Combinatorial materials libraries provide a powerful platform for mapping how physical properties evolve across binary and ternary cross-sections of multicomponent phase diagrams. While synthesis of such libraries has advanced since the 1960s and been accelerated by laboratory automation, their broader utility depends on rapid, quantitative measurements of composition-dependent structures and functionalities. Scanning probe microscopies (SPM), including piezoresponse force microscopy (PFM), offer unique potential for providing these functionally relevant, spatially resolved readouts. Here, we demonstrate a fully automated SPM framework for exploring ferroelectric properties across combinatorial libraries, focusing on binary Sm-doped BiFeO3 (SmBFO) and ternary Al1−x−yScxByN (Al,Sc,B)N systems. In SmBFO, automated exploration identifies the known morphotropic phase boundary with enhanced ferroelectric response and reveals a previously unreported double-peak fine structure. In the (Al,Sc,B)N library, ferroelectric behavior emerges at the phase-stability boundary, correlating with variations in morphology and defect concentration. By integrating automated SPM with wavelength-dispersive spectroscopy (WDS) and photoluminescence mapping, we resolve the composition-morphology-defect-property relationships underlying ferroelectric response and demonstrate a pathway toward a multi-tool, high-throughput characterization platform. Finally, we implement Gaussian-process-based single- and multi-objective Bayesian optimization to enable autonomous exploration, highlighting the Pareto front as a powerful framework for balancing competing physical rewards and accelerating data-driven physics discovery.
@article{arxiv.2412.18067,
title = {Automated Materials Discovery Platform Realized: Scanning Probe Microscopy of Combinatorial Libraries},
author = {Yu Liu and Aditya Raghavan and Utkarsh Pratiush and Maxim Ziatdinov and Chih-Yu Lee and Rohit Pant and Ichiro Takeuchi and Pochun Hsieh and Albert Suceava and Edgar Dimitrov and Mauricio Terrones and Venkatraman Gopalan and Ian Mercer and R. Jackson Spurling and Jon-Paul Maria and Sergei V. Kalinin},
journal= {arXiv preprint arXiv:2412.18067},
year = {2025}
}