By Bruno Robert (Eds.)
Artificial Photosynthesis, the most recent version in the Advances in Botanical Research sequence, which publishes in-depth and up to date studies on a variety of themes within the plant sciences gains a number of experiences by means of famous specialists on all facets of plant genetics, biochemistry, phone biology, molecular biology, body structure, and ecology.
- Publishes in-depth and up to date reports on quite a lot of subject matters in plant sciences
- Presents the newest details on synthetic photosynthesis
- Features a variety of reports by way of well-known specialists on all elements of plant genetics, biochemistry, mobilephone biology, molecular biology, body structure, and ecology
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Extra info for Artificial Photosynthesis
Photosynthetic organisms, and especially those doing aerobic photosynthesis, face similar dangers. Visible and ultraviolet photon energy is high, relative to the energy of chemical bonds, and the production of reactive oxygen species during photosynthesis can harm or kill the organism. Consequently, photosynthetic organisms have evolved control mechanisms, photoprotective systems and repair mechanisms to limit such damage. It seems likely that if organic or metaleorganic molecules are to be used for artiﬁcial photosynthesis, they will need photoprotection as well.
Finally, the enzyme ATP synthase allows protons to ﬂow back across the membrane, down the thermodynamic gradient, driving the release of ATP (adenosine triphosphate) formed from adenosine diphosphate and inorganic phosphate. The ATP is an energyrich molecule that ﬁlls the majority of the energy needs of the bacterium. Thus, ATP is a fuel that powers the organism, and its generation requires energy stored as a transmembrane pmf. , 1997). The artiﬁcial transmembrane proton pump comprises caroteneeporphyrinequinone triad 25 and lipidsoluble quinone 26 (Fig.
Intramolecular photoinduced electron transfer reactions of porphyrins. In K. M. Kadish, K. M. Smith, & R. ), The porphyrin handbook (Vol. 8, pp. 153e190). New York: Academic Press. , Moore, T. , Bensasson, R. , Land, E. , Chachaty, C. … Nemeth, G. A. (1985). Stereodynamics of intramolecular triplet energy transfer in carotenoporphyrins. Journal of the American Chemical Society, 107, 3631e3640. , Moore, T. , Moore, A. , Liddell, P. , Hermant, R. M. … Gouni, I. (1992). Triplet and singlet energy transfer in carotene-porphyrin dyads: role of the linkage bonds.
Artificial Photosynthesis by Bruno Robert (Eds.)