Numerical solution of the Lindblad master equation using the Runge-Kutta method implemented in Python

Fuente: arXiv
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Autori principali: Sánchez, Leonardi Hernández, Garay, Iván Alejandro Bocanegra, Rosas, Ariel Flores, Prieto, Irán Ramos, Eguibar, Francisco Soto, Cessa, Héctor Manuel Moya
Natura: Preprint
Pubblicazione: 2025
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author Sánchez, Leonardi Hernández
Garay, Iván Alejandro Bocanegra
Rosas, Ariel Flores
Prieto, Irán Ramos
Eguibar, Francisco Soto
Cessa, Héctor Manuel Moya
author_facet Sánchez, Leonardi Hernández
Garay, Iván Alejandro Bocanegra
Rosas, Ariel Flores
Prieto, Irán Ramos
Eguibar, Francisco Soto
Cessa, Héctor Manuel Moya
contents The dynamics of open quantum systems is governed by the Lindblad master equation, which provides a consistent framework for incorporating environmental effects into the evolution of the system. Since exact solutions are rarely available, numerical methods become essential tools for analyzing such systems. This article presents a step-by-step implementation of the fourth-order Runge-Kutta method in Python to solve the Lindblad equation for a single quantized field mode subject to decay. A coherent state is used as the initial condition, and the time evolution of the average photon number is investigated. The proposed methodology enables transparent and customizable simulations of dissipative quantum dynamics, emphasizing a pedagogical approach that helps readers understand the numerical structure without relying on external libraries such as QuTiP. This standalone implementation offers full control over each integration step, making it particularly suitable for educational contexts and for exploring non-standard dynamics or introducing custom modifications to the Liouvillian.
format Preprint
id arxiv_https___arxiv_org_abs_2506_19238
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Numerical solution of the Lindblad master equation using the Runge-Kutta method implemented in Python
Sánchez, Leonardi Hernández
Garay, Iván Alejandro Bocanegra
Rosas, Ariel Flores
Prieto, Irán Ramos
Eguibar, Francisco Soto
Cessa, Héctor Manuel Moya
Optics
The dynamics of open quantum systems is governed by the Lindblad master equation, which provides a consistent framework for incorporating environmental effects into the evolution of the system. Since exact solutions are rarely available, numerical methods become essential tools for analyzing such systems. This article presents a step-by-step implementation of the fourth-order Runge-Kutta method in Python to solve the Lindblad equation for a single quantized field mode subject to decay. A coherent state is used as the initial condition, and the time evolution of the average photon number is investigated. The proposed methodology enables transparent and customizable simulations of dissipative quantum dynamics, emphasizing a pedagogical approach that helps readers understand the numerical structure without relying on external libraries such as QuTiP. This standalone implementation offers full control over each integration step, making it particularly suitable for educational contexts and for exploring non-standard dynamics or introducing custom modifications to the Liouvillian.
title Numerical solution of the Lindblad master equation using the Runge-Kutta method implemented in Python
topic Optics
url https://arxiv.org/abs/2506.19238