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Low-Scaling <i>GW</i> Algorithm Applied to Twisted Transition-Metal Dichalcogenide Heterobilayers

Maximilian Graml, Klaus Zollner, Daniel Hernangómez‐Pérez, Paulo E. Faria, Jan Wilhelm

2024Journal of Chemical Theory and Computation18 citationsDOIOpen Access PDF

Abstract

High Resolution Image Download MS PowerPoint Slide The GW method is widely used for calculating the electronic band structure of materials. The high computational cost of GW algorithms prohibits their application to many systems of interest. We present a periodic, low-scaling, and highly efficient GW algorithm that benefits from the locality of the Gaussian basis and the polarizability. The algorithm enables G 0 W 0 calculations on a MoSe 2 /WS 2 bilayer with 984 atoms per unit cell, in 42 h using 1536 cores. This is 4 orders of magnitude faster than a plane-wave G 0 W 0 algorithm, allowing for unprecedented computational studies of electronic excitations at the nanoscale.

Topics & Concepts

ScalingTransition metalAlgorithmComputer sciencePhysicsComputational scienceMaterials scienceNanotechnologyChemistryMathematicsGeometryBiochemistryCatalysis2D Materials and ApplicationsChalcogenide Semiconductor Thin FilmsPerovskite Materials and Applications
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