Phototriggered Desorption of Hydrogen, Ethylene, and Carbon Monoxide from a Cu(I)-Modified Covalent Organic Framework
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Derek R. Vardon | Justin C. Johnson | T. Gennett | Shubham Vyas | W. Braunecker | S. Pylypenko | Rachel E. Mow | M. Dzara | Lucy Metzroth | Glory A. Russell-Parks | Lucy J T Metzroth | Michael J. Dzara
[1] L. Daemen,et al. Influence of Metal Identity on Light-Induced Switchable Adsorption in Azobenzene-Based Metal-Organic Frameworks. , 2022, ACS applied materials & interfaces.
[2] M. Valant,et al. Covalent Organic Polymers and Frameworks for Fluorescence-Based Sensors , 2021, ACS sensors.
[3] Zhongyi Jiang,et al. Multifunctional covalent organic framework (COF)-Based mixed matrix membranes for enhanced CO2 separation , 2021 .
[4] Craig M. Brown,et al. Observation of an Intermediate to H2 Binding in a Metal-Organic Framework. , 2020, Journal of the American Chemical Society.
[5] Xiangjian Wan,et al. A solution-processed nanoscale COF-like material towards optoelectronic applications , 2020, Science China Chemistry.
[6] J. Caro,et al. Solution processable metal–organic frameworks for mixed matrix membranes using porous liquids , 2020, Nature Materials.
[7] Yanli Zhao,et al. Recent Advances in Covalent Organic Framework-Based Nanosystems for Bioimaging and Therapeutic Applications , 2020, ACS Materials Letters.
[8] S. Qiu,et al. Covalent Organic Frameworks for Catalysis , 2020, EnergyChem.
[9] Bao-hang Han,et al. Three-dimensional Covalent Organic Frameworks as Host Materials for Lithium-Sulfur Batteries , 2020, Chinese Journal of Polymer Science.
[10] Justin C. Johnson,et al. Thermal Activation of a Copper-Loaded Covalent Organic Framework for Near-Ambient Temperature Hydrogen Storage and Delivery , 2020 .
[11] Libo Li,et al. Boosting Ethylene/Ethane Separation within Copper(I)‐Chelated Metal–Organic Frameworks through Tailor‐Made Aperture and Specific π‐Complexation , 2019, Advanced science.
[12] A. Lipton,et al. Colloidal three-dimensional covalent organic frameworks and their application as porous liquids , 2020 .
[13] Yahui Yang,et al. Fundamental Insights into the Reactivity and Utilization of Open Metal Sites in Cu(I)-MFU-4l , 2019, Organometallics.
[14] Linbing Sun,et al. Metal-Organic Frameworks with Target-Specific Active Sites Switched by Photoresponsive Motifs: Efficient Adsorbents for Tailorable CO2 Capture. , 2019, Angewandte Chemie.
[15] Bao-hang Han,et al. Structural and Dimensional Transformations between Covalent Organic Frameworks via Linker Exchange , 2019, Macromolecules.
[16] M. Kunitski,et al. Double-slit photoelectron interference in strong-field ionization of the neon dimer , 2018, Nature Communications.
[17] M. Yue,et al. Controlled Construction of Cu(I) Sites within Confined Spaces via Host-Guest Redox: Highly Efficient Adsorbents for Selective CO Adsorption. , 2018, ACS applied materials & interfaces.
[18] M. Valášek,et al. Series of Photoswitchable Azobenzene-Containing Metal–Organic Frameworks with Variable Adsorption Switching Effect , 2018, The Journal of Physical Chemistry C.
[19] Jie Su,et al. Single-crystal x-ray diffraction structures of covalent organic frameworks , 2018, Science.
[20] Justin C. Johnson,et al. Phenyl/Perfluorophenyl Stacking Interactions Enhance Structural Order in Two-Dimensional Covalent Organic Frameworks , 2018, Crystal Growth & Design.
[21] I. Imaz,et al. Photothermal Activation of Metal-Organic Frameworks Using a UV-Vis Light Source. , 2018, ACS applied materials & interfaces.
[22] C. Ochsenfeld,et al. Single-Site Photocatalytic H2 Evolution from Covalent Organic Frameworks with Molecular Cobaloxime Co-Catalysts , 2017, Journal of the American Chemical Society.
