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 32 checked references that resolve
resolves10.1002/anie.200805980Giant Pores in a Chromium 2,6‐Naphthalenedicarboxylate Open‐Framework Structure with MIL‐101 Topology
resolves10.1039/C0CS00031KPostsynthetic modification of metal–organic frameworks—a progress report
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
resolves10.1039/C0CC03038DAn amino-modified Zr-terephthalate metal–organic framework as an acid–base catalyst for cross-aldol condensation
resolves10.1039/B704325BSynthesis and catalytic properties of MIL-100(Fe), an iron(
<scp>iii</scp>
) carboxylate with large pores
resolves10.1021/ja9088378Separation of C<sub>5</sub>-Hydrocarbons on Microporous Materials: Complementary Performance of MOFs and Zeolites
resolves10.1021/ja106142xSeparation of Styrene and Ethylbenzene on Metal−Organic Frameworks: Analogous Structures with Different Adsorption Mechanisms
resolves10.1038/nmat2608Porous metal–organic-framework nanoscale carriers as a potential platform for drug delivery and imaging
resolves10.1039/C2JM15615FMIL-100(Al, Fe) as water adsorbents for heat transformation purposes—a promising application
resolves10.1002/adma.201104084Energy‐Efficient Dehumidification over Hierachically Porous Metal–Organic Frameworks as Advanced Water Adsorbents
resolves10.1021/ja9092715Functionalization in Flexible Porous Solids: Effects on the Pore Opening and the Host−Guest Interactions
resolves10.1021/ja206936eHow Linker’s Modification Controls Swelling Properties of Highly Flexible Iron(III) Dicarboxylates MIL-88
resolves10.1039/c3dt32355bMixed-linker MOFs with CAU-10 structure: synthesis and gas sorption characteristics
resolves10.1021/cr200179uPostsynthetic Methods for the Functionalization of Metal–Organic Frameworks
resolves10.1039/c0cc04526hDirect covalent post-synthetic chemical modification of Cr-MIL-101 using nitrating acid
resolves10.1002/anie.201001527Generating Reactive MILs: Isocyanate‐ and Isothiocyanate‐Bearing MILs through Postsynthetic Modification
resolves10.1126/science.1116275A Chromium Terephthalate-Based Solid with Unusually Large Pore Volumes and Surface Area
resolves10.1039/c2ra20641bDirect synthesis of amine-functionalized MIL-101(Cr) nanoparticles and application for CO2 capture
resolves10.1002/ange.201101757Kinetic Control of Metal–Organic Framework Crystallization Investigated by Time‐Resolved In Situ X‐Ray Scattering
resolves10.1021/ic800538rHigh-Throughput Assisted Rationalization of the Formation of Metal Organic Frameworks in the Iron(III) Aminoterephthalate Solvothermal System
resolves10.1002/adma.201101356Cellulose Hydrolysis by a New Porous Coordination Polymer Decorated with Sulfonic Acid Functional Groups
resolves10.1039/c2dt30672gIntroducing a photo-switchable azo-functionality inside Cr-MIL-101-NH2 by covalent post-synthetic modification
resolves10.1039/c2cc36344eSynthesis and post-synthetic modification of MIL-101(Cr)-NH2via a tandem diazotisation process
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