Quantum Simulation of the Unruh Temperature via the Thermal Properties of Virtually Evolving Bose-Einstein Condensates

Fuente: arXiv
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Main Authors: Chorfi, Imad-Eddine, Belaloui, Nacer Eddine, Tounsi, Abdellah, Benslama, Achour, Rouabah, Mohamed Taha
Format: Preprint
Published: 2025
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author Chorfi, Imad-Eddine
Belaloui, Nacer Eddine
Tounsi, Abdellah
Benslama, Achour
Rouabah, Mohamed Taha
author_facet Chorfi, Imad-Eddine
Belaloui, Nacer Eddine
Tounsi, Abdellah
Benslama, Achour
Rouabah, Mohamed Taha
contents This paper presents a novel theoretical model to simulate the Unruh temperature by relating it to the critical temperature of multiple Bose-Einstein thermal baths. These thermal baths are conceptualized as snapshots of a Bose-Firework originating from an evolving driven Bose-Einstein condensate (BEC). The critical temperature of each snapshot is determined from the heat capacity, which is numerically estimated by calculating the partition function derived from the system's Hamiltonian. By analyzing the relationship between the average number of the phononic excitations at the critical temperature, acceleration, and the critical temperature itself, our model demonstrates a significant agreement with the Unruh temperature formula, thereby validating our hypothesis. This theoretical approach offers a cost-effective and time-efficient alternative to resource-intensive experimental simulations. Furthermore, it provides a unique perspective on quantum simulation by utilizing the critical phenomena of condensed matter systems to probe fundamental quantum relativistic effects.
format Preprint
id arxiv_https___arxiv_org_abs_2504_14685
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Simulation of the Unruh Temperature via the Thermal Properties of Virtually Evolving Bose-Einstein Condensates
Chorfi, Imad-Eddine
Belaloui, Nacer Eddine
Tounsi, Abdellah
Benslama, Achour
Rouabah, Mohamed Taha
Quantum Physics
Quantum Gases
This paper presents a novel theoretical model to simulate the Unruh temperature by relating it to the critical temperature of multiple Bose-Einstein thermal baths. These thermal baths are conceptualized as snapshots of a Bose-Firework originating from an evolving driven Bose-Einstein condensate (BEC). The critical temperature of each snapshot is determined from the heat capacity, which is numerically estimated by calculating the partition function derived from the system's Hamiltonian. By analyzing the relationship between the average number of the phononic excitations at the critical temperature, acceleration, and the critical temperature itself, our model demonstrates a significant agreement with the Unruh temperature formula, thereby validating our hypothesis. This theoretical approach offers a cost-effective and time-efficient alternative to resource-intensive experimental simulations. Furthermore, it provides a unique perspective on quantum simulation by utilizing the critical phenomena of condensed matter systems to probe fundamental quantum relativistic effects.
title Quantum Simulation of the Unruh Temperature via the Thermal Properties of Virtually Evolving Bose-Einstein Condensates
topic Quantum Physics
Quantum Gases
url https://arxiv.org/abs/2504.14685