworks
resolves10.1021/ja906198yPostsynthetic Modifications of Iron-Carboxylate Nanoscale Metal−Organic Frameworks for Imaging and Drug Delivery
resolves10.1038/nmat2608Porous metal–organic-framework nanoscale carriers as a potential platform for drug delivery and imaging
resolves10.1126/science.1067208Systematic Design of Pore Size and Functionality in Isoreticular MOFs and Their Application in Methane Storage
resolves10.1021/ic201219gNew Functionalized Flexible Al-MIL-53-X (X = -Cl, -Br, -CH<sub>3</sub>, -NO<sub>2</sub>, -(OH)<sub>2</sub>) Solids: Syntheses, Characterization, Sorption, and Breathing Behavior
resolves10.1021/jp406835nNew Functionalized Metal–Organic Frameworks MIL-47-X (X = −Cl, −Br, −CH<sub>3</sub>, −CF<sub>3</sub>, −OH, −OCH<sub>3</sub>): Synthesis, Characterization, and CO<sub>2</sub> Adsorption Properties
resolves10.1039/c3dt32288bEnhanced selectivity of CO2 over CH4 in sulphonate-, carboxylate- and iodo-functionalized UiO-66 frameworks
resolves10.1002/ejic.201201228A General Strategy for the Synthesis of Functionalised UiO‐66 Frameworks: Characterisation, Stability and CO<sub>2</sub> Adsorption Properties
resolves10.1021/ja9092715Functionalization in Flexible Porous Solids: Effects on the Pore Opening and the Host−Guest Interactions
resolves10.1039/C0CS00031KPostsynthetic modification of metal–organic frameworks—a progress report
resolves10.1021/ja0775265Fluorous Metal−Organic Frameworks for High-Density Gas Adsorption
resolves10.1039/B715481JCoordination pillared-layer type compounds having pore surface functionalization by anionic sulfonate groups
resolves10.1021/ja055528oA Metal−Organic Framework Functionalized with Free Carboxylic Acid Sites and Its Selective Binding of a Cl(H<sub>2</sub>O)<sub>4</sub><sup>-</sup> Cluster
resolves10.1021/ja305267mTuning the Adsorption Properties of Isoreticular Pyrazolate-Based Metal–Organic Frameworks through Ligand Modification
resolves10.1021/ja063506bThe Interaction of Water with MOF-5 Simulated by Molecular Dynamics
resolves10.1021/la702466dGas Adsorption and Storage in Metal−Organic Framework MOF-177
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/c1cc11752aTuning the moisture stability of metal–organic frameworks by incorporating hydrophobic functional groups at different positions of ligands
resolves10.1039/c0cc01170cEnhancing the stability of metal–organic frameworks in humid air by incorporating water repellent functional groups
resolves10.1039/c3cp44204gPartially fluorinated MIL-47 and Al-MIL-53 frameworks: influence of functionalization on sorption and breathing properties
resolves10.1002/chem.200305413A Rationale for the Large Breathing of the Porous Aluminum Terephthalate (MIL‐53) Upon Hydration
resolves10.1021/cm103644bSynthesis and Characterization of an Amino Functionalized MIL-101(Al): Separation and Catalytic Properties
resolves10.1126/science.1116275A Chromium Terephthalate-Based Solid with Unusually Large Pore Volumes and Surface Area
resolves10.1021/ja903726mA New Photoactive Crystalline Highly Porous Titanium(IV) Dicarboxylate
resolves10.1021/ja8057953A New Zirconium Inorganic Building Brick Forming Metal Organic Frameworks with Exceptional Stability
resolves10.1016/j.jcat.2009.11.011Building MOF bottles around phosphotungstic acid ships: One-pot synthesis of bi-functional polyoxometalate-MIL-101 catalysts
resolves10.1021/ic4005328Single- and Mixed-Linker Cr-MIL-101 Derivatives: A High-Throughput Investigation
resolves10.1039/C4CC03746DSulfonyl chlorides as an efficient tool for the postsynthetic modification of Cr-MIL-101-SO
<sub>3</sub>
H and CAU-1-NH
<sub>2</sub>
resolves10.1021/jp5050628Interplay of Linker Functionalization and Hydrogen Adsorption in the Metal–Organic Framework MIL-101
