Formation of a long-lived electron-transfer state in mesoporous silica-alumina composites enhances photocatalytic oxygenation reactivity
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K. Karlin | K. Ohkubo | S. Fukuzumi | A. Itoh | Yusuke Yamada | T. Suenobu | K. Doi
[1] K. Ohkubo,et al. Formation of a long-lived electron-transfer state of a naphthalene-quinolinium ion dyad and the pi-dimer radical cation. , 2012, Faraday discussions.
[2] I. Hsu,et al. Bioinspired Design of a Cu–Zn–Imidazolate Mesoporous Silica Catalyst System for Superoxide Dismutation , 2011 .
[3] R. Luque,et al. Incorporation of chemical functionalities in the framework of mesoporous silica. , 2011, Chemical communications.
[4] T. Moore,et al. Towards Molecular Logic and Artificial Photosynthesis: Report , 2010 .
[5] Pierre Gaspard,et al. From non-covalent assemblies to molecular machines , 2010 .
[6] K. Ohkubo,et al. Photoinduced electron transfer in photorobust coumarins linked with electron donors affording long lifetimes of triplet charge-separated states. , 2010, Chemphyschem : a European journal of chemical physics and physical chemistry.
[7] K. Karlin,et al. Mononuclear copper complex-catalyzed four-electron reduction of oxygen. , 2010, Journal of the American Chemical Society.
[8] D. Guldi,et al. Covalent and noncovalent phthalocyanine-carbon nanostructure systems: synthesis, photoinduced electron transfer, and application to molecular photovoltaics. , 2010, Chemical reviews.
[9] K. Ohkubo,et al. Simultaneous production of p-tolualdehyde and hydrogen peroxide in photocatalytic oxygenation of p-xylene and reduction of oxygen with 9-mesityl-10-methylacridinium ion derivatives. , 2010, Chemical communications.
[10] T. Moore,et al. Solar fuels via artificial photosynthesis. , 2009, Accounts of chemical research.
[11] M. Wasielewski,et al. Self-assembly strategies for integrating light harvesting and charge separation in artificial photosynthetic systems. , 2009, Accounts of chemical research.
[12] Francis D'Souza,et al. Supramolecular donor-acceptor hybrids of porphyrins/phthalocyanines with fullerenes/carbon nanotubes: electron transfer, sensing, switching, and catalytic applications. , 2009, Chemical communications.
[13] K. Ohkubo,et al. Rational Design and Functions of Electron Donor-Acceptor Dyads with Much Longer Charge-Separated Lifetimes than Natural Photosynthetic Reaction Centers , 2009 .
[14] K. Ohkubo,et al. Response: Why had long-lived electron-transfer states of donor-substituted 10-methylacridinium ions been overlooked? Formation of the dimer radical cations detected in the near-IR region. , 2008, Physical chemistry chemical physics : PCCP.
[15] S. Fukuzumi. Development of bioinspired artificial photosynthetic systems. , 2008, Physical chemistry chemical physics : PCCP.
[16] Shunichi Fukuzumi,et al. Photofunctional nanomaterials composed of multiporphyrins and carbon-based π-electron acceptors , 2008 .
[17] C. C. Landry,et al. Diffusion-based deprotection in mesoporous materials: a strategy for differential functionalization of porous silica particles. , 2007, Journal of the American Chemical Society.
[18] D. Guldi,et al. Electronic communication in tetrathiafulvalene (TTF)/C60 systems: toward molecular solar energy conversion materials? , 2007, Accounts of chemical research.
[19] M. Wasielewski. Energy, charge, and spin transport in molecules and self-assembled nanostructures inspired by photosynthesis. , 2006, The Journal of organic chemistry.
[20] S. Fukuzumi. Bioinspired Electron-Transfer Systems and Applications , 2006 .
[21] K. Ohkubo,et al. Misleading effects of impurities derived from the extremely long-lived electron-transfer state of 9-mesityl-10-methylacridinium ion. , 2005, Chemical communications.
[22] L. Biró,et al. Spherical mesoporous MCM-41 materials containing transition metals: Synthesis and characterization , 2004 .
[23] S. Fukuzumi,et al. Long-lived charge-separated state generated in a ferrocene-meso,meso-linked porphyrin trimer-fullerene pentad with a high quantum yield. , 2004, Chemistry.
[24] K. Ohkubo,et al. Electron-transfer state of 9-mesityl-10-methylacridinium ion with a much longer lifetime and higher energy than that of the natural photosynthetic reaction center. , 2004, Journal of the American Chemical Society.
[25] S. Fukuzumi,et al. A Molecular Tetrad Allowing Efficient Energy Storage for 1.6 s at 163 K , 2004 .
[26] S. Fukuzumi. New perspective of electron transfer chemistry. , 2003, Organic & biomolecular chemistry.
[27] Jun Liu,et al. Entrapping enzyme in a functionalized nanoporous support. , 2002, Journal of the American Chemical Society.
[28] S. Fukuzumi,et al. Extremely slow long-range electron transfer reactions across zeolite-solution interface. , 2001, Journal of the American Chemical Society.
[29] S. Fukuzumi,et al. Charge separation in a novel artificial photosynthetic reaction center lives 380 ms. , 2001, Journal of the American Chemical Society.
[30] Fredrickson,et al. Triblock copolymer syntheses of mesoporous silica with periodic 50 to 300 angstrom pores , 1998, Science.
[31] Kenneth M. Kemner,et al. Functionalized Monolayers on Ordered Mesoporous Supports , 1997 .
[32] K. Karlin,et al. Kinetics and Thermodynamics of Copper(I)/Dioxygen Interaction , 1997 .
[33] J. S. Beck,et al. Ordered mesoporous molecular sieves synthesized by a liquid-crystal template mechanism , 1992, Nature.
[34] J. Kochi,et al. Charge-Transfer Photochemistry of Aromatic π-Complexes. Hexamethylbenzene and Mercuric Trifluoroacetate. , 1986 .
[35] J. Kochi,et al. Charge-transfer photochemistry of aromatic .pi.-complexes. Hexamethylbenzene and mercuric trifluoroacetate , 1986 .
[36] R. Marcus,et al. Electron transfers in chemistry and biology , 1985 .
[37] S. Fukuzumi,et al. Flavin analog-metal ion complexes acting as efficient photocatalysts in the oxidation of p-methylbenzyl alcohol by oxygen under irradiation with visible light , 1985 .
[38] A. Benniston,et al. On the Photochemical Stability of the 9‐Mesityl‐10‐methylacridinium Cation , 2009 .