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Room temperature exciton-polariton neural network with perovskite crystal

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arxiv 2412.10865 v1 pith:VJJEJG6A submitted 2024-12-14 physics.optics cond-mat.dis-nncond-mat.mtrl-scicond-mat.quant-gas

classification physics.opticscond-mat.dis-nncond-mat.mtrl-scicond-mat.quant-gas
keywords neuralopticalapplicationscomputingexciton-polaritonnetworknetworksperovskite
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Limitations of electronics have stimulated the search for novel unconventional computing platforms that enable energy-efficient and ultra-fast information processing. Among various systems, exciton-polaritons stand out as promising candidates for the realization of optical neuromorphic devices. This is due to their unique hybrid light-matter properties, resulting in strong optical nonlinearity and excellent transport capabilities. However, previous implementations of polariton neural networks have been restricted to cryogenic temperatures, limiting their practical applications. In this work, using non-equillibrium Bose-Einstein condensation in a monocrystalline perovskite waveguide, we demonstrate the first room-temperature exciton-polariton neural network. Its performance is verified in various machine learning tasks, including binary classification, and object detection. Our result is a crucial milestone in the development of practical applications of polariton neural networks and provides new perspectives for optical computing accelerators based on perovskites.

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  1. Polaritonic Machine Learning for Graph-based Data Analysis

    cond-mat.dis-nn 2025-07 conditional novelty 6.0 of 10

    Simulated polariton condensate lattices act as physics-based feature generators for CNNs and improve classification of cliques and asymmetries in point clouds over raw point images in three synthetic tasks.

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