Artificial Photosynthesis by Bruno Robert (Eds.)

By Bruno Robert (Eds.)

Artificial Photosynthesis, the newest variation in the Advances in Botanical Research sequence, which publishes in-depth and up to date experiences on quite a lot of themes within the plant sciences positive factors a number of studies by means of famous specialists on all points of plant genetics, biochemistry, mobile biology, molecular biology, body structure, and ecology.

  • Publishes in-depth and updated reports on quite a lot of issues in plant sciences
  • Presents the most recent info on man made photosynthesis
  • Features quite a lot of stories by way of well-known specialists on all features of plant genetics, biochemistry, telephone biology, molecular biology, body structure, and ecology

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Extra resources for Artificial Photosynthesis

Sample text

In bacterial photosynthesis, the hydroquinone diffuses to the next component of the apparatus, a proton pump called the cytochrome bc1 complex. This complex oxidizes the hydroquinone back to a quinone, using the energy released to translocate protons across the membrane and establish a proton concentration and charge imbalance (proton motive force, pmf). The oxidation process is ultimately driven, via various cytochrome redox relays, by the oxidized special pair, which becomes reduced to its initial state.

Nevertheless, a large fraction of the carbon (and oxygen) of this CO2 is converted into the multitude of molecules that jointly form biomass. Although Artificial Photosynthesis 49 only part of this biomass can be made available for human use, this is a very significant part. This is first and foremost because it provides us both directly and indirectly (ie, as feed for husbandry animals) with the food that we humans consume. Nevertheless, a significant second use of this fixed carbon is that it provides us with new, renewable (eg, construction) materials and with renewable energy.

73e82). New York: Academic Press. , Liddell, P. , Seely, G. R. … Gust, D. (1997). Structural effects on photoinduced electron transfer in carotenoid-porphyrinquinone triads. Journal of Physical Chemistry, 101, 429e440. , Liddell, P. , Moore, A. , Moore, T. , & Gust, D. (1998). Magnetic switching of charge separation lifetimes in artificial photosynthetic reaction centers. Journal of the American Chemical Society, 120, 10880e10886. Leland, B. , Joran, A. , Felker, P. , Hopfield, J. , Zewail, A. , & Dervan, P.

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