Hawking radiation from acoustic black holes in hydrodynamic flow of electrons

被引:2
作者
Dave, Shreyansh S. [1 ]
Ganguly, Oindrila [2 ]
Saumia, P. S. [3 ]
Srivastava, Ajit M. [4 ,5 ]
机构
[1] Tata Inst Fundamental Res, Dept Nucl & Atom Phys, Mumbai 400005, India
[2] Indian Inst Sci, Dept Phys, Bengaluru 560012, India
[3] JINR, Bogoliubov Lab Theoret Phys, Dubna 141980, Russia
[4] Inst Phys, Bhubaneswar 751005, India
[5] Homi Bhabha Natl Inst, Training Sch Complex, Mumbai 400085, India
关键词
ANALOG;
D O I
10.1209/0295-5075/ac8d71
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Acoustic black holes are formed when a fluid flowing with subsonic velocities acceler-ates and becomes supersonic. When the flow is directed from the subsonic to supersonic region, the surface on which the normal component of fluid velocity equals the local speed of sound acts as an acoustic horizon. This is because no acoustic perturbation from the supersonic region can cross it to reach the subsonic part of the fluid. One can show that if the fluid velocity is locally irrotational, the field equations for acoustic perturbations of the velocity potential are identical to that of a massless scalar field propagating in a black hole background. One, therefore, expects Hawking radiation in the form of a thermal spectrum of phonons. There have been numerous investigations of this possibility, theoretically, as well as experimentally, in systems ranging from cold atom systems to quark-gluon plasma formed in relativistic heavy-ion collisions. Here we in-vestigate this possibility in the hydrodynamic flow of electrons. The resulting Hawking radiation in this case should be observable in terms of current fluctuations. Further, current fluctuations on both sides of the acoustic horizon should show correlations expected for pairs of Hawking particles.Copyright (c) 2022 EPLA
引用
收藏
页数:8
相关论文
共 38 条
[1]   Supersonic velocities in noncommutative acoustic black holes [J].
Anacleto, M. A. ;
Brito, F. A. ;
Passos, E. .
PHYSICAL REVIEW D, 2012, 85 (02)
[2]   Acoustic black holes from Abelian Higgs model with Lorentz symmetry breaking [J].
Anacleto, M. A. ;
Brito, F. A. ;
Passos, E. .
PHYSICS LETTERS B, 2010, 694 (02) :149-157
[3]   Fluidity onset in graphene [J].
Bandurin, Denis A. ;
Shytov, Andrey V. ;
Levitov, Leonid S. ;
Kumar, Roshan Krishna ;
Berdyugin, Alexey I. ;
Ben Shalom, Moshe ;
Grigorieva, Irina V. ;
Geim, Andre K. ;
Falkovich, Gregory .
NATURE COMMUNICATIONS, 2018, 9
[4]   Towards the observation of Hawking radiation in Bose-Einstein condensates [J].
Barceló, C ;
Liberati, S ;
Visser, M .
INTERNATIONAL JOURNAL OF MODERN PHYSICS A, 2003, 18 (21) :3735-3745
[5]  
Barceló C, 2005, LIVING REV RELATIV, V8, DOI [10.12942/lrr-2005-12, 10.12942/lrr-2011-3]
[6]   Stimulated Hawking emission from electromagnetic analogue black hole: Theory and observation [J].
Bera, Avijit ;
Ghosh, Subir .
PHYSICAL REVIEW D, 2020, 101 (10)
[7]   Relativistic acoustic geometry [J].
Bilic, N .
CLASSICAL AND QUANTUM GRAVITY, 1999, 16 (12) :3953-3964
[8]   Analogue gravity on a superconducting chip [J].
Blencowe, Miles P. ;
Wang, Hui .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2020, 378 (2177)
[9]   Numerical observation of Hawking radiation from acoustic black holes in atomic Bose-Einstein condensates [J].
Carusotto, Iacopo ;
Fagnocchi, Serena ;
Recati, Alessio ;
Balbinot, Roberto ;
Fabbri, Alessandro .
NEW JOURNAL OF PHYSICS, 2008, 10
[10]   Hawking radiation from acoustic black holes in relativistic heavy ion collisions [J].
Das, Arpan ;
Dave, Shreyansh S. ;
Ganguly, Oindrila ;
Srivastava, Ajit M. .
PHYSICS LETTERS B, 2021, 817