Chiral Intelligence: The Artificial Intelligence-Driven Future of Chiroptical Properties
Metadatos
Mostrar el registro completo del ítemAutor
Uceda, Rafael G.; Gijón, Alfonso; Míguez Lago, Sandra; Moreno Cruz, Carlos; Álvarez de Cienfuegos, Luis; Mota Ávila, Antonio José; Miguel Álvarez, Delia; Cuerva Carvajal, Juan ManuelEditorial
John Wiley & Sons, Ltd.
Fecha
2025-05-01Referencia bibliográfica
Uceda, R. G., Gijón, A., Míguez-Lago, S., Cruz, C. M., Álvarez de Cienfuegos, L., Mota, A. J., Miguel, D., & Cuerva, J. M. (2025). Chiral intelligence: The artificial intelligence‐driven future of chiroptical properties. ChemPhotoChem, 9(7). https://doi.org/10.1002/cptc.202500079
Patrocinador
MICIU/AEI/10.13039/50110001103 - ERDF/EU (Grants PID2023-146801NB-C31, PID2022-137403NA-I00 and FPU contract: FPU20/03582); MICIU/AEI/10.13039/501100011033 - ESF+ (grant RYC2023-044652-I); Universidad de Granada / CBUAResumen
Chirality plays a fundamental role in molecular sciences, with chiroptical properties offering valuable insights into the interaction between chiral molecules and polarized light. Designing chiral materials with enhanced properties requires a deep understanding of underlying physical principles, often revealed only through large datasets. In this context, artificial intelligence (AI) emerges as a powerful tool for accelerating discovery and optimization, efficiently exploring vast chemical spaces. This work explores the synergy between AI and chiroptical properties, highlighting recent advances in data-driven approaches for circular dichroism and circularly polarized luminescence. AI has demonstrated its ability to predict these phenomena accurately while uncovering structure–property relationships that can remain hidden under traditional methods. Various strategies are examined for integrating AI into chiroptical properties and the challenges and future directions of this field are discussed. In conclusion, combining chemical intuition with AI offers great potential for the rational design of next-generation chiral materials. This integration not only promises to unlock novel compounds with enhanced chiroptical properties but also provides new opportunities to deepen our understanding of chiroptical phenomena.





