메뉴 건너뛰기




Volumn , Issue , 2015, Pages 99-123

Enzymes as exploratory catalysts in artificial photosynthesis

Author keywords

Artificial photosynthesis; Enzymes; Hydrogenases; Integrated model systems; Semiconductors

Indexed keywords

CATALYSTS; PHOTOSYNTHESIS; SEMICONDUCTOR MATERIALS;

EID: 84921441458     PISSN: None     EISSN: None     Source Type: Book    
DOI: 10.1007/978-3-319-13800-8_4     Document Type: Chapter
Times cited : (6)

References (74)
  • 2
    • 80052154091 scopus 로고    scopus 로고
    • Reversibility and efficiency in electrocatalytic energy conversion and lessons from enzymes
    • Armstrong FA, Hirst J. Reversibility and efficiency in electrocatalytic energy conversion and lessons from enzymes. Proc Natl Acad Sci U S A. 2011;108: 14049-54.
    • (2011) Proc Natl Acad Sci U S A , vol.108 , pp. 14049-14054
    • Armstrong, F.A.1    Hirst, J.2
  • 3
    • 84901779742 scopus 로고    scopus 로고
    • A unified model for surface electrocatalysis based on observations with enzymes
    • Hexter SV, Esterle TF, Armstrong FA. A unified model for surface electrocatalysis based on observations with enzymes. PCCP. 2014.
    • (2014) PCCP
    • Hexter, S.V.1    Esterle, T.F.2    Armstrong, F.A.3
  • 7
    • 83655183063 scopus 로고    scopus 로고
    • Combining acid-base, redox and substrate binding functionalities to give a complete model for the [FeFe]-hydrogenase
    • Camara JM, Rauchfuss TB. Combining acid-base, redox and substrate binding functionalities to give a complete model for the [FeFe]-hydrogenase. Nat Chem. 2012;4: 26-30.
    • (2012) Nat Chem , vol.4 , pp. 26-30
    • Camara, J.M.1    Rauchfuss, T.B.2
  • 9
    • 0028034271 scopus 로고
    • Synthesis of reaction center proteins and reactivation of redox components during repair of photosystem II after light-induced inactivation
    • van Wijk KJ, Nilsson LO, Styring S. Synthesis of reaction center proteins and reactivation of redox components during repair of photosystem II after light-induced inactivation. J Biol Chem. 1994;269(45): 28382-92.
    • (1994) J Biol Chem , vol.269 , Issue.45 , pp. 28382-28392
    • van Wijk, K.J.1    Nilsson, L.O.2    Styring, S.3
  • 11
    • 84892152367 scopus 로고    scopus 로고
    • 2 Generation in Water Based on an Efficient DuBois-Type Nickel Catalyst
    • 2 Generation in Water Based on an Efficient DuBois-Type Nickel Catalyst. J Am Chem Soc. 2013;136(1): 356-66.
    • (2013) J Am Chem Soc , vol.136 , Issue.1 , pp. 356-366
    • Gross, M.A.1    Reynal, A.2    Durrant, J.R.3    Reisner, E.4
  • 12
    • 84874165017 scopus 로고    scopus 로고
    • A Noble-Metal-Free Hydrogen Evolution Catalyst Grafted to Visible Light-Absorbing Semiconductors
    • Moore GF, Sharp ID. A Noble-Metal-Free Hydrogen Evolution Catalyst Grafted to Visible Light-Absorbing Semiconductors. The Journal of Physical Chemistry Letters. 2013;4(4): 568-72.
    • (2013) The Journal of Physical Chemistry Letters , vol.4 , Issue.4 , pp. 568-572
    • Moore, G.F.1    Sharp, I.D.2
  • 13
    • 84874101282 scopus 로고    scopus 로고
    • Principles of Sustained Enzymatic Hydrogen Oxidation in the Presence of Oxygen - The Crucial Influence of High Potential Fe-S Clusters in the Electron Relay of [NiFe]-Hydrogenases
    • Evans RM, Parkin A, Roessler MM, Murphy BJ, Adamson H, Lukey MJ, et al. Principles of Sustained Enzymatic Hydrogen Oxidation in the Presence of Oxygen - The Crucial Influence of High Potential Fe-S Clusters in the Electron Relay of [NiFe]-Hydrogenases. J Am Chem Soc. 2013;135(7): 2694-707.
