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Ruichen Liu

Publications and source records attributed to Ruichen Liu.

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V2Rho-FNO: Fourier Neural Operator for Electronic Density Prediction

Density functional theory (DFT) is a cornerstone of computational chemistry and materials science, but its computational cost limits its use in large-scale and high-throughput applications. While machine learning has accelerated energy prediction for specific molecular classes, transferable prediction of electron density across diverse chemical spaces remains challenging. Here, we present a universal framework based on Fourier Neural Operators (FNOs) that directly learns the mapping from external potentials to electron density distributions. Unlike conventional approaches that rely on explicit atomic orbitals, basis sets, or handcrafted descriptors, the proposed method captures global electronic interactions and long-range correlations through operator learning in the spatial-frequency domain. Trained on datasets spanning multiple elements and molecular geometries, the model achieves zero-shot generalization to entirely unseen molecular systems and accurately predicts their electron densities without retraining. This transferability arises from the intrinsic ability of FNOs to represent global structure in continuous fields. Our work establishes neural operator learning as a promising route for fast, accurate, and transferable electronic structure prediction, with potential applications in high-throughput screening and chemical space exploration.

physics.chem-ph

GPU-Accelerated Monte Carlo Simulation and Experimental Study of Radiative Transfer in Multiple Scattering Media

Addressing the problem of photon multiple scattering interference caused by turbid media in optical measurements, biomedical imaging, environmental monitoring and other fields, existing Monte Carlo light scattering simulations widely adopt the Henyey-Greenstein (H-G) phase function approximation model. However, traditional computational resource limitations and high numerical complexity have constrained the application of precise scattering models. Moreover, the single-parameter anisotropy factor assumption neglects higher-order scattering effects and backscattering intensity, failing to accurately characterize the multi-order scattering properties of complex media. To address these issues, we propose a GPU-accelerated Monte Carlo-Rigorous Mie scattering transport model for complex scattering environments. The model employs rigorous Mie scattering theory to replace the H-G approximation, achieving efficient parallel processing of phase function sampling and complex scattering processes through pre-computed cumulative distribution function optimization and deep integration with CUDA parallel architecture. To validate the model accuracy, a standard scattering experimental platform based on 5{\mu}m polystyrene microspheres was established, with multiple optical depth experimental conditions designed, and spatial registration techniques employed to achieve precise alignment between simulation and experimental images. The research results quantitatively demonstrate the systematic accuracy advantages of rigorous Mie scattering phase functions over H-G approximation in simulating lateral scattering light intensity distributions, providing reliable theoretical foundations and technical support for high-precision optical applications in complex scattering environments.

physics.optics