[23] Yue‐Biao Zhang,et al. Crystallization of Covalent Organic Frameworks for Gas Storage Applications , 2017, Molecules.
[24] Ligong Chen,et al. Two-Dimensional Imine-Linked Covalent Organic Frameworks as a Platform for Selective Oxidation of Olefins. , 2017, ACS applied materials & interfaces.
[25] Ying‐Wei Yang,et al. Applications of covalent organic frameworks (COFs): From gas storage and separation to drug delivery , 2017 .
[26] J. Caro,et al. Switching Thin Films of Azobenzene-Containing Metal-Organic Frameworks with Visible Light. , 2017, Chemistry.
[27] M. Hirscher,et al. Capture of heavy hydrogen isotopes in a metal-organic framework with active Cu(I) sites , 2017, Nature Communications.
[28] Liyan You. Investigation of Electrochemical Property and Crystal Structure of Schiff Base Cobalt(III) Complex , 2017 .
[29] A. Bhardwaj,et al. In situ click chemistry generation of cyclooxygenase-2 inhibitors , 2017, Nature Communications.
[30] Jose L. Mendoza-Cortes,et al. Design Principles for High H2 Storage Using Chelation of Abundant Transition Metals in Covalent Organic Frameworks for 0-700 bar at 298 K. , 2016, Journal of the American Chemical Society.
[31] Barbara K. Hughes,et al. Covalently Bound Nitroxyl Radicals in an Organic Framework. , 2016, The journal of physical chemistry letters.
[32] Matthias Zeller,et al. Mechanized azobenzene-functionalized zirconium metal-organic framework for on-command cargo release , 2016, Science Advances.
[33] M. Dahari,et al. A review on the current progress of metal hydrides material for solid-state hydrogen storage applications , 2016 .
[34] R. Rousseau,et al. Light Makes a Surface Banana-Bond Split: Photodesorption of Molecular Hydrogen from RuO2(110). , 2016, Journal of the American Chemical Society.
[35] Ryan P. Lively,et al. Seven chemical separations to change the world , 2016, Nature.
[36] Guiqing Lin,et al. A Pyrene-Based, Fluorescent Three-Dimensional Covalent Organic Framework. , 2016, Journal of the American Chemical Society.
[37] Yi Cui,et al. The path towards sustainable energy. , 2016, Nature materials.
[38] D. Jiang,et al. Stable, crystalline, porous, covalent organic frameworks as a platform for chiral organocatalysts. , 2015, Nature chemistry.
[39] P. Yang,et al. Covalent organic frameworks comprising cobalt porphyrins for catalytic CO2 reduction in water , 2015, Science.
[40] Yushan Yan,et al. 3D Porous Crystalline Polyimide Covalent Organic Frameworks for Drug Delivery. , 2015, Journal of the American Chemical Society.
[41] Haihui Wang,et al. A supported Cu(I)@MIL-100(Fe) adsorbent with high CO adsorption capacity and CO/N2 selectivity , 2015 .
[42] R. Banerjee,et al. Self-templated chemically stable hollow spherical covalent organic framework , 2015, Nature Communications.
[43] Martin Head-Gordon,et al. M2(m-dobdc) (M = Mg, Mn, Fe, Co, Ni) metal-organic frameworks exhibiting increased charge density and enhanced H2 binding at the open metal sites. , 2014, Journal of the American Chemical Society.
[44] Stefan Grimme,et al. A simplified time-dependent density functional theory approach for electronic ultraviolet and circular dichroism spectra of very large molecules , 2014 .
[45] Maciej Grzywa,et al. Scorpionate-type coordination in MFU-4l metal-organic frameworks: small-molecule binding and activation upon the thermally activated formation of open metal sites. , 2014, Angewandte Chemie.
[46] Craig M. Brown,et al. Design of a metal-organic framework with enhanced back bonding for separation of N₂ and CH₄. , 2014, Journal of the American Chemical Society.
[47] Bryana L. Henderson,et al. Photophysical pore control in an azobenzene-containing metal–organic framework , 2013 .
[48] Jose L. Mendoza-Cortes,et al. A Covalent Organic Framework that Exceeds the DOE 2015 Volumetric Target for H2 Uptake at 298 K. , 2012, The journal of physical chemistry letters.
