PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Photochemical and photobiological methods of hydrogen generation -the energy carrier of the XXI century

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Photocatalytic and photobiological methods of hydrogen generation from water are presented. This review paper gives a short description of current laboratory research works related to hydrogen generation in the presence of light. The application of metal oxides, sulfides, nitrides, perovskites alone or combined, as photocatalysts has been described. Basic principles of photobiological methods of hydrogen generation applying phototrophic bacteria have been described as well.
Słowa kluczowe
Rocznik
Strony
102--105
Opis fizyczny
Bibliogr. 33 poz., rys.
Twórcy
autor
Bibliografia
  • (1) Armor J. N.: The multiple role for catalysis in the production of H2, Appl. Catal.A., 1999, 176, 159.
  • (2) Linsebiegler A. L., Lu G.,Yates Jr. J. X.: Photocatalysis on TiO2 surfaces: Principles, Mechanisms, and Selected results, Chem. Rev., 1995, 95, 735.
  • (3) Łaniecki M., Głowacki R., Zalas M.: Photocatalytic generation of hydrogen - the fuel of XXI century, Pol. J. Envir. Stud., 2005, 14 (Supl. 4), 39.
  • (4) Domen K.: Hydrogen production form water on Heterogeneous Photocatalysts, Proceed. Int. Hydrogen Energy Congr., IHEC 2005, Istambul, Turkey, 2005, CD-ROM edition, 9 pages.
  • (5) Zalas M., Łaniecki M.: Photocatalytic hydrogen generation over lanthanide-doped titania, Solar Energy Mat.&Solar Cells, 2005, 89, 287.
  • (6) Domen K., Naito S., Soma M., Onishi T., Tamaru K.: Photocatalytic decomposition of water vapour on a NiO-SrTiO3 catalyst, J.C.S. Chem. Comm., 1980, 543.
  • (7) TakataT., Shinohara K., Tanaka M., Hara M., Kondo J. N., Domen K.: A highly active photocatalyst for overall water splitting with a hydrated layered perovskite structure, J. Photochem. Photobiol. A, 1997, 106, 45.
  • (8) NakajimaK., Lu D., Hara M., Domen Domen., Kondo J. N.: Synthesis and application of thermally stable mesoporous Ta2O5 photocatalyst for overall decomposition, Stud. Surf. Sci. Catal. 2005, 158, 1477.
  • (9) Kato H., Asakura K., Kudo A.: Highly efficient water splitting into H2 and O2 over lanthanum-doped NaTaO3 photocatalysts with high crystallinity and surface nanostructure, J. Am. Chem. Soc, 2003, 125, 3082.
  • (10) Sato J., Saito N., NishiyamaH., InoueY.: Photocatalytic activities for water decomposition of RuO2-loaded AlnO2 (A = Li,Na) with d10 configuration, J. Photochem. Photobiol. A. 2003, 158, 139.
  • (11) Kasahara A., Nukumizu K., Hitoki G., Takata T., Kondo J. N., Hara M., Domen K.: Photoreactions on LaTiO2N under visible irradiation, J. Phys. Chem. A., 2002, 106, 6750.
  • (12) Hara M., Hitoki G., Takata T., Kondo J. N., Kobayashi H., Domen K.: TaON and Ta3N5 as new visible light driven photocatalysts, Catal. Today, 2002, 78, 555.
  • (13) Sato J., Saito N., Yamada Y., Maeda K., Takata T., Kondo J. N., Hara M., Kobayashi H., Domen K., Inoue Y.: RuO2-loaded (beta-Ge3N4 as a non-oxide photocatalyst for overall water splitting, J. Am. Chem. Soc., 2005, 127, 4150.
  • (14) Sayama K., Mukasa K., Abe R., Abe Y., Arakowa.: Stechiometric water splitting into H2 and O2 using mixture of two different photocatalysts and IO3-/Ii shuttle redox mediator under visible light irradiation, Chem. Comm. 2001, 2416.
