A Global Spacetime Optimization Approach to the Real-Space Time-Dependent Schrödinger Equation

Fuente: arXiv
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Main Authors: Hou, Enze, Liu, Yuzhi, Zhang, Linxuan, Ye, Difa, Wang, Lei, Wang, Han
Format: Preprint
Published: 2025
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author Hou, Enze
Liu, Yuzhi
Zhang, Linxuan
Ye, Difa
Wang, Lei
Wang, Han
author_facet Hou, Enze
Liu, Yuzhi
Zhang, Linxuan
Ye, Difa
Wang, Lei
Wang, Han
contents The time-dependent Schrödinger equation (TDSE) in real space is fundamental to understanding the dynamics of many-electron quantum systems, with applications ranging from quantum chemistry to condensed matter physics and materials science. However, solving the TDSE for complex fermionic systems remains a significant challenge, particularly due to the need to capture the time-evolving many-body correlations, while the antisymmetric nature of fermionic wavefunctions complicates the function space in which these solutions must be represented. We propose a general-purpose neural network framework for solving the real-space TDSE, Fermionic Antisymmetric Spatio-Temporal Network, which treats time as an explicit input alongside spatial coordinates, enabling a unified spatiotemporal representation of complex, antisymmetric wavefunctions for fermionic systems. This approach formulates the TDSE as a global optimization problem, avoiding step-by-step propagation and supporting highly parallelizable training. The method is demonstrated on five benchmark problems, achieving excellent agreement with reference solutions across all cases. These results demonstrate the method's accuracy and flexibility within the bound-state manifold across various dimensions and interaction regimes. While the current localized Ansatz inherently restricts the description of extensive ionization and continuum states, the method demonstrates the capability to stably simulate coherent multi-electron dynamics over extended time windows. Our framework offers a highly expressive alternative to traditional basis-dependent or mean-field methods, opening new possibilities for ab initio simulations of time-dependent quantum systems, with applications in quantum dynamics, molecular control, and ultrafast spectroscopy.
format Preprint
id arxiv_https___arxiv_org_abs_2511_12983
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A Global Spacetime Optimization Approach to the Real-Space Time-Dependent Schrödinger Equation
Hou, Enze
Liu, Yuzhi
Zhang, Linxuan
Ye, Difa
Wang, Lei
Wang, Han
Quantum Physics
Disordered Systems and Neural Networks
Chemical Physics
Computational Physics
The time-dependent Schrödinger equation (TDSE) in real space is fundamental to understanding the dynamics of many-electron quantum systems, with applications ranging from quantum chemistry to condensed matter physics and materials science. However, solving the TDSE for complex fermionic systems remains a significant challenge, particularly due to the need to capture the time-evolving many-body correlations, while the antisymmetric nature of fermionic wavefunctions complicates the function space in which these solutions must be represented. We propose a general-purpose neural network framework for solving the real-space TDSE, Fermionic Antisymmetric Spatio-Temporal Network, which treats time as an explicit input alongside spatial coordinates, enabling a unified spatiotemporal representation of complex, antisymmetric wavefunctions for fermionic systems. This approach formulates the TDSE as a global optimization problem, avoiding step-by-step propagation and supporting highly parallelizable training. The method is demonstrated on five benchmark problems, achieving excellent agreement with reference solutions across all cases. These results demonstrate the method's accuracy and flexibility within the bound-state manifold across various dimensions and interaction regimes. While the current localized Ansatz inherently restricts the description of extensive ionization and continuum states, the method demonstrates the capability to stably simulate coherent multi-electron dynamics over extended time windows. Our framework offers a highly expressive alternative to traditional basis-dependent or mean-field methods, opening new possibilities for ab initio simulations of time-dependent quantum systems, with applications in quantum dynamics, molecular control, and ultrafast spectroscopy.
title A Global Spacetime Optimization Approach to the Real-Space Time-Dependent Schrödinger Equation
topic Quantum Physics
Disordered Systems and Neural Networks
Chemical Physics
Computational Physics
url https://arxiv.org/abs/2511.12983