• Laser & Optoelectronics Progress
  • Vol. 54, Issue 12, 122701 (2017)
Feng Ping, Sun Jian′an, Wang Wenyuan, and Dou Fuquan*
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  • [in Chinese]
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    DOI: 10.3788/lop54.122701 Cite this Article Set citation alerts
    Feng Ping, Sun Jian′an, Wang Wenyuan, Dou Fuquan. High-Fidelity Superadiabatic Quantum Driving in Demkov-Kunike Model[J]. Laser & Optoelectronics Progress, 2017, 54(12): 122701 Copy Citation Text show less
    References

    [1] Brif C, Chakrabarti R, Rabitz H. Control of quantum phenomena: past, present and future[J]. New Jounal of Physics, 2010, 12(7): 075008.

    [2] de Melo C S. When fermions become bosons: pairing in ultracold gases[J]. Physics Today, 2008, 61(10): 45-51.

    [3] Saberi H, Opatrńy T, Mlmer K, et al. Adiabatic tracking of quantum many-body dynamics[J]. Phys Rev A, 2014, 90(6): 060301(R).

    [4] Torosov B T, Guérin S, Vitanov N V. High-fidelity adiabatic passage by composite sequences of chirped pulses[J]. Phys Rev Lett, 2011, 106(23): 233001.

    [5] Masuda S, Nakamura K. Acceleration of adiabatic quantum dynamics in electromagnetic fields[J]. Phys Rev A, 2011, 84(4): 043434.

    [6] Dou F Q, Cao H, Fu L B, et al. High-fidelity composite adiabatic passage in nonlinear two-level systems[J]. Phys Rev A, 2016, 93(4): 043419.

    [7] Hu Jingyu, Mao Tengfei, Dou Fuquan, et al. Application of the composite adiabