Transfer of Quantum States and Stationary Quantum Correlations in a Hybrid Optomechanical Network

被引:2
作者
Molinares, Hugo [1 ]
He, Bing [2 ]
Eremeev, Vitalie [3 ,4 ]
机构
[1] Univ La Frontera, Dept Ciencias Fis, Casilla 54-D, Temuco 4780000, Chile
[2] Univ Mayor, Ctr Opt Informac Cuant, Camino La Piramide 5750, Huechuraba 8580745, Chile
[3] Univ Diego Portales, Fac Ingn & Ciencias, Inst Ciencias Bas, Ave Ejercito 441, Santiago 8370109, Chile
[4] Inst Appl Phys, Academiei 5, Kishinev MD-2028, Moldova
关键词
optomechanical network; mechanical oscillator; squeezing; entanglement; transfer and synchronization of quantum state; SQUEEZED STATES; ENTANGLEMENT; OSCILLATOR; DYNAMICS;
D O I
10.3390/math11132790
中图分类号
O1 [数学];
学科分类号
0701 ; 070101 ;
摘要
We present a systematic study on the effects of dynamical transfer and steady-state synchronization of quantum states in a hybrid optomechanical network consisting of two cavities, which carry atoms inside and interact via a common moving mirror such as the mechanical oscillator. It is found that a high fidelity transfer of Schrodinger's cat and squeezed states between two cavities modes is possible. On the other hand, we demonstrate the synchronization effect of the cavity modes in a steady squeezed state with its high fidelity realized by the mechanical oscillator that intermediates the generation, transfer and stabilization of the squeezing. In this framework, we also study the generation and evolution of bipartite and tripartite entanglement and find its connection to the effects of quantum state transfer and synchronization. Particularly, when the transfer occurs at the maximal fidelity, any entanglement is almost zero, so the different cavity modes are disentangled. However, these modes become entangled when the two bosonic modes are synchronized in a stationary squeezed state. The results provided by the current study may find applications in quantum information technologies, in addition to the setups for metrology, where squeezed states are essential.
引用
收藏
页数:18
相关论文
共 67 条
[1]  
Aasi J, 2013, NAT PHOTONICS, V7, P613, DOI [10.1038/NPHOTON.2013.177, 10.1038/nphoton.2013.177]
[2]   Entanglement sharing: From qubits to Gaussian states [J].
Adesso, Gerardo ;
Illuminati, Fabrizio .
INTERNATIONAL JOURNAL OF QUANTUM INFORMATION, 2006, 4 (03) :383-393
[3]   Phase sensing beyond the standard quantum limit with a variation on the SU(1,1) interferometer [J].
Anderson, Brian E. ;
Gupta, Prasoon ;
Schmittberger, Bonnie L. ;
Horrom, Travis ;
Hermann-Avigliano, Carla ;
Jones, Kevin M. ;
Lett, Paul D. .
OPTICA, 2017, 4 (07) :752-756
[4]   Large distance continuous variable communication with concatenated swaps [J].
Asjad, Muhammad ;
Zippilli, Stefano ;
Tombesi, Paolo ;
Vitali, David .
PHYSICA SCRIPTA, 2015, 90 (07)
[5]   Cavity optomechanics [J].
Aspelmeyer, Markus ;
Kippenberg, Tobias J. ;
Marquardt, Florian .
REVIEWS OF MODERN PHYSICS, 2014, 86 (04) :1391-1452
[6]   Engineering of strong mechanical squeezing via the joint effect between Duffing nonlinearity and parametric pump driving [J].
Bai, Cheng-Hua ;
Wang, Dong-Yang ;
Zhang, Shou ;
Liu, Shutian ;
Wang, Hong-Fu .
PHOTONICS RESEARCH, 2019, 7 (11) :1229-1239
[7]   Quantum information with continuous variables [J].
Braunstein, SL ;
van Loock, P .
REVIEWS OF MODERN PHYSICS, 2005, 77 (02) :513-577
[8]   Algebraic theory of quantum synchronization and limit cycles under dissipation [J].
Buca, Berislav ;
Booker, Cameron ;
Jaksch, Dieter .
SCIPOST PHYSICS, 2022, 12 (03)
[9]   Estimation of an optomechanical parameter via weak-value amplification [J].
Carrasco, Sergio ;
Orszag, Miguel .
PHYSICAL REVIEW A, 2022, 105 (04)
[10]   Quantum optics and frontiers of physics: the third quantum revolution [J].
Celi, Alessio ;
Sanpera, Anna ;
Ahufinger, Veronica ;
Lewenstein, Maciej .
PHYSICA SCRIPTA, 2017, 92 (01)