Autonomous battery research: Principles of heuristic operando experimentation
Abstract
Unravelling the complex processes governing battery degradation is critical to the energy transition, yet the efficacy of operando characterisation is severely constrained by a lack of Reliability, Representativeness, and Reproducibility (the 3Rs). Current methods rely on bespoke hardware and passive, pre-programmed methodologies that are ill-equipped to capture stochastic failure events. Here, using the Rutherford Appleton Laboratory's multi-modal toolkit as a case study, we expose the systemic inability of conventional experiments to capture transient phenomena like dendrite initiation. To address this, we propose Heuristic Operando experiments: a framework where an AI pilot leverages physics-based digital twins to actively steer the beamline to predict and deterministically capture these rare events. Distinct from uncertainty-driven active learning, this proactive search anticipates failure precursors, redefining experimental efficiency via an entropy-based metric that prioritises scientific insight per photon, neutron, or muon. By focusing measurements only on mechanistically decisive moments, this framework simultaneously mitigates beam damage and drastically reduces data redundancy. When integrated with FAIR data principles, this approach serves as a blueprint for the trusted autonomous battery laboratories of the future.
Keywords
Cite
@article{arxiv.2601.00851,
title = {Autonomous battery research: Principles of heuristic operando experimentation},
author = {Emily Lu and Gabriel Perez and Peter Baker and Daniel Irving and Santosh Kumar and Veronica Celorrio and Sylvia Britto and Thomas F. Headen and Miguel Gomez-Gonzalez and Connor Wright and Calum Green and Robert Scott Young and Oleg Kirichek and Ali Mortazavi and Sarah Day and Isabel Antony and Zoe Wright and Thomas Wood and Tim Snow and Jeyan Thiyagalingam and Paul Quinn and Martin Owen Jones and William David and James Le Houx},
journal= {arXiv preprint arXiv:2601.00851},
year = {2026}
}
Comments
38 pages, 14 figures. Includes a detailed technical review of the POLARIS, BAM, DRIX, M-Series, and B18 electrochemical cells in the Supplementary Information