Steady-state photoconductivity and multi-particle interactions in rubrene single crystals
arXiv:1501.07643 · doi:10.1038/srep15323
Abstract
We demonstrate that photoconductivity of pristine rubrene crystals exhibits several distinct regimes, in which photocurrent as a function of cw (continuous wave) excitation intensity is described by a power law with exponents sequentially taking values 1, 1/3 and 1/4. We show that this photocurrent is generated almost exclusively at the surface of pristine rubrene crystals, while the bulk photocurrent is dramatically smaller and follows a different set of exponents, 1 and 1/2. A model based on exciton fission, fusion and triplet-charge quenching is developed to describe these non-trivial effects in photoconductivity of highly ordered organic semiconductors.
15 pages, 3 figures, plus supplementary materials
References in corpus (1)
Cited by in corpus (3)
- Giant superlinear power dependence of photocurrent based on layered TaNiS photodetector
- Highly efficient rubrene-graphene charge transfer interfaces as phototransistors in the visible regime
- Experimental demonstration of correlated flux scaling in photoconductivity and photoluminescence of lead-halide perovskites