Modelling of hydrogen production in batch cultures of the photosynthetic bacterium Rhodobacter capsulatus
暂无分享,去创建一个
Jean-Marie Flaus | Olivier Adrot | Roumen Zlatev | J. Magnin | J. Willison | J. Flaus | O. Adrot | R. Zlatev | John C. Willison | Jean-Pierre Magnin | Jamila Obeid | Jamila Obeid
[1] Edgar L. Piret,et al. Transient and steady states in continuous fermentaion. Theory and experiment , 1959 .
[2] H. Gest,et al. H2 metabolism in the photosynthetic bacterium Rhodopseudomonas capsulata: production and utilization of H2 by resting cells , 1977, Journal of bacteriology.
[3] J. Willison,et al. Increased photoproduction of hydrogen by non-autotrophic mutants of Rhodopseudomonas capsulata. , 1984, The Biochemical journal.
[4] Debabrata Das,et al. Hydrogen production by biological processes: a survey of literature , 2001 .
[5] K. Riahi,et al. The hydrogen economy in the 21st century: a sustainable development scenario , 2003 .
[6] D. Hall,et al. Actual and potential rates of hydrogen photoproduction by continuous culture of the purple non-sulphur bacterium Rhodobacter capsulatus , 1998, Applied Microbiology and Biotechnology.
[7] J. Tramper,et al. Acetate as a carbon source for hydrogen production by photosynthetic bacteria. , 2001, Journal of biotechnology.
[8] Y. Asada,et al. Light penetration into cell suspensions of photosynthetic bacteria and relation to hydrogen production , 1995 .
[9] Kadir Aslan,et al. Substrate consumption rates for hydrogen production by Rhodobacter sphaeroides in a column photobioreactor , 1999 .
[10] Katsuda,et al. Light intensity distribution in the externally illuminated cylindrical photo-bioreactor and its application to hydrogen production by Rhodobacter capsulatus. , 2000, Biochemical engineering journal.
[11] G. Drews,et al. Nitrogen-limited continuous culture ofRhodopseudomonas capsulata growing photosynthetically or heterotrophically under low oxygen tensions , 2004, Archives of Microbiology.
[12] K. Sasikala,et al. Environmental regulation for optimal biomass yield and photoproduction of hydrogen by Rhodobacter sphaeroides O.U. 001 , 1991 .
[13] Shuichi Aiba,et al. Growth kinetics of photosynthetic microorganisms , 1982 .
[14] H. Gest,et al. H2 metabolism in the photosynthetic bacterium Rhodopseudomonas capsulata: H2 production by growing cultures , 1977, Journal of bacteriology.
[15] Y. Jouanneau,et al. Stimulation by light of nitrogenase synthesis in cells of Rhodopseudomonas capsulata growing in N-limited continuous cultures , 1985 .
[16] Eddie G. Baker,et al. Chemical processing in high-pressure aqueous environments. 2. Development of catalysts for gasification , 1993 .
[17] Jacques Monod,et al. LA TECHNIQUE DE CULTURE CONTINUE THÉORIE ET APPLICATIONS , 1978 .
[18] J. Dumesic,et al. Hydrogen from catalytic reforming of biomass-derived hydrocarbons in liquid water , 2002, Nature.
[19] J. Meyer,et al. Effect of light nitrogenase function and synthesis in Rhodopseudomonas capsulata , 1978, Journal of bacteriology.
[20] Harun Koku,et al. Kinetics of biological hydrogen production by the photosynthetic bacterium Rhodobacter sphaeroides O.U. 001 , 2003 .
[21] J. Miyake,et al. Photoproduction of hydrogen from glucose by a co-culture of a photosynthetic bacterium and Clostridium butyricum , 1984 .
[22] J. Monod,et al. Thetechnique of continuous culture. , 1950 .
[23] Trevor Platt,et al. Mathematical formulation of the relationship between photosynthesis and light for phytoplankton , 1976 .
[24] W. R. Sistrom. Observations on the relationship between the formation of photopigments and the synthesis of protein in Rhodopseudomonas spheroides. , 1962, Journal of general microbiology.