Accelerated Dopant Screening in Oxide Semiconductors via Multi-Fidelity Contextual Bandits and a Three-Tier DFT Validation Funnel
Abhinaba Basu

TL;DR
This paper presents a multi-fidelity screening approach using contextual bandits to efficiently identify optimal doped oxide semiconductors, validated through a comprehensive DFT funnel and open benchmark release.
Contribution
It introduces a novel multi-fidelity strategy that significantly reduces computational costs in dopant screening and reveals key chemical dimensions governing dopant performance.
Findings
Identified Cu-containing co-doped ZnO as optimal for visible light absorption.
Reduced DFT evaluations by 81%, saving substantial computational resources.
Achieved 100% success in finding global optima in multiple trials.
Abstract
Band gap engineering of oxide semiconductors through doping is critical for photocatalysis and optoelectronics, yet the combinatorial space of dopant elements, substitution sites, and co-doping combinations far exceeds typical density functional theory (DFT) budgets. We screen doped candidates across five oxide hosts (ZnO, TiO2, SrTiO3, SnO2, MgO), culminating in a 529-candidate ZnO co-doping campaign, and identify Cu-containing co-doped ZnO systems as consistently achieving visible-light-range band gaps (1.0-1.8 eV), with Y2Cu2 co-doped ZnO as the optimal candidate (1.84 eV). A three-tier validation funnel (PBE, PBE+U, ionic relaxation) reveals that no single level of theory suffices: V-doped ZnO shifts from near-metallic to wide-gap upon Hubbard U correction, while Cu-doped SrTiO3 enters the visible-light window only after correcting for d-electron localization. To make this…
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