  • (15) Das D., Veziroglu T. N.: Hydrogen production by biological processes; a survey of literature, Int. J. Hydrogen Energy, 2001, 26, 13.
  • (16) Beneman J. R.: Feasibility analysis of photobilogical hydrogen production, Int. J. Hydrogen Energy, 1997, 22, 979.
  • (17) Melis A., Happe T.: Hydrogen production. Green algae as a source of energy, Plant Physiology, 2001, 127, 740.
  • (18) Melis A.: Green algae hydrogen production: progress, chalenges and prospects, Int. J. Hydrogen Energy, 2002, 27, 1217.
  • (19) Koku H., Eroglu I., Gündüz U., Yücel M., Türker L.: Aspects of the metabolism of hydrogen production by Rhodobacter sphaeroides, Int. J. Hydrogen Energy, 2002, 27, 1315.
  • (20) Eroglu E., Gündüz U., Yücel M., Türker L., Eroglu I.: Photobiological hydrogen production by using olive mill wastewater as a sole substrate source, Int. J. Hydrogen Energy 2004, 29, 163 - 171.
  • (21) Kim M. S., Baek J. S., Park T. H., Shim S. J., Lee J. K.: Hydrogen production from Chlamydomonas reinhardtii biomass using a two-step conversion process; the anaerobic conversion and the photosynthetic fermentation, Proceed. 15th World Hydrogen Energy Conf, Yokohama 2004, Japan, CD-rom edition (NEDO -Edition).
  • (22) Nakada E., Asada Y., Arai T, Miyake J.: Light Penetration into Cell Suspensison of Photosynthetic Bacteria and Relationto Hydrogen Production, J.Ferment. Bioeng., 1995, 80, 53
  • (23) Akkerman I., Janssen M., Rocha J., Wijffels R. H.: Photobiological hydrogen production: photochemical efficiency and bioreactor design. Int. J. Hydrogen Energy, 2002, 27, 1195.
  • (24) Nakada E., Nishikata S., Asada Y., Miyake J.: Photosynthetic bacterial hydrogen production combined with fuel cell, Int. J. Hydrogen Energy, 1999, 24, 1053.
  • (25) Modigell M., Holle N.: New photobioreactor for application of biological hydrogen production, Proceedings of the 12th World Hydrogen Energy Conference, Buenos Aires, Argentina, 1998, 2045.
  • (26) Miyake J., Miyake M., Asada Y.: Biotechnological hydrogen production research for efficient light energy conversion. J. Biotechnol., 1999, 70, 89 - 101.
  • (27) Kondo T., Arakawa M., Hirai T., Wakayama T., Hara M., Miyake J.: Enhancement of Hydrogen Production by a Photosynthetic Bacterium Mutant with Reduced Pigment, J. Biosci. Bioeng. 2002, 93, 145.
  • (28) El-Shishtawy R. M. A., Kawasaki S., Morimoto M.: Biological hydrogen production using noble light-induced and diffused photobioreactor, Biotechnol. Tech., 1997, 11, 403.
  • (29) Ogbona J. C., Soejima T., Tanaka H.: An integrated solar and artificial light system for internal illumination of photobioreactors, J. Biotechnol., 1999, 70, 289.
  • (30) Gordon J. M.: Tailoring optical systems to optimized bioreactors, Int. J. Hydrogen Energy, 2002, 27, 1175.
  • (31) Eroglu I., Aslan K., Gündüz U., Yücel M., Türker L.: Substrate consumption rates for hydrogen production by Rhodobacter sphaeroides in a column photobioreactor. J. Biotechnol., 1999, 70, 103,.
  • (32) Takasaki K., Kohno M., Hattori T: (1996) Development of Environmentally Friendly Technology for the Production of Hydrogen, Proceedings of the 11th World Hydrogen Energy Conference, Stuttgart, Germany, 1, 61 - 70.
  • (33) AFOSOR Workshop on Biohydrogen, Molecular Biomimetic Systems, and Artificial Photosynthesis for H2 Production- Golden, Colorado, April 22 - 23, (2003) Final Report.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BPS2-0039-0064
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.