Download Artificial Photosynthesis by Bruno Robert (Eds.) PDF

By Bruno Robert (Eds.)

Artificial Photosynthesis, the most recent version in the Advances in Botanical Research sequence, which publishes in-depth and updated stories on a variety of themes within the plant sciences positive factors a number of experiences through famous specialists on all facets 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 a variety of experiences by way of famous specialists on all facets of plant genetics, biochemistry, mobile biology, molecular biology, body structure, and ecology

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Extra info for Artificial Photosynthesis

Sample text

A newly discovered strain is not enough to decide between these two categories because of the existence of retinal proteins (ie, rhodopsins) with either a sensing function or a function in proton pumping (ie, photosynthetic energy transduction). In photosynthesis of types A and B, light energy is converted into the free energy of hydrolysis of ATP only, via formation of a proton gradient as the high intermediate. The capacity to form NAD(P)H in these organisms is limited as this has to proceed via the so-called ‘reversed electron transfer’, driven also by the energy from the proton gradient (Mitchell, 1957).

The energy generated by the flow of protons through enzyme ATP synthase from the low-pH side of the membrane to the high-pH side is used to produce the ATP. This enzyme was coupled with the artificial proton pump to produce a complete system for the generation of ATP using light energy (Fig. , 1998). The enzyme was incorporated vectorially into the liposomal membrane, and the proton pump system was added so that the proton pumping photocycle translocated hydrogen ions into the liposome, and the enzyme transported them back out of the enzyme, using the pmf to synthesize ATP from adenosine diphosphate and inorganic phosphate.

A simple artificial light-harvesting dyad as a model for excess energy dissipation in oxygenic photosynthesis. Proceedings of the National Academy of Sciences of the United States of America, 103, 5343e5348. , van Stokkum, I. H. , Keirstead, A. , Herrero, C. … Kennis, J. T. M. (2007). Energy transfer, excited-state deactivation, and exciplex formation in artificial caroteno-phthalocyanine light-harvesting antennas. Journal of Physical Chemistry B, 111, 6868e6877. 38 D. , Yum, J. , Augustynski, J.

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