Transport Modeling of Locally Photogenerated Excitons in Halide Perovskites

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Abstract

Excitons have fundamental impacts on optoelectronic properties of semiconductors. Halide perovskites, with long carrier lifetimes and ionic crystal structures, may support highly mobile excitons because the dipolar nature of excitons suppresses phonon scattering. Inspired by recent experimental progress, we perform device modeling to rigorously analyze exciton formation and transport in methylammonium lead triiodide under local photoexcitation by using a finite element method. Mobile excitons, coexisting with free carriers, can dominate photocurrent generation at low temperatures. The simulation results are in excellent agreement with the experimentally observed strong temperature and gate dependence of carrier diffusion. This work signifies that efficient exciton transport can substantially influence charge transport in the family of perovskite materials.

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0301 basic medicine, 03 medical and health sciences, 02 engineering and technology, 0210 nano-technology

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1

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Journal of Physical Chemistry Letters

Volume

12

Issue

16

Start Page

3951

End Page

3959
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