Research paperTheoreticalComputational DFTExperimental CharacterizationAccurate and efficient simulation of photoemission spectroscopy via Kohn-Sham scattering statesGian Parusa, Sotirios Fragkos, Samuel Beaulieu, Michael Schüler2026·10.3390/nano12224040·arXiv:2601.12490AbstractWe introduce an efficient first-principles framework for simulating angle-resolved photoemission spectroscopy (ARPES) based on the direct computation of photoelectron states as solutions of the Kohn-Sham equation with scattering boundary conditions. While the one-step theory of photoemission has a long and successful history, existing implementations are often tied to specialized electronic-structure formalisms. Our approach is formally equivalent to the Lippmann-Schwinger formulation, and it is directly compatible with standard plane-wave and real-space density functional theory codes, enabling seamless integration with advanced exchange-correlation functionals and modern electronic-structure workflows. By providing explicit photoelectron wave functions, the method allows for a transparent analysis of matrix-element effects, multiple scattering, and experimental geometry. We demonstrate the accuracy and predictive power of the framework through circular-dichroism ARPES simulations for monolayer graphene and bulk 2H-WSe2, achieving excellent agreement with experimental data over a wide photon-energy range. Our results establish a robust and accessible route toward quantitative ARPES modeling, opening the door to systematic studies of orbital textures, many-body effects, and nonequilibrium phenomena within widely used ab initio platforms.Read more
Monolayer graphene used for CDAD/ARPES simulation near the K-point.No measurements recordedSimulated Supercell DftCStudied MaterialExpand
Bulk 2H-WSe₂ used for TRDAD/CDAD ARPES simulation.No measurements recordedSimulatedWSe₂Studied MaterialExpand
Research paperTheoreticalComputational DFTExperimental CharacterizationAccurate and efficient simulation of photoemission spectroscopy via Kohn-Sham scattering statesGian Parusa, Sotirios Fragkos, Samuel Beaulieu, Michael Schüler2026·10.3390/nano12224040·arXiv:2601.12490AbstractWe introduce an efficient first-principles framework for simulating angle-resolved photoemission spectroscopy (ARPES) based on the direct computation of photoelectron states as solutions of the Kohn-Sham equation with scattering boundary conditions. While the one-step theory of photoemission has a long and successful history, existing implementations are often tied to specialized electronic-structure formalisms. Our approach is formally equivalent to the Lippmann-Schwinger formulation, and it is directly compatible with standard plane-wave and real-space density functional theory codes, enabling seamless integration with advanced exchange-correlation functionals and modern electronic-structure workflows. By providing explicit photoelectron wave functions, the method allows for a transparent analysis of matrix-element effects, multiple scattering, and experimental geometry. We demonstrate the accuracy and predictive power of the framework through circular-dichroism ARPES simulations for monolayer graphene and bulk 2H-WSe2, achieving excellent agreement with experimental data over a wide photon-energy range. Our results establish a robust and accessible route toward quantitative ARPES modeling, opening the door to systematic studies of orbital textures, many-body effects, and nonequilibrium phenomena within widely used ab initio platforms.Read more
Monolayer graphene used for CDAD/ARPES simulation near the K-point.No measurements recordedSimulated Supercell DftCStudied MaterialExpand
Bulk 2H-WSe₂ used for TRDAD/CDAD ARPES simulation.No measurements recordedSimulatedWSe₂Studied MaterialExpand
Research paperTheoreticalComputational DFTExperimental CharacterizationAccurate and efficient simulation of photoemission spectroscopy via Kohn-Sham scattering statesGian Parusa, Sotirios Fragkos, Samuel Beaulieu, Michael Schüler2026·10.3390/nano12224040·arXiv:2601.12490AbstractWe introduce an efficient first-principles framework for simulating angle-resolved photoemission spectroscopy (ARPES) based on the direct computation of photoelectron states as solutions of the Kohn-Sham equation with scattering boundary conditions. While the one-step theory of photoemission has a long and successful history, existing implementations are often tied to specialized electronic-structure formalisms. Our approach is formally equivalent to the Lippmann-Schwinger formulation, and it is directly compatible with standard plane-wave and real-space density functional theory codes, enabling seamless integration with advanced exchange-correlation functionals and modern electronic-structure workflows. By providing explicit photoelectron wave functions, the method allows for a transparent analysis of matrix-element effects, multiple scattering, and experimental geometry. We demonstrate the accuracy and predictive power of the framework through circular-dichroism ARPES simulations for monolayer graphene and bulk 2H-WSe2, achieving excellent agreement with experimental data over a wide photon-energy range. Our results establish a robust and accessible route toward quantitative ARPES modeling, opening the door to systematic studies of orbital textures, many-body effects, and nonequilibrium phenomena within widely used ab initio platforms.Read more
Monolayer graphene used for CDAD/ARPES simulation near the K-point.No measurements recordedSimulated Supercell DftCStudied MaterialExpand
Bulk 2H-WSe₂ used for TRDAD/CDAD ARPES simulation.No measurements recordedSimulatedWSe₂Studied MaterialExpand
Research paperTheoreticalComputational DFTExperimental CharacterizationAccurate and efficient simulation of photoemission spectroscopy via Kohn-Sham scattering statesGian Parusa, Sotirios Fragkos, Samuel Beaulieu, Michael Schüler2026·10.3390/nano12224040·arXiv:2601.12490AbstractWe introduce an efficient first-principles framework for simulating angle-resolved photoemission spectroscopy (ARPES) based on the direct computation of photoelectron states as solutions of the Kohn-Sham equation with scattering boundary conditions. While the one-step theory of photoemission has a long and successful history, existing implementations are often tied to specialized electronic-structure formalisms. Our approach is formally equivalent to the Lippmann-Schwinger formulation, and it is directly compatible with standard plane-wave and real-space density functional theory codes, enabling seamless integration with advanced exchange-correlation functionals and modern electronic-structure workflows. By providing explicit photoelectron wave functions, the method allows for a transparent analysis of matrix-element effects, multiple scattering, and experimental geometry. We demonstrate the accuracy and predictive power of the framework through circular-dichroism ARPES simulations for monolayer graphene and bulk 2H-WSe2, achieving excellent agreement with experimental data over a wide photon-energy range. Our results establish a robust and accessible route toward quantitative ARPES modeling, opening the door to systematic studies of orbital textures, many-body effects, and nonequilibrium phenomena within widely used ab initio platforms.Read more
Monolayer graphene used for CDAD/ARPES simulation near the K-point.No measurements recordedSimulated Supercell DftCStudied MaterialExpand
Bulk 2H-WSe₂ used for TRDAD/CDAD ARPES simulation.No measurements recordedSimulatedWSe₂Studied MaterialExpand