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Download Biological Events Probed by Ultrafast Laser Spectroscopy by R. R. Alfano PDF

By R. R. Alfano

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4. Exponential time dependence: r/τ, ( ί / τ ) , and ( ί / τ ) 1/2 1/3 dashed line, exp — ( ί / τ ) ; solid line, exp — ( ί / τ ) . 1 /3 Dotted line, exp - ( ί / τ ) , excitation intensity appear to be most readily described by a simple exponential decay. A r a n d o m diffusion of the excitation energy in a threedimensional system via Forster energy transfer mechanism does indeed 1/2 predict a t time behavior, however, it is generally agreed that the photosynthetic apparatus is best described by a two-dimensional model (Paillotin 1 /3 and Swenberg, 1979), and in this case a i dependence holds for Forster energy transfer (Nakashima and Yoshihara, 1980).

Dekker, N e w York. , and Vermeglio, A. (1975). Biochim. Biophys. Acta 396, 3 7 1 - 3 8 1 . Mauzerall, D . (1972). Proc. Natl. Acad. Sei. A. 69, 1358-1362. , and Takamiya, A. (1966). Biochim. Biophys. Acta 126, 2 3 4 - 2 4 3 . Murty, N . , Cederstrand, C , and Rabinowitch, E. (1965). Photochem. Photobiol. 4, 9 1 7 - 9 2 1 . Myers, J. (1971). Annu. Rev. Plant Physiol. 22,289-312. Myers, J. (1974). Plant Physiol. 54, 4 2 0 - 4 2 6 . , and Govindjee (1967). Biochim. Biophys. Acta 131, 173-178. Park, R.

1977) have measured the fluorescence lifetime in P S I and P S II preparations of spinach chloroplasts with single picosecond pulse excitation. The P S I fluorescence was found to be intensity-independent over 1 3 16 2 the range 5 χ 1 0 - 1 0 p h o t o n s / c m at r o o m temperature, with a 1/e time of 100 psec (λ > 650 nm). The P S II fluorescence, however, was found to be intensity-dependent with a, 1/e time of 500 psec (λ > 650 nm), for 2. TIME-RESOLVED FLUORESCENCE SPECTROSCOPY 41 FIG. 6.

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