Structural Effects in Visible-Light-Responsive Metal-Organic Frameworks Incorporating ortho-Fluoroazobenzenes.
暂无分享,去创建一个
Freek Kapteijn | Jorge Gascon | Sonia Castellanos | Fangli Zhao | Alexis Goulet-Hanssens | Stefan Hecht | F. Kapteijn | A. Dikhtiarenko | J. Gascón | S. Castellanos | Alexis Goulet-Hanssens | Fangli Zhao | Alexey Pustovarenko | S. Hecht | D. Bléger | Alla Dikhtiarenko | David Bléger | Alexey Pustovarenko | A. Pustovarenko | A. Goulet-Hanssens
[1] F. Kapteijn,et al. Adsorption-Driven Heat Pumps: The Potential of Metal-Organic Frameworks. , 2015, Chemical reviews.
[2] S. Hecht,et al. Aktivierung molekularer Schalter mit sichtbarem Licht , 2015 .
[3] S. Hecht,et al. Visible-Light-Activated Molecular Switches. , 2015, Angewandte Chemie.
[4] F. Grepioni,et al. Photoinduced reversible switching of porosity in molecular crystals based on star-shaped azobenzene tetramers. , 2015, Nature chemistry.
[5] Rainer Herges,et al. Photoswitching in nanoporous, crystalline solids: an experimental and theoretical study for azobenzene linkers incorporated in MOFs. , 2015, Physical chemistry chemical physics : PCCP.
[6] Yuanjing Cui,et al. Two-photon responsive metal-organic framework. , 2015, Journal of the American Chemical Society.
[7] F. Kapteijn,et al. Experimental Evidence of Negative Linear Compressibility in the MIL-53 Metal-Organic Framework Family. , 2015, CrystEngComm.
[8] Fangli Zhao,et al. ortho-Fluoroazobenzenes: visible light switches with very long-Lived Z isomers. , 2014, Chemistry.
[9] Wei Zhang,et al. Reversible tuning of pore size and CO2 adsorption in azobenzene functionalized porous organic polymers , 2014 .
[10] Vakayil K. Praveen,et al. Photoresponsive metal–organic materials: exploiting the azobenzene switch , 2014 .
[11] Carlo Lamberti,et al. Detailed Structure Analysis of Atomic Positions and Defects in Zirconium Metal‒Organic Frameworks , 2014 .
[12] Krista S. Walton,et al. Water stability and adsorption in metal-organic frameworks. , 2014, Chemical reviews.
[13] Mark D. Smith,et al. Energy transfer on demand: photoswitch-directed behavior of metal-porphyrin frameworks. , 2014, Journal of the American Chemical Society.
[14] Wenbin Lin,et al. Metal-organic frameworks for artificial photosynthesis and photocatalysis. , 2014, Chemical Society reviews.
[15] Dirk De Vos,et al. Adsorptive separation on metal-organic frameworks in the liquid phase. , 2014, Chemical Society reviews.
[16] M. Allendorf,et al. MOF-based electronic and opto-electronic devices. , 2014, Chemical Society reviews.
[17] J. Hupp,et al. Are Zr₆-based MOFs water stable? Linker hydrolysis vs. capillary-force-driven channel collapse. , 2014, Chemical communications.
[18] Hong‐Cai Zhou,et al. Azobenzene-functionalized metal-organic polyhedra for the optically responsive capture and release of guest molecules. , 2014, Angewandte Chemie.
[19] F. Kapteijn,et al. Metal–organic frameworks as heterogeneous photocatalysts: advantages and challenges , 2014 .
[20] V. Kišš,et al. Nanoporous frameworks exhibiting multiple stimuli responsiveness , 2014, Nature Communications.
[21] Stefan Hecht,et al. Remote-controlling chemical reactions by light: towards chemistry with high spatio-temporal resolution. , 2014, Chemical Society reviews.
[22] Jason B Benedict,et al. Photoresponsive porous materials: the design and synthesis of photochromic diarylethene-based linkers and a metal-organic framework. , 2014, Chemical communications.
[23] F. Kapteijn,et al. Metal Organic Framework Catalysis: Quo vadis? , 2014 .
[24] Rainer Herges,et al. Photoswitching in two-component surface-mounted metal-organic frameworks: optically triggered release from a molecular container. , 2014, ACS nano.
