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    Matrix quantum kinetic treatment of impact ionization in avalanche photodiodes

    Sheikh Z. Ahmed*, Shafat Shahnewaz*, Samiran Ganguly, and Joe C. Campbell

    Avik W. Ghosh†

    • Department of Electrical and Computer Engineering, University of Virginia, Charlottesville, Virginia 22904, USA

    • *These authors contributed equally to this work.
    • †Contact author: ag7rq@virginia.edu

    Phys. Rev. B 112, 155207 – Published 15 October, 2025

    DOI: https://doi.org/10.1103/kjsq-bcj4

    Abstract

    Matrix-based quantum kinetic simulations have been widely used for the predictive modeling of electronic devices. Inelastic scattering from phonons and electrons are typically treated as higher-order processes in these treatments, captured using mean-field approximations. Carrier multiplication in avalanche photo-diodes (APDs), however, relies entirely on strongly inelastic impact ionization, making electron-electron scattering the dominant term requiring a rigorous, microscopic treatment. We go well beyond the conventional Born approximation for scattering to develop a matrix-based quantum kinetic theory for impact ionization, involving products of multiple Green's functions. Using a model semiconductor in a reverse-biased p-i-n configuration, we show how its calculated nonequilibrium charge distributions show multiplication at dead-space values consistent with energy-momentum conservation. Our matrix approach can be readily generalized to more sophisticated atomistic Hamiltonians, setting the stage for a fully predictive, first-principles theory of APDs.

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