scholarly journals Collective strong coupling between ion Coulomb crystals and an optical cavity field: Theory and experiment

2012 ◽  
Vol 85 (2) ◽  
Author(s):  
M. Albert ◽  
J. P. Marler ◽  
P. F. Herskind ◽  
A. Dantan ◽  
M. Drewsen
2009 ◽  
Vol 5 (7) ◽  
pp. 494-498 ◽  
Author(s):  
Peter F. Herskind ◽  
Aurélien Dantan ◽  
Joan P. Marler ◽  
Magnus Albert ◽  
Michael Drewsen

Nature ◽  
2009 ◽  
Vol 460 (7256) ◽  
pp. 724-727 ◽  
Author(s):  
Simon Gröblacher ◽  
Klemens Hammerer ◽  
Michael R. Vanner ◽  
Markus Aspelmeyer

2021 ◽  
Author(s):  
Kenji Hirai ◽  
Hiroto Ishikawa ◽  
Thibault Chervy ◽  
James Andell Hutchison ◽  
Hiroshi Uji-i

The coupling of (photo)chemical processes to optical cavity vacuum fields is an emerging method for modulating molecular and material properties. Recent reports have shown that strong coupling of the vibrational...


2014 ◽  
Vol 14 (11&12) ◽  
pp. 1014-1080 ◽  
Author(s):  
Stephen P. Jordan ◽  
Keith S. M. Lee ◽  
John Preskill

Quantum field theory provides the framework for the most fundamental physical theories to be confirmed experimentally and has enabled predictions of unprecedented precision. However, calculations of physical observables often require great computational complexity and can generally be performed only when the interaction strength is weak. A full understanding of the foundations and rich consequences of quantum field theory remains an outstanding challenge. We develop a quantum algorithm to compute relativistic scattering amplitudes in massive $\phi^4$ theory in spacetime of four and fewer dimensions. The algorithm runs in a time that is polynomial in the number of particles, their energy, and the desired precision, and applies at both weak and strong coupling. Thus, it offers exponential speedup over existing classical methods at high precision or strong coupling.


2020 ◽  
Vol 34 (06) ◽  
pp. 2050075
Author(s):  
Ren-Fei Zheng ◽  
Qi-Hui Jiang ◽  
Lu Zhou ◽  
Wei-Ping Zhang

We consider the model of a weakly driven optical cavity containing two clouds of atomic Bose–Einstein condensates (BECs). Nonclassical photon correlations and correlations between the two atomic BECs are investigated under different cavity conditions including strong atom-field coupling and bad cavity regime. We show that the nonlinear interatom collisional interactions in BEC leads to a significant loss of cavity light coherence. Various types of nonclassical properties are investigated such as sub-Poissonian statistics, antibunching and entanglement. We show that the entanglement can be generated between BECs and the cavity field. The time evolution of entanglement is also numerically studied.


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