Transient photocurrent and optical absorption of disordered thin-film semiconductors: In-depth injection and nonlinear response.

J Chem Phys

Graduate School of Science and Technology, Niigata University, 2-8050, Ikarashi, Nishi-Ku, Niigata 950-2181, Japan.

Published: March 2023

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Article Abstract

The time-of-flight method is a fundamental approach for characterizing the transport properties of semiconductors. Recently, the transient photocurrent and optical absorption kinetics have been simultaneously measured for thin films; pulsed-light excitation of thin films should give rise to non-negligible in-depth carrier injection. Yet, the effects of in-depth carrier injection on the transient currents and optical absorption have not yet been elucidated theoretically. Here, by considering the in-depth carrier injection in simulations, we found a 1/t initial time (t) dependence rather than the conventional 1/t dependence under a weak external electric field, where α < 1 is the index of dispersive diffusion. The asymptotic transient currents are not influenced by the initial in-depth carrier injection and follow the conventional 1/t time dependence. We also present the relation between the field-dependent mobility coefficient and the diffusion coefficient when the transport is dispersive. The field dependence of the transport coefficients influences the transit time in the photocurrent kinetics dividing two power-law decay regimes. The classical Scher-Montroll theory predicts that a + a = 2 when the initial photocurrent decay is given by 1/t and the asymptotic photocurrent decay is given by 1/t . The results shed light on the interpretation of the power-law exponent of 1/t when a + a ≠ 2.

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http://dx.doi.org/10.1063/5.0143683DOI Listing

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