[25] K. Zhou,et al. Structure stability of metal-organic framework MIL-53 (Al) in aqueous solutions , 2013 .
[26] Michael J. Katz,et al. A facile synthesis of UiO-66, UiO-67 and their derivatives. , 2013, Chemical communications.
[27] O. Miljanić,et al. Superhydrophobic perfluorinated metal-organic frameworks. , 2013, Chemical communications.
[28] Bryana L. Henderson,et al. Photophysical pore control in an azobenzene-containing metal–organic framework , 2013 .
[29] Krista S. Walton,et al. Stability and degradation mechanisms of metal–organic frameworks containing the Zr6O4(OH)4 secondary building unit , 2013 .
[30] P. Voort,et al. A General Strategy for the Synthesis of Functionalised UiO‐66 Frameworks: Characterisation, Stability and CO2 Adsorption Properties , 2013 .
[31] M. Hill,et al. Dynamic photo-switching in metal-organic frameworks as a route to low-energy carbon dioxide capture and release. , 2013, Angewandte Chemie.
[32] C. Detavernier,et al. Partially fluorinated MIL-47 and Al-MIL-53 frameworks: influence of functionalization on sorption and breathing properties. , 2013, Physical chemistry chemical physics : PCCP.
[33] S. Hecht,et al. o-Fluoroazobenzenes as readily synthesized photoswitches offering nearly quantitative two-way isomerization with visible light. , 2012, Journal of the American Chemical Society.
[34] Christian Serre. Superhydrophobie in hoch fluorierten porösen Metall‐organischen Gerüsten , 2012 .
[35] C. Serre. Superhydrophobicity in highly fluorinated porous metal-organic frameworks. , 2012, Angewandte Chemie.
[36] F. Kapteijn,et al. High compressibility of a flexible metal–organic framework , 2012 .
[37] F. Kapteijn,et al. Adsorption and separation of light gases on an amino-functionalized metal-organic framework: an adsorption and in situ XRD study. , 2012, ChemSusChem.
[38] Masafumi Inoue,et al. Guest-to-host transmission of structural changes for stimuli-responsive adsorption property. , 2012, Journal of the American Chemical Society.
[39] Gérard Férey,et al. Metal-organic frameworks in biomedicine. , 2012, Chemical reviews.
[40] 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.
[41] Andrew A. Beharry,et al. Azobenzene photoswitching without ultraviolet light. , 2011, Journal of the American Chemical Society.
[42] V. Nesterov,et al. Fluorous metal-organic frameworks with superior adsorption and hydrophobic properties toward oil spill cleanup and hydrocarbon storage. , 2011, Journal of the American Chemical Society.
[43] Rainer Herges,et al. The first porous MOF with photoswitchable linker molecules. , 2011, Dalton transactions.
[44] Bartolomeo Civalleri,et al. Disclosing the Complex Structure of UiO-66 Metal Organic Framework: A Synergic Combination of Experiment and Theory , 2011 .
[45] R. Banerjee,et al. Synthesis and structural comparisons of five new fluorinated metal organic frameworks (F-MOFs) , 2010 .
[46] C. Serre,et al. Functionalization in flexible porous solids: effects on the pore opening and the host-guest interactions. , 2010, Journal of the American Chemical Society.
[47] C. Näther,et al. Highly efficient reversible Z-E photoisomerization of a bridged azobenzene with visible light through resolved S(1)(n pi*) absorption bands. , 2009, Journal of the American Chemical Society.
[48] Omar K Farha,et al. Metal-organic framework materials as catalysts. , 2009, Chemical Society reviews.
[49] Carlo Lamberti,et al. A new zirconium inorganic building brick forming metal organic frameworks with exceptional stability. , 2008, Journal of the American Chemical Society.
[50] Xiaoping Wang,et al. Fluorous metal-organic frameworks for high-density gas adsorption. , 2007, Journal of the American Chemical Society.
[51] Gérard Férey,et al. A rationale for the large breathing of the porous aluminum terephthalate (MIL-53) upon hydration. , 2004, Chemistry.
[52] A. Coelho. Whole-profile structure solution from powder diffraction data using simulated annealing , 2000 .
[53] C. D. Gelatt,et al. Optimization by Simulated Annealing , 1983, Science.