    • (2013) J Am Chem Soc , vol.135 , Issue.7 , pp. 2694-2707
    • Evans, R.M.1    Parkin, A.2    Roessler, M.M.3    Murphy, B.J.4    Adamson, H.5    Lukey, M.J.6
  • 15
    • 49449111220 scopus 로고    scopus 로고
    • Reversible interconversion of carbon dioxide and formate by an electroactive enzyme
    • Reda T, Plugge CM, Abram NJ, Hirst J. Reversible interconversion of carbon dioxide and formate by an electroactive enzyme. Proc Natl Acad Sci U S A. 2008;105(31): 10654-8.
    • (2008) Proc Natl Acad Sci U S A , vol.105 , Issue.31 , pp. 10654-10658
    • Reda, T.1    Plugge, C.M.2    Abram, N.J.3    Hirst, J.4
  • 16
    • 84899552395 scopus 로고    scopus 로고
    • Structure, Function, and Mechanism of the Nickel Metalloenzymes, CO Dehydrogenase, and Acetyl-CoA Synthase
    • Can M, Armstrong FA, Ragsdale SW. Structure, Function, and Mechanism of the Nickel Metalloenzymes, CO Dehydrogenase, and Acetyl-CoA Synthase. Chem Rev. 2014.
    • (2014) Chem Rev
    • Can, M.1    Armstrong, F.A.2    Ragsdale, S.W.3
  • 19
    • 84902253784 scopus 로고    scopus 로고
    • 2 Conversion and Utilization
    • American Chemical Society
    • 2 Conversion and Utilization. ACS Symposium Series. 1056: American Chemical Society; 2010. p. 55-76.
    • (2010) ACS Symposium Series. 1056 , pp. 55-76
    • Wenzhen, L.1
  • 23
    • 84984064845 scopus 로고
    • Photochemical and Electrochemical Reduction of Carbon Dioxide to Carbon Monoxide Mediated by (2,2′-Bipyridine)tricarbonylchlororhenium(I) and Related Complexes as Homogeneous Catalysts
    • Hawecker J, Lehn J-M, Ziessel R. Photochemical and Electrochemical Reduction of Carbon Dioxide to Carbon Monoxide Mediated by (2,2′-Bipyridine)tricarbonylchlororhenium(I) and Related Complexes as Homogeneous Catalysts. Helv Chim Acta. 1986;69(8): 1990-2012.
    • (1986) Helv Chim Acta , vol.69 , Issue.8 , pp. 1990-2012
    • Hawecker, J.1    Lehn, J.-M.2    Ziessel, R.3
  • 27
    • 85028099698 scopus 로고    scopus 로고
    • Crystal structure of oxygen-evolving photosystem II at a resolution of 1.9 Å
    • Umena Y, Kawakami K, Shen J-R, Kamiya N. Crystal structure of oxygen-evolving photosystem II at a resolution of 1.9 Å. Nature. 2011;473(7345): 55-60.
    • (2011) Nature , vol.473 , Issue.7345 , pp. 55-60
    • Umena, Y.1    Kawakami, K.2    Shen, J.-R.3    Kamiya, N.4
  • 28
    • 84860251823 scopus 로고    scopus 로고
    • A molecular ruthenium catalyst with water-oxidation activity comparable to that of photosystem II
    • Duan L, Bozoglian F, Mandal S, Stewart B, Privalov T, Llobet A, et al. A molecular ruthenium catalyst with water-oxidation activity comparable to that of photosystem II. Nat Chem. 2012;4(5): 418-23.
    • (2012) Nat Chem , vol.4 , Issue.5 , pp. 418-423
    • Duan, L.1    Bozoglian, F.2    Mandal, S.3    Stewart, B.4    Privalov, T.5    Llobet, A.6
  • 29
    • 84887680701 scopus 로고    scopus 로고
    • Benchmarking Heterogeneous Electrocatalysts for the Oxygen Evolution Reaction
    • McCrory CCL, Jung S, Peters JC, Jaramillo TF. Benchmarking Heterogeneous Electrocatalysts for the Oxygen Evolution Reaction. J Am Chem Soc. 2013;135(45): 16977-87.
    • (2013) J Am Chem Soc , vol.135 , Issue.45 , pp. 16977-16987
    • McCrory, C.C.L.1    Jung, S.2    Peters, J.C.3    Jaramillo, T.F.4
  • 30
    • 84861399242 scopus 로고    scopus 로고
    • Photoelectrochemical Water Oxidation with Photosystem II Integrated in a Mesoporous Indium-Tin Oxide Electrode
    • Kato M, Cardona T, Rutherford AW, Reisner E. Photoelectrochemical Water Oxidation with Photosystem II Integrated in a Mesoporous Indium-Tin Oxide Electrode. J Am Chem Soc. 2012;134(20): 8332-5.
    • (2012) J Am Chem Soc , vol.134 , Issue.20 , pp. 8332-8335
    • Kato, M.1    Cardona, T.2    Rutherford, A.W.3    Reisner, E.4
  • 31
    • 84880799125 scopus 로고    scopus 로고
    • Covalent Immobilization of Oriented Photosystem II on a Nanostructured Electrode for Solar Water Oxidation
    • Kato M, Cardona T, Rutherford AW, Reisner E. Covalent Immobilization of Oriented Photosystem II on a Nanostructured Electrode for Solar Water Oxidation. J Am Chem Soc. 2013;135(29): 10610-3.
    • (2013) J Am Chem Soc , vol.135 , Issue.29 , pp. 10610-10613
    • Kato, M.1    Cardona, T.2    Rutherford, A.W.3    Reisner, E.4
  • 32
    • 84906274727 scopus 로고    scopus 로고
    • Protein film photoelectrochemistry of the water oxidation enzyme photosystem II
    • Kato M, Zhang JZ, Paul N, Reisner E. Protein film photoelectrochemistry of the water oxidation enzyme photosystem II. Chem Soc Rev. 2014.
    • (2014) Chem Soc Rev
    • Kato, M.1    Zhang, J.Z.2    Paul, N.3    Reisner, E.4
  • 33
    • 35348875044 scopus 로고
    • Electrochemical photolysis of water at a semiconductor electrode
    • Fujishima A, Honda K. Electrochemical photolysis of water at a semiconductor electrode. Nature. 1972;238(5358): 37-8.
    • (1972) Nature , vol.238 , Issue.5358 , pp. 37-38
    • Fujishima, A.1    Honda, K.2
  • 34
    • 4544235448 scopus 로고
    • 2 Surfaces: Principles, Mechanisms, and Selected Results
    • 2 Surfaces: Principles, Mechanisms, and Selected Results. Chem Rev. 1995;95(3): 735-58.
    • (1995) Chem Rev , vol.95 , Issue.3 , pp. 735-758
    • Linsebigler, A.L.1    Lu, G.2    Yates, J.T.3
  • 36
    • 84861174023 scopus 로고    scopus 로고
    • The Artificial Leaf
    • Nocera DG. The Artificial Leaf. Acc Chem Res. 2012;45(5): 767-76.
    • (2012) Acc Chem Res , vol.45 , Issue.5 , pp. 767-776
    • Nocera, D.G.1
  • 37
    • 84875410903 scopus 로고    scopus 로고
    • Scaling with Ohm’s Law; Wired vs. Wireless Photoelectrochemical Cells
    • Newman J. Scaling with Ohm’s Law; Wired vs. Wireless Photoelectrochemical Cells. J Electrochem Soc. 2013;160(3):F309-F11.
    • (2013) J Electrochem Soc , vol.160 , Issue.3 , pp. F309-F311
    • Newman, J.1
  • 38
    • 0000802927 scopus 로고
    • Photochemical diodes
    • Nozik AJ. Photochemical diodes. Appl Phys Lett. 1977;30(11): 567-9.
    • (1977) Appl Phys Lett , vol.30 , Issue.11 , pp. 567-569
    • Nozik, A.J.1
  • 41
    • 84887858384 scopus 로고    scopus 로고
    • Simulations of the irradiation and temperature dependence of the efficiency of tandem photoelectrochemical water-splitting systems
    • Haussener S, Hu S, Xiang C, Weber AZ, Lewis NS. Simulations of the irradiation and temperature dependence of the efficiency of tandem photoelectrochemical water-splitting systems. Energy & Environmental Science. 2013;6(12): 3605-18.
    • (2013) Energy & Environmental Science , vol.6 , Issue.12 , pp. 3605-3618
    • Haussener, S.1    Hu, S.2    Xiang, C.3    Weber, A.Z.4    Lewis, N.S.5
  • 44
    • 27144444432 scopus 로고    scopus 로고
    • Colloidal nanocrystal synthesis and the organic-inorganic interface
    • Yin Y, Alivisatos AP. Colloidal nanocrystal synthesis and the organic-inorganic interface. Nature. 2005;437(7059): 664-70.
    • (2005) Nature , vol.437 , Issue.7059 , pp. 664-670
    • Yin, Y.1    Alivisatos, A.P.2
  • 45
    • 18044387790 scopus 로고    scopus 로고
    • Chemistry and Properties of Nanocrystals of Different Shapes
    • Burda C, Chen X, Narayanan R, El-Sayed MA. Chemistry and Properties of Nanocrystals of Different Shapes. Chem Rev. 2005;105(4): 1025-102.
    • (2005) Chem Rev , vol.105 , Issue.4 , pp. 1025-1102
    • Burda, C.1    Chen, X.2    Narayanan, R.3    El-Sayed, M.A.4
  • 46
    • 11944253591 scopus 로고
    • The Quantum Mechanics of Larger Semiconductor Clusters ("Quantum Dots")
    • Bawendi MG, Steigerwald ML, Brus LE. The Quantum Mechanics of Larger Semiconductor Clusters ("Quantum Dots"). Annu Rev Phys Chem. 1990;41(1): 477-96.
    • (1990) Annu Rev Phys Chem , vol.41 , Issue.1 , pp. 477-496
    • Bawendi, M.G.1    Steigerwald, M.L.2    Brus, L.E.3
  • 47
    • 33750247309 scopus 로고    scopus 로고
    • Synthesis, properties and perspectives of hybrid nanocrystal structures
    • Cozzoli PD, Pellegrino T, Manna L. Synthesis, properties and perspectives of hybrid nanocrystal structures. Chem Soc Rev. 2006;35(11): 1195-208.
    • (2006) Chem Soc Rev , vol.35 , Issue.11 , pp. 1195-1208
    • Cozzoli, P.D.1    Pellegrino, T.2    Manna, L.3
  • 48
    • 0042758371 scopus 로고
    • Electronic wave functions in semiconductor clusters: Experiment and theory
    • Brus L. Electronic wave functions in semiconductor clusters: experiment and theory. The Journal of Physical Chemistry. 1986;90(12): 2555-60.
    • (1986) The Journal of Physical Chemistry , vol.90 , Issue.12 , pp. 2555-2560
    • Brus, L.1
  • 49
    • 75649118191 scopus 로고    scopus 로고
    • Prospects of Colloidal Nanocrystals for Electronic and Optoelectronic Applications
    • Talapin DV, Lee J-S, Kovalenko MV, Shevchenko EV. Prospects of Colloidal Nanocrystals for Electronic and Optoelectronic Applications. Chem Rev. 2009;110(1): 389-458.
    • (2009) Chem Rev , vol.110 , Issue.1 , pp. 389-458
    • Talapin, D.V.1    Lee, J.-S.2    Kovalenko, M.V.3    Shevchenko, E.V.4
  • 50
    • 84874855551 scopus 로고    scopus 로고
    • Recent Progress in Photocatalysis Mediated by Colloidal II-VI Nanocrystals
    • Wilker MB, Schnitzenbaumer KJ, Dukovic G. Recent Progress in Photocatalysis Mediated by Colloidal II-VI Nanocrystals. Isr J Chem. 2012;52(11-12): 1002-15.
    • (2012) Isr J Chem , vol.52 , Issue.11-12 , pp. 1002-1015
    • Wilker, M.B.1    Schnitzenbaumer, K.J.2    Dukovic, G.3
  • 51
    • 33748394800 scopus 로고    scopus 로고
    • Subpicosecond Interfacial Charge Separation in Dye-Sensitized Nanocrystalline Titanium Dioxide Films
    • Tachibana Y, Moser JE, Grätzel M, Klug DR, Durrant JR. Subpicosecond Interfacial Charge Separation in Dye-Sensitized Nanocrystalline Titanium Dioxide Films. The Journal of Physical Chemistry. 1996;100(51): 20056-62.
    • (1996) The Journal of Physical Chemistry , vol.100 , Issue.51 , pp. 20056-20062
    • Tachibana, Y.1    Moser, J.E.2    Grätzel, M.3    Klug, D.R.4    Durrant, J.R.5
  • 52
    • 84874917257 scopus 로고    scopus 로고
    • Charge Transfer Dynamics between Photoexcited CdS Nanorods and Mononuclear Ru Water-Oxidation Catalysts
    • Tseng H-W, Wilker MB, Damrauer NH, Dukovic G. Charge Transfer Dynamics between Photoexcited CdS Nanorods and Mononuclear Ru Water-Oxidation Catalysts. J Am Chem Soc. 2013;135(9): 3383-6.
    • (2013) J Am Chem Soc , vol.135 , Issue.9 , pp. 3383-3386
    • Tseng, H.-W.1    Wilker, M.B.2    Damrauer, N.H.3    Dukovic, G.4
  • 53
    • 2342526824 scopus 로고    scopus 로고
    • Electrochemistry of semiconductors
    • Bott A. Electrochemistry of semiconductors. Curr Sep. 1998;3: 87-91.
    • (1998) Curr Sep , vol.3 , pp. 87-91
    • Bott, A.1
  • 59
    • 84884324723 scopus 로고    scopus 로고
    • Designing interfaces of hydrogenase-nanomaterial hybrids for efficient solar conversion
    • King PW. Designing interfaces of hydrogenase-nanomaterial hybrids for efficient solar conversion. Biochimica et Biophysica Acta (BBA) - Bioenergetics. 2013;1827(8-9): 949-57.
    • (2013) Biochimica et Biophysica Acta (BBA) - Bioenergetics , vol.1827 , Issue.8-9 , pp. 949-957
    • King, P.W.1
  • 62
    • 79953066770 scopus 로고    scopus 로고
    • High-Performance Hydrogen Production and Oxidation Electrodes with Hydrogenase Supported on Metallic Single-Wall Carbon Nanotube Networks
    • Svedružić D, Blackburn JL, Tenent RC, Rocha J-DR, Vinzant TB, Heben MJ, et al. High-Performance Hydrogen Production and Oxidation Electrodes with Hydrogenase Supported on Metallic Single-Wall Carbon Nanotube Networks. J Am Chem Soc. 2011;133(12): 4299-306.
    • (2011) J Am Chem Soc , vol.133 , Issue.12 , pp. 4299-4306
    • Svedružić, D.1    Blackburn, J.L.2    Tenent, R.C.3    Rocha, J.-D.R.4    Vinzant, T.B.5    Heben, M.J.6
  • 63
    • 84858052739 scopus 로고    scopus 로고
    • Order-of-magnitude enhancement of an enzymatic hydrogen-air fuel cell based on pyrenyl carbon nanostructures
    • Krishnan S, Armstrong FA. Order-of-magnitude enhancement of an enzymatic hydrogen-air fuel cell based on pyrenyl carbon nanostructures. Chemical Science. 2012;3(4): 1015-23.
    • (2012) Chemical Science , vol.3 , Issue.4 , pp. 1015-1023
    • Krishnan, S.1    Armstrong, F.A.2
  • 64
    • 84890525689 scopus 로고    scopus 로고
    • Noncovalent Immobilization of Electrocatalysts on Carbon Electrodes for Fuel Production
    • Blakemore JD, Gupta A, Warren JJ, Brunschwig BS, Gray HB. Noncovalent Immobilization of Electrocatalysts on Carbon Electrodes for Fuel Production. J Am Chem Soc. 2013;135(49): 18288-91.
    • (2013) J Am Chem Soc , vol.135 , Issue.49 , pp. 18288-18291
    • Blakemore, J.D.1    Gupta, A.2    Warren, J.J.3    Brunschwig, B.S.4    Gray, H.B.5
  • 65
    • 84868533696 scopus 로고    scopus 로고
    • Identification and Characterization of the "Super-Reduced" State of the H-Cluster in [FeFe] Hydrogenase: A New Building Block for the Catalytic Cycle?
    • Adamska A, Silakov A, Lambertz C, Rüdiger O, Happe T, Reijerse E, et al. Identification and Characterization of the "Super-Reduced" State of the H-Cluster in [FeFe] Hydrogenase: A New Building Block for the Catalytic Cycle? Angew Chem Int Ed. 2012;51: 11458-62.
    • (2012) Angew Chem Int Ed , vol.51 , pp. 11458-11462
    • Adamska, A.1    Silakov, A.2    Lambertz, C.3    Rüdiger, O.4    Happe, T.5    Reijerse, E.6
  • 67
    • 0033523919 scopus 로고    scopus 로고
    • Natural engineering principles of electron tunnelling in biological oxidation-reduction
    • Page CC, Moser CC, Chen X, Dutton PL. Natural engineering principles of electron tunnelling in biological oxidation-reduction. Nature. 1999;402(6757): 47-52.
    • (1999) Nature , vol.402 , Issue.6757 , pp. 47-52
    • Page, C.C.1    Moser, C.C.2    Chen, X.3    Dutton, P.L.4
  • 71
    • 78349259311 scopus 로고    scopus 로고
    • Controlled Assembly of Hydrogenase-CdTe Nanocrystal Hybrids for Solar Hydrogen Production
    • Brown KA, Dayal S, Ai X, Rumbles G, King PW. Controlled Assembly of Hydrogenase-CdTe Nanocrystal Hybrids for Solar Hydrogen Production. J Am Chem Soc. 2010;132(28): 9672-80.
    • (2010) J Am Chem Soc , vol.132 , Issue.28 , pp. 9672-9680
    • Brown, K.A.1    Dayal, S.2    Ai, X.3    Rumbles, G.4    King, P.W.5
  • 73
    • 0021194792 scopus 로고
    • The physical and catalytic properties of hydrogenase II of Clostridium pasteurianum. A comparison with hydrogenase I
    • Adams MW, Mortenson LE. The physical and catalytic properties of hydrogenase II of Clostridium pasteurianum. A comparison with hydrogenase I. J Biol Chem. 1984;259(11): 7045-55.
    • (1984) J Biol Chem , vol.259 , Issue.11 , pp. 7045-7055
    • Adams, M.W.1    Mortenson, L.E.2
  • 74
    • 84868089671 scopus 로고    scopus 로고
    • Electron Transfer in Dye-Sensitised Semiconductors Modified with Molecular Cobalt Catalysts: Photoreduction of Aqueous Protons
    • Lakadamyali F, Reynal A, Kato M, Durrant JR, Reisner E. Electron Transfer in Dye-Sensitised Semiconductors Modified with Molecular Cobalt Catalysts: Photoreduction of Aqueous Protons. Chem Eur J. 2012;18(48): 15464-75.
    • (2012) Chem Eur J , vol.18 , Issue.48 , pp. 15464-15475
    • Lakadamyali, F.1    Reynal, A.2    Kato, M.3    Durrant, J.R.4    Reisner, E.5


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.