Carrier Transport in Electrically-Driven Photonic Crystal Membrane Lasers

Fuente: arXiv
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Main Authors: Marchal, Mathias, Dimopoulos, Evangelos, Spiegelhauer, Kasper, Chatzaras, Nikolaos, Saldutti, Marco, Yvind, Kresten, Yu, Yi, Mørk, Jesper
Format: Preprint
Published: 2025
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_version_ 1866914055362445312
author Marchal, Mathias
Dimopoulos, Evangelos
Spiegelhauer, Kasper
Chatzaras, Nikolaos
Saldutti, Marco
Yvind, Kresten
Yu, Yi
Mørk, Jesper
author_facet Marchal, Mathias
Dimopoulos, Evangelos
Spiegelhauer, Kasper
Chatzaras, Nikolaos
Saldutti, Marco
Yvind, Kresten
Yu, Yi
Mørk, Jesper
contents We model carrier transport in photonic crystal lasers with lateral current injection through two-dimensional (2D) finite-volume simulations. Though such lasers can achieve ultra-low threshold currents, leakage paths reduce the carrier injection efficiency. The design is evaluated through its performance in terms of injection efficiency, internal quantum efficiency, and IV characteristics. Our model predicts the presence of unconventional leakage paths, explaining experimental observations of low injection efficiencies and enhanced spontaneous recombination at doping interfaces. Carrier leakage paths arise due to insufficient injection of holes into the active region, leading to an electric field that increases the energy barrier for electrons, thereby reducing the injection efficiency. The spatial profile of the p-doped region is shown to play a critical role in achieving a high electrical injection efficiency and low-threshold lasing. The model is an important step towards modelling and optimizing properties of 2D photonic crystal membrane lasers.
format Preprint
id arxiv_https___arxiv_org_abs_2506_19111
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Carrier Transport in Electrically-Driven Photonic Crystal Membrane Lasers
Marchal, Mathias
Dimopoulos, Evangelos
Spiegelhauer, Kasper
Chatzaras, Nikolaos
Saldutti, Marco
Yvind, Kresten
Yu, Yi
Mørk, Jesper
Optics
We model carrier transport in photonic crystal lasers with lateral current injection through two-dimensional (2D) finite-volume simulations. Though such lasers can achieve ultra-low threshold currents, leakage paths reduce the carrier injection efficiency. The design is evaluated through its performance in terms of injection efficiency, internal quantum efficiency, and IV characteristics. Our model predicts the presence of unconventional leakage paths, explaining experimental observations of low injection efficiencies and enhanced spontaneous recombination at doping interfaces. Carrier leakage paths arise due to insufficient injection of holes into the active region, leading to an electric field that increases the energy barrier for electrons, thereby reducing the injection efficiency. The spatial profile of the p-doped region is shown to play a critical role in achieving a high electrical injection efficiency and low-threshold lasing. The model is an important step towards modelling and optimizing properties of 2D photonic crystal membrane lasers.
title Carrier Transport in Electrically-Driven Photonic Crystal Membrane Lasers
topic Optics
url https://arxiv.org/abs/2506.19111