[49] Jinhee Park,et al. Reversible alteration of CO2 adsorption upon photochemical or thermal treatment in a metal-organic framework. , 2012, Journal of the American Chemical Society.
[50] M. P. Suh,et al. Hydrogen storage in metal-organic frameworks. , 2012, Chemical reviews.
[51] Yuan Zhang,et al. Construction of covalent organic framework for catalysis: Pd/COF-LZU1 in Suzuki-Miyaura coupling reaction. , 2011, Journal of the American Chemical Society.
[52] A. White,et al. Binding and photodissociation of CO in iron(II) complexes for application in positron emission tomography (PET) radiolabelling. , 2011, Dalton transactions.
[53] J. Wilcox,et al. DFT Studies on the Interaction of Defective Graphene-Supported Fe and Al Nanoparticles , 2011 .
[54] Andrea R. Gerson,et al. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Sc, Ti, V, Cu and Zn , 2010 .
[55] H. V. Rasika Dias,et al. Carbon monoxide and ethylene complexes of copper and silver supported by a highly fluorinated tris(triazolyl)borate. , 2009, Dalton transactions.
[56] Omar M Yaghi,et al. Storage of hydrogen, methane, and carbon dioxide in highly porous covalent organic frameworks for clean energy applications. , 2009, Journal of the American Chemical Society.
[57] Wei Zhou,et al. High-capacity methane storage in metal-organic frameworks M2(dhtp): the important role of open metal sites. , 2009, Journal of the American Chemical Society.
[58] J. Long,et al. Hydrogen storage in microporous metal-organic frameworks with exposed metal sites. , 2008, Angewandte Chemie.
[59] Sang Soo Han,et al. Covalent organic frameworks as exceptional hydrogen storage materials. , 2008, Journal of the American Chemical Society.
[60] E. Klontzas,et al. Hydrogen Storage in 3D Covalent Organic Frameworks. A Multiscale Theoretical Investigation , 2008 .
[61] Michael O'Keeffe,et al. Designed Synthesis of 3D Covalent Organic Frameworks , 2007, Science.
[62] Jacopo Tomasi,et al. Geometries and properties of excited states in the gas phase and in solution: theory and application of a time-dependent density functional theory polarizable continuum model. , 2006, The Journal of chemical physics.
[63] Michael O'Keeffe,et al. Porous, Crystalline, Covalent Organic Frameworks , 2005, Science.
[64] K. Matyjaszewski,et al. Towards understanding monomer coordination in atom transfer radical polymerization: synthesis of [CuI(PMDETA)(π-M)][BPh4] (M = methyl acrylate, styrene, 1-octene, and methyl methacrylate) and structural studies by FT-IR and 1H NMR spectroscopy and X-ray crystallography , 2005 .
[65] Banglin Chen,et al. High H2 adsorption in a microporous metal-organic framework with open metal sites. , 2005, Angewandte Chemie.
[66] Michael O'Keeffe,et al. Reticular synthesis and the design of new materials , 2003, Nature.
[67] Filipp Furche,et al. Adiabatic time-dependent density functional methods for excited state properties , 2002 .
[68] G. Rauhut,et al. FTIR measurements and quantum chemical calculations of ethylene adsorbed on CuNaY , 2002 .
[69] K. Karlin,et al. Reversible carbon monoxide photodissociation from Cu(I) coordination compounds. , 2001, Inorganic chemistry.
[70] S. Strauss. Copper(I) and silver(I) carbonyls. To be or not to be nonclassical , 2000 .
[71] Tomiki Ikeda,et al. Optical Switching and Image Storage by Means of Azobenzene Liquid-Crystal Films , 1995, Science.
[72] R. Ahlrichs,et al. [Cu(η2‐H2)Cl], a Model Compound for H2 Complexes. Ab Initio Calculations and Identification by IR Spectroscopy , 1991 .
[73] J. Kovacic. The CN stretching frequency in the infrared spectra of Schiff's base complexes—I. Copper complexes of salicylidene anilines , 1967 .
[74] H. E. Kissinger. Reaction Kinetics in Differential Thermal Analysis , 1957 .
[75] H. E. Kissinger. Variation of Peak Temperature With Heating Rate in Differential Thermal Analysis , 1956 .
[76] G. Hartley,et al. The Cis-form of Azobenzene , 1937, Nature.