Population transfer and quantum entanglement implemented in cold atoms involving two Rydberg states via an adiabatic passage

2015 ◽  
Vol 92 (6) ◽  
Author(s):  
Xue-Dong Tian ◽  
Yi-Mou Liu ◽  
Cui-Li Cui ◽  
Jin-Hui Wu
2014 ◽  
Vol 577 ◽  
pp. 112-115
Author(s):  
Xiao Qin Shu ◽  
Chi Deng ◽  
Ye Kuang ◽  
Jian Hui Yang ◽  
Yi Ding Liu

During the STIRAP process, the intermediate levels will have notable population which is detrimental if these levels could decay to other levels through spontaneous emission. Here, we propose a novel method which could reduce the intermediate level population during the STIRAP process. A complete population transfer could be achieved in this modified STIRAP even if the intermediate level could decay to other levels.


Author(s):  
M. Saadati-Niari ◽  
N. Shirkhanghah

We propose the use of Stark chirped rapid-adiabatic-passage (SCRAP) method to induce a complete population transfer in a nonlinear three-level Λ-type system (nl-SCRAP). We also use the nl-SCRAP method for creating stable diatomic ground molecular Bose-Einstein condensates (BECs) from atomic BECs. In this three-laser technique the pump and Stokes pulses are slightly detuned from transition frequencies, and a third strong hyperbolic-tangent laser pulse induces dynamic Stark shifts of the relevant transitions and compensates third order nonlinearities. If the timing of the three pulses is appropriately chosen, the nonlinear quantum system is prepared to almost complete population inversion between the two lower states in the Λ-like scheme. The paper shows that the efficiency of the nl-SCRAP is higher than the nonlinear stimulated Raman adiabatic passage (nl-STIRAP) technique, and this method can be used in one-photon as well as multi-photon transitions. The transfer process is robust concerning fluctuations of experimental parameters, such as peak Rabi frequencies, the time delay between pulses, and static detunings.


Author(s):  
T. Cubel ◽  
B.K. Teo ◽  
V. Malinovsky ◽  
J.R. Guest ◽  
A.W. Reinhard ◽  
...  

Laser Physics ◽  
2016 ◽  
Vol 26 (9) ◽  
pp. 096002 ◽  
Author(s):  
Jing-Bo Zai ◽  
Wei-Shen Zhan ◽  
Shuo Wang ◽  
Hai-Ping Dang ◽  
Xiao Han

2005 ◽  
Vol 14 (4) ◽  
pp. 720-724 ◽  
Author(s):  
Zhang Xian-Zhou ◽  
Han Hui-Li ◽  
Han Hong-Pei ◽  
Fan Xiao-Wei

Author(s):  
Nasim Mansourzadeh-Ashkani ◽  
Maghsoud Saadati-Niari ◽  
Farhad Zolfagharpour ◽  
Bashir Nedaee-Shakarab

Abstract Nuclear-state population transfer in the multi-lambda systems with N = 5 that interact with four X-ray laser pulses are investigated theoretically. By using the coincident pulses and stimulated Raman adiabatic passage (STIRAP) techniques, the population transfer from one initially populated ground state to an arbitrary coherent superposition of other ground states. Since the frequency of currently available X-ray lasers is lower than the gamma rays, in this method, X-ray laser pulses with different frequencies are interacting with the accelerated nuclei. We employ the Morris-Shore (MS) transformation to reduce the five-states system to two separate three-state and two-state linkage. The required laser intensities were calculated, which satisfy the conditions of coincident pulses and multi-lambda STIRAP techniques. Considering the spontaneous emission from excited states, the master equation has to be used for numerical study, and it is shown that an arbitrary superposition of final ground states can be obtained. Also, it is observed that by increasing the number of coincident pulses, the population of ground states gets closer to the ideal situation.


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