scholarly journals Population transfer of high excited states of Rydberg sodium atoms in a chirped microwave field

2012 ◽  
Vol 61 (4) ◽  
pp. 043101
Author(s):  
Jiang Li-Juan ◽  
Zhang Xian-Zhou ◽  
Ma Huan-Qiang ◽  
Jia Guang-Rui ◽  
Zhang Yong-Hui ◽  
...  
1998 ◽  
Author(s):  
Igor M. Beterov ◽  
Igor I. Ryabtsev
Keyword(s):  

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.


1993 ◽  
Vol 48 (4) ◽  
pp. 219-224 ◽  
Author(s):  
A. C. Pavão ◽  
John Simon Craw ◽  
Marco Antonio Chaer Nascimento
Keyword(s):  

2018 ◽  
Vol 47 (9) ◽  
pp. 902001
Author(s):  
刘晓斌 LIU Xiao-bin ◽  
师应龙 SHI Ying-long ◽  
邢永忠 XING Yong-zhong ◽  
路飞平 LU Fei-ping ◽  
李向兵 LI Xiang-bing ◽  
...  

2016 ◽  
Vol 117 (4) ◽  
Author(s):  
A. V. Semenov ◽  
I. A. Devyatov ◽  
P. J. de Visser ◽  
T. M. Klapwijk

Open Physics ◽  
2014 ◽  
Vol 12 (10) ◽  
Author(s):  
Wen-Xing Yang ◽  
Ai-Xi Chen ◽  
Ting-Ting Zha ◽  
Yanfeng Bai ◽  
Ray-Kuang Lee

AbstractWe demonstrate the generation of two-mode continuous-variable (CV) entanglement in a V-type three-level atom trapped in a doubly resonant cavity using a microwave field driving a hyperfine transition between two upper excited states. By numerically simulating the dynamics of this system, our results show that the CV entanglement with large mean number of photons can be generated even in presence of the atomic relaxation and cavity losses. More interestingly, it is found that the intensity and period of entanglement can be enhanced significantly with the increasing of the atomic relaxation due to the existence of the perfect spontaneously generated interference between two atomic decay channels. Moreover, we also show that the entanglement can be controlled efficiently by tuning the intensity of spontaneously generated interference and the detuning of the cavity field.


1988 ◽  
Vol 102 ◽  
pp. 239
Author(s):  
M.S.Z. Chaghtai

Using R.D. Cowan’s computations (1979) and parametric calculations of Meinders et al (1982), old analyses are thoroughly revised and extended at Aligarh, of Zr III by Khan et al (1981), of Nb IV by Shujauddin et Chaghtai (1985), of Mo V by Tauheed at al (1985). Cabeza et al (1986) confirmed the last one largely.Extensive studies have been reported of the 1–e spectra, Zr IV (Rahimullah et al 1980; Acquista and Reader 1980), Nb V (Shujauddin et al 1982; Kagan et al 1981) and Mo VI (Edlén et al 1985). Some interacting 4p54d2levels of these spectra have been reported from our laboratory, also.Detailed spectral analyses of transitions between excited states have furnished complete energy values for J ≠ 1 levels of these spectra during 1970s and 80s. Shujauddin et al (1982) have worked out Nb VI and Tauheed et al (1984) Mo VII from our lab, while Khan et al (1981) share the work on Zr V with Reader and Acquista (1979).


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