cond-mat.mtrl-sciApr 28, 2026

Benchmarking bandgap prediction in semiconductors under experimental and realistic evaluation settings

Authors: Haolin WangXianyuan LiuAnna JungbluthAlexandra J. RamadanRobert D. J. OliverHaiping Lu

Organizations: Centre for Machine Intelligence, University of Sheffield, Sheffield, S1 3JD, UK · School of Computer Science, University of Sheffield, Sheffield, S1 4DP, UK · Climate Office, European Space Agency, Harwell, OX11 0FD, UK · School of Mathematical and Physical Sciences, University of Sheffield, Sheffield, S3 7RH, UK · School of Chemical, Materials and Biological Engineering, University of Sheffield, Sheffield, S1 3JD, UK

Abstract

Accurate bandgap prediction is crucial for semiconductor applications, yet machine learning models trained on computational data often struggle to generalize to experimental bandgap measurements. Challenges related to data fidelity, domain generalization, and model interpretability remain insufficiently addressed in existing evaluation frameworks. To bridge this gap, we introduce RealMat-BaG, a benchmark for assessing model reliability under experimentally relevant conditions. We curate an open-access dataset of experimental bandgaps with aligned crystal structures and compare graph neural networks as well as classical machine learning baselines. Our framework evaluates performance across statistical and domain-based splits, examines transfer from DFT-computed to experimental bandgaps, and analyzes interpretability at both elemental-property and structural levels. Our results reveal the fundamental generalization limitations of current bandgap prediction models and establish a benchmark aligned with experimental measurements for developing more reliable learning strategies for materials discovery.

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