Please wait a minute...
Chin. Phys. B, 2009, Vol. 18(3): 1054-1060    DOI: 10.1088/1674-1056/18/3/036
CLASSICAL AREAS OF PHENOMENOLOGY Prev   Next  

Effects of relative phase on transient evolution in an open resonant ladder-type atomic system

Yang Yan-Ling(杨艳玲)a), Liu Zhong-Bo(刘中波)a), Wang Lei(王蕾)a), Tong Dian-Min(仝殿民)b), and Fan Xi-Jun(樊锡君)a)†
a College of Physics and Electronics, Shandong Normal University, Jinan 250014, China; b School of Physics and Microelectronics, Shandong University, Jinan 250100, China
Abstract  In an open ladder-type resonant atomic system, variation in relative phase between probe and driving fields does not affect the transient evolution of populations, but it has remarkable effects on gain and dispersion of the probe field. No matter whether an incoherent pump is present or absent, transient and stationary gains without inversion (GWI) always can be obtained by choosing an appropriate value of the relative phase. When the incoherent pump is absent,the values of transient and stationary GWIs are much larger and the time interval required to reach the stationary value is longer than those when the incoherent pump is present. Varying the exit rate and the ratio between injection rates can obviously change the phase-dependent GWI. In addition, in the transient evolution process, the phenomenon of high dispersion (refractive index) without absorption occurs at some values of relative phase. In the corresponding closed system, the stationary GWI can be obtained by choosing an appropriate value of relative phase only when incoherent pump exists, moreover the gain is smaller than that in the open system.
Keywords:  open system      relative phase      transient evolution      gain without inversion  
Received:  25 August 2008      Revised:  24 September 2008      Accepted manuscript online: 
PACS:  42.50.-p (Quantum optics)  
  32.50.+d (Fluorescence, phosphorescence (including quenching))  
Fund: Project supported by the Natural Science Foundation of Shandong Province, China (Grant No Y2006A21) and the National Natural Science Foundation of China (Grant No 10675076).

Cite this article: 

Yang Yan-Ling(杨艳玲), Liu Zhong-Bo(刘中波), Wang Lei(王蕾), Tong Dian-Min(仝殿民), and Fan Xi-Jun(樊锡君) Effects of relative phase on transient evolution in an open resonant ladder-type atomic system 2009 Chin. Phys. B 18 1054

[1] Floquet scattering through a parity-time symmetric oscillating potential
Xuzhen Cao(曹序桢), Zhaoxin Liang(梁兆新), and Ying Hu(胡颖). Chin. Phys. B, 2023, 32(3): 030302.
[2] Non-Markovianity of an atom in a semi-infinite rectangular waveguide
Jing Zeng(曾静), Yaju Song(宋亚菊), Jing Lu(卢竞), and Lan Zhou(周兰). Chin. Phys. B, 2023, 32(3): 030305.
[3] Two-body exceptional points in open dissipative systems
Peize Ding(丁霈泽) and Wei Yi(易为). Chin. Phys. B, 2022, 31(1): 010309.
[4] Impact of counter-rotating-wave term on quantum heat transfer and phonon statistics in nonequilibrium qubit-phonon hybrid system
Chen Wang(王晨), Lu-Qin Wang(王鲁钦), and Jie Ren(任捷). Chin. Phys. B, 2021, 30(3): 030506.
[5] Relative phase-dependent two-electron emission dynamics with two-color circularly polarized laser fields
Tong-Tong Xu(徐彤彤), Lian-Lian Zhang(张莲莲), Zhao Jin(金钊), Wei-Jiang Gong(公卫江). Chin. Phys. B, 2020, 29(9): 093202.
[6] A polaron theory of quantum thermal transistor in nonequilibrium three-level systems
Chen Wang(王晨), Da-Zhi Xu(徐大智). Chin. Phys. B, 2020, 29(8): 080504.
[7] Quantifying quantum non-Markovianity via max-relative entropy
Yu Luo(罗宇), Yongming Li(李永明). Chin. Phys. B, 2019, 28(4): 040301.
[8] Quantum speed-up capacity in different types of quantum channels for two-qubit open systems
Wei Wu(吴薇), Xin Liu(刘辛), Chao Wang(王超). Chin. Phys. B, 2018, 27(6): 060302.
[9] Non-Markovian speedup dynamics control of the damped Jaynes-Cummings model with detuning
Kai Xu(徐凯), Wei Han(韩伟), Ying-Jie Zhang(张英杰), Heng Fan(范桁). Chin. Phys. B, 2018, 27(1): 010302.
[10] Controlling cooperativity of a metastable open system coupled weakly to a noisy environment
Victor I. Teslenko, Oleksiy L. Kapitanchuk, Zhao Yang. Chin. Phys. B, 2015, 24(2): 028702.
[11] Phase control of light amplification in steady and transient processes in an inverted-Y atomic system with spontaneously generated coherence
Tian Si-Cong (田思聪), Tong Cun-Zhu (佟存柱), Wan Ren-Gang (万仁刚), Ning Yong-Qiang (宁永强), Qin Li (秦丽), Liu Yun (刘云), Wang Li-Jun (王立军), Zhang Hang (张航), Wang Zeng-Bin (王增斌), Gao Jin-Yue (高锦岳). Chin. Phys. B, 2014, 23(4): 044205.
[12] Phase control of group-velocity-based biexciton coherence ina multiple quantum well nanostructure
Seyyed Hossein Asadpour, H. Rahimpour Soleimani. Chin. Phys. B, 2014, 23(10): 104205.
[13] Modulation of atomic exit and injection rates on the phase-dependent gain without inversion in a Doppler broadened open four-level system
Liu Zhong-Bo(刘中波), Jia Ke-Ning (贾克宁), Liang Ying(梁颖), Tong Dian-Min(仝殿民), and Fan Xi-Jun(樊锡君) . Chin. Phys. B, 2012, 21(6): 064208.
[14] Dynamic control of retrieval contrast in a $\Lambda$-type atomic system
Zhang Xiao-Hang(张晓航), Bao Qian-Qian(鲍倩倩), Zhang Yan(张岩), Su Ming-Che(苏铭彻), Cui Cui-Li(崔淬砺), and Wu Jin-Hui(吴金辉) . Chin. Phys. B, 2012, 21(5): 054209.
[15] Comparison between effects of Doppler broadening on pure and non-pure inversionless gains with frequency up-conversion
Fan Xi-Jun(樊锡君), Ma Hui(马慧), Liu Zhong-Bo(刘中波), and Tong Dian-Min(仝殿民). Chin. Phys. B, 2009, 18(12): 5342-5349.
No Suggested Reading articles found!