resolves10.1039/c0cc04526hDirect covalent post-synthetic chemical modification of Cr-MIL-101 using nitrating acid
resolves10.1039/c2cc36344eSynthesis and post-synthetic modification of MIL-101(Cr)-NH2via a tandem diazotisation process
resolves10.1039/c3cy00272aTowards acid MOFs – catalytic performance of sulfonic acid functionalized architectures
resolves10.1002/adma.201101356Cellulose Hydrolysis by a New Porous Coordination Polymer Decorated with Sulfonic Acid Functional Groups
resolves10.1021/ie403549vSynthesis and Characterization of Phosphine-Functionalized Metal–Organic Frameworks Based on MOF-5 and MIL-101 Topologies
resolves10.1039/c2ce06594kChloromethylation as a functionalisation pathway for metal–organic frameworks
resolves10.1039/C2CC37045JA novel route for preparing highly proton conductive membrane materials with metal-organic frameworks
resolves10.1039/c4cc02175dExtended and functionalized porous iron(iii) tri- or dicarboxylates with MIL-100/101 topologies
resolves10.1002/ejic.201200106Vanadium Analogues of Nonfunctionalized and Amino‐Functionalized MOFs with MIL‐101 Topology – Synthesis, Characterization, and Gas Sorption Properties
resolves10.1021/cg4012058Framework Isomerism in Vanadium Metal–Organic Frameworks: MIL-88B(V) and MIL-101(V)
resolves10.1039/c2cc36678aTandem catalysis with a bifunctional site-isolated Lewis acid–Brønsted base metal–organic framework, NH2-MIL-101(Al)
resolves10.1016/j.synthmet.2009.05.001Synthesis and properties of polyacetylenes containing bis(4-alkylphenyl)terephthalate as pendant and methyleneoxy as spacer
resolves10.1039/C1JM14791AZinc-1,4-benzenedicarboxylate-bipyridine frameworks – linker functionalization impacts network topology during solvothermal synthesis
resolves10.1002/anie.200901409[Al<sub>4</sub>(OH)<sub>2</sub>(OCH<sub>3</sub>)<sub>4</sub>(H<sub>2</sub>N‐bdc)<sub>3</sub>]⋅<i>x</i> H<sub>2</sub>O: A 12‐Connected Porous Metal–Organic Framework with an Unprecedented Aluminum‐Containing Brick
resolves10.1002/ejic.200901064Effect of Water Concentration and Acidity on the Synthesis of Porous Chromium Benzenedicarboxylates
resolves10.1002/anie.201101757Kinetic Control of Metal–Organic Framework Crystallization Investigated by Time‐Resolved In Situ X‐Ray Scattering
resolves10.1021/cr200304eSynthesis of Metal-Organic Frameworks (MOFs): Routes to Various MOF Topologies, Morphologies, and Composites
resolves10.1021/ic800538rHigh-Throughput Assisted Rationalization of the Formation of Metal Organic Frameworks in the Iron(III) Aminoterephthalate Solvothermal System
resolves10.1021/ja0276974Very Large Breathing Effect in the First Nanoporous Chromium(III)-Based Solids: MIL-53 or Cr<sup>III</sup>(OH)·{O<sub>2</sub>C−C<sub>6</sub>H<sub>4</sub>−CO<sub>2</sub>}·{HO<sub>2</sub>C−C<sub>6</sub>H<sub>4</sub>−CO<sub>2</sub>H}<i><sub>x</sub></i>·H<sub>2</sub>O<i><sub>y</sub></i>
resolves10.1002/chem.201404654Enhancing the Water Stability of Al‐MIL‐101‐NH<sub>2</sub> via Postsynthetic Modification
resolves10.1021/jp206513vMonitoring the Activation Process of the Giant Pore MIL-100(Al) by Solid State NMR
resolves10.1021/cg4009224Tuning the Moisture and Thermal Stability of Metal–Organic Frameworks through Incorporation of Pendant Hydrophobic Groups
resolves10.1002/adfm.200801130Porous Chromium Terephthalate MIL‐101 with Coordinatively Unsaturated Sites: Surface Functionalization, Encapsulation, Sorption and Catalysis
resolves10.1039/c0jm04526hImplementing chemical functionality into oriented films of metal–organic frameworks on self-assembled monolayers
resolves10.1021/ja206936eHow Linker’s Modification Controls Swelling Properties of Highly Flexible Iron(III) Dicarboxylates MIL-88
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