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February 2, 2026JACOW0 citationsOpen Access

Density functional theory approach for calculating electronic band structure parameters for Monte Carlo simulations of photoemission

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JMJoniel MendezJCJohn CallahanLCLuca Cultrera

Key Points

  • To develop a method for calculating electronic band structure parameters using Density Functional Theory for photoemission simulations.
  • Applied Density Functional Theory to calculate band structure parameters.
  • Investigated the effects of lattice strain and temperature on electronic properties.
  • Explored modifications in heavily p-doped semiconductors and novel materials.
  • Established a reliable framework for calculating band structure parameters.
  • Demonstrated significant effects of lattice strain and temperature on electron transport.
  • Identified potential for optimizing photocathode materials through calculated parameters.

Abstract

Monte Carlo simulations are a powerful tool for modeling photoemission from photocathodes, enabling the prediction of key parameters such as quantum efficiency, mean transverse energy, electron spin polarization, and photocathode response time. However, these simulations require material band structure parameters, which are not always available from experiments. This work aims to establish a reliable framework for calculating electronic band structure parameters using Density Functional Theory (DFT). Specifically, we apply this framework to investigate the effects of lattice strain and temperature on the electronic band structure and electron transport in GaAs. This approach will be further extended to explore band structure modifications in heavily p-doped semiconductors and to calculate electronic band structures of novel spin-polarized photocathode materials.

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Cite This Study

Mendez et al. (2026) studied this question.

synapsesocial.com/papers/6980fd18c1c9540dea80ed45https://doi.org/10.18429/jacow-napac2025-tup030
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