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Absorption dissymmetry factor enhancement: A data-driven approach to unravel the synthesis knobs of chiral 2D perovskites
- Moral, Raphael F;
- Alghalayini, Maher B;
- Nurdillayeva, Raushan N;
- Lee, Do-Kyoung;
- Kodalle, Tim;
- Marchezi, Paulo E;
- Fenning, David P;
- Noack, Marcus M;
- Schwartz, Craig P;
- Sutter-Fella, Carolin M
Published Web Location
https://doi.org/10.1016/j.matt.2026.102676Abstract
Chiral 2D metal halide perovskites (MHPs) are promising for spin-optoelectronic applications, yet their absorption dissymmetry factor (g abs ) exhibits significant variability due to complex, co-dependent structural and experimental factors. We established a data-driven framework using Pearson’s correlation, ANOVA, and Gaussian process regression to identify and model key synthesis “knobs” governing these properties. The analysis revealed that solvent choice is the primary factor driving variability. For acetonitrile-based films, g abs was maximized by optimizing annealing temperature and film thickness. Conversely, films from higher boiling point solvents showed complex dependencies on annealing temperature, excitonic integral intensity, and film texture. These statistical correlations provide a roadmap for the rational design of high-performance chiral MHPs and establish a foundation for future machine learning-driven material exploration.
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