Hydrogenase mimic (English Wikipedia)

Analysis of information sources in references of the Wikipedia article "Hydrogenase mimic" in English language version.

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  • Selvaggi, A; Barberini, U; Franchi, E; Rodriguez, F; Pedroni, P (1999). "In vitro hydrogen photoproduction using Pyrococcus furiosus sulfhydrogenase and TiO2". Journal of Photochemistry and Photobiology. 125 (1–3): 107–112. doi:10.1016/S1010-6030(99)00088-X.
  • Artero, V; Fontecave, S (2005). "Some general principles for designing electrocatalysts with hydrogenase activity". Coordination Chemistry Reviews. 249 (15–16): 1518–1535. doi:10.1016/j.ccr.2005.01.014.
  • Manor, B; Rauchfuss, T (2013). "Hydrogen Activation by Biomimetic [NiFe]-Hydrogenase Model Containing Protected Cyanide Cofactors". Journal of the American Chemical Society. 135 (32): 11895–11900. doi:10.1021/ja404580r. PMC 3843950. PMID 23899049.
  • Zhao, J; Ma, Y; Bai, Z; Chang, W; Li, J (2012). "A new reactivity pattern of heterodinuclear complexes [MnRe(CO)6(m-S2CPR3)] with nBuLi/protonation and its electrochemistry properties investigation as structure and function models for the Fe only hydrogenase active site". Journal of Organometallic Chemistry. 716: 230–236. doi:10.1016/j.jorganchem.2012.07.003.
  • Liu, X; Ru, X; Li, Y; Zhang, K; Chen, D (2011). "A polyene-based polymer functionalized with a model of [FeFe]-hydrogenase and film electrodes assembled from the polymer via spin-coating". International Journal of Hydrogen Energy. 36 (16): 9612–9619. doi:10.1016/j.ijhydene.2011.05.095.
  • Na, Y; Wang, M; Jin, K; Zhang, R; Sun, L (2006). "An approach to water-soluble hydrogenase active site models: Synthesis and electrochemistry of diiron dithiolate complexes with 3,7-diacetyl-1,3,7-triaza-5-phosphabicyclo[3.3.1] nonane ligand(s)". Journal of Organometallic Chemistry. 691 (23): 5045–5051. doi:10.1016/j.jorganchem.2006.08.082.
  • Morozov, S; Vignais, P; Cournac, L; Zorin, N; Karyakina, A; Cosnier, S (2002). "Bioelectrocatalytic hydrogen production by hydrogenase electrodes". International Journal of Hydrogen Energy. 27 (11–12): 1501–1505. doi:10.1016/S0360-3199(02)00091-5.
  • Oh, Y; Lee, Y; Choi, E; Kim, M (2008). "Bioelectrocatalytic hydrogen production using Thiocapsa roseopersicina hydrogenase in two-compartment fuel cells". International Journal of Hydrogen Energy. 33 (19): 5218–5223. doi:10.1016/j.ijhydene.2008.05.015.
  • Johnston, W; Cooney, M; Liaw, B; Sapra, R; Adams, M (2005). "Design and characterization of redox enzyme electrodes: new perspectives on established techniques with application to an extremeophilic hydrogenase". Enzyme and Microbial Technology. 36 (4): 540–549. doi:10.1016/j.enzmictec.2004.11.016.
  • Constable, C; Housecroft, C; Kokatam, S; Medlycott, A; Zampese, J (2010). "Fe-only hydrogenase active site mimics: Fe2(CO)6(l-ADT) (ADT = azadithiolate) clusters bearing pendant 2,20:60,200-terpyridine domains and containing alkynylthienylene or alkynylphenylene spacers". Inorganic Chemistry Communications. 13: 457–460. doi:10.1016/j.inoche.2009.06.003.
  • Apfel, U; Kowol, C; Kloss, F; Gorls, H; Keppler, B; Weigand, W (2011). "Hydroxy and ether functionalized dithiolanes: Models for the active site of the [FeFe] hydrogenase". Journal of Organometallic Chemistry. 696 (5): 1084–1088. doi:10.1016/j.jorganchem.2010.09.048.
  • Goff, A; Artero, V; Metaye, R; Moggia, F; Jousselme, B; Razavet, M; Tran, P; Palacin, S; Fontecave, M (2010). "Immobilization of FeFe hydrogenase mimics onto carbon and gold electrodes by controlled aryldiazonium salt reduction: An electrochemical, XPS and ATR-IR study". International Journal of Hydrogen Energy. 35 (19): 10790–10796. doi:10.1016/j.ijhydene.2010.02.112.
  • Donovan, E; Nichol, G; Felton, G (2013). "Structural effects upon the durability of hydrogenase-inspired hydrogen-producing electrocatalysts: Variations in the (m-edt) [Fe2(CO)6] system". Journal of Organometallic Chemistry. 726: 9–13. doi:10.1016/j.jorganchem.2012.12.006.
  • Martin, M; Vidotti, M; Souza, F (2012). "Synthesis, characterization and electrocatalysis of mono- and di-nickel tetraiminodiphenolate macrocyclic complexes as active site models of [NiFe]-hydrogenases". International Journal of Hydrogen Energy. 37 (19): 14094–14102. doi:10.1016/j.ijhydene.2012.06.118.
  • Hogarth, G; Richards, I (2006). "Synthesis, crystal structure and protonation of the asymmetric iron-only hydrogenase model [Fe2(CO)3(l-pdt){l,g2-Ph2PCH2CH2P(Ph) CH2CH2PPh2}] (pdt = SCH2CH2CH2S)". Inorganic Chemistry Communications. 10: 66–70. doi:10.1016/j.inoche.2006.09.005.
  • Zhang, Y; Hu, M; Wen, H; Si, T; Ma, C; Chen, C; Liu, Q (2009). "Terminal pyridine-N ligation at [FeFe] hydrogenase active-site mimic". Journal of Organometallic Chemistry. 694 (16): 2576–2580. doi:10.1016/j.jorganchem.2009.03.050.
  • Schilter, D; Camara, J; Huynh, M; Hammes-Schiffer, S; Rauchfuss, T (2016). "Hydrogenase Enzymes and Their Synthetic Models: The Role of Metal Hydrides". Chemical Reviews. 116 (15): 8693–8749. doi:10.1021/acs.chemrev.6b00180. PMC 5026416. PMID 27353631.
  • Geco, C (2013). "H2 Binding and Splitting on a New-Generation [FeFe]-Hydrogenase Model Featuring a Redox-Active Decamethylferrocenyl Phosphine Ligand: A Theoretical Investigation". Inorganic Chemistry. 52 (4): 1901–1908. doi:10.1021/ic302118h. PMID 23374093.
  • Breglia, R; Ruiz‑Rodriguez, M; Vitriolo, A; Gonzàlez‑Laredo, R; De Gioia, L; Greco, C; Bruschi, M (2017). "Theoretical insights into [NiFe]‑hydrogenases oxidation resulting in a slowly reactivating inactive state". Journal of Biological Inorganic Chemistry. 22 (1): 137–151. doi:10.1007/s00775-016-1416-1. PMID 27873068.
  • L Schwartz, G Eilers, L Eriksson, A Gogoll, R Lomoth and S Ott, Chem. Commun., 2006 doi:10.1039/b514280f

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