1997
DOI: 10.1103/physrevb.56.1876
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Intensity-dependent relaxation dynamics and the nature of the excited-state species in solid-state conducting polymers

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Cited by 86 publications
(81 citation statements)
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“…44 The 625 nm SE data at the same excitation fluences are shown in Figure 7 (b) (same data as in Figure 6 (a) but scaled to the same value at time zero). The change in PA dynamics at early times with intensity is in agreement with the ideas of McBranch and co-workers that a portion of the PA results from the byproducts of E-EA [40][41][42] or of excitonic interactions with intrinsic defects. 44 What is also clear from the figure, however, is that the PA and SE dynamics do not agree with each other, even at low intensities.…”
Section: Role Of Film Morphology In Exciton-exciton Annihilationsupporting
confidence: 90%
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“…44 The 625 nm SE data at the same excitation fluences are shown in Figure 7 (b) (same data as in Figure 6 (a) but scaled to the same value at time zero). The change in PA dynamics at early times with intensity is in agreement with the ideas of McBranch and co-workers that a portion of the PA results from the byproducts of E-EA [40][41][42] or of excitonic interactions with intrinsic defects. 44 What is also clear from the figure, however, is that the PA and SE dynamics do not agree with each other, even at low intensities.…”
Section: Role Of Film Morphology In Exciton-exciton Annihilationsupporting
confidence: 90%
“…These results are in accord with previous work on exciton-exciton (bimolecular) annihilation. 40,41,[43][44][45][48][49][50] The increasing SE decay rate with increasing excitation density also resembles that expected from amplified spontaneous emission. 69,71,73 The data presented here, however, used excitation fluences nearly 2 orders of magnitude lower than those previously reported for the observation of line narrowing in MEH-PPV films.…”
Section: Role Of Film Morphology In Exciton-exciton Annihilationmentioning
confidence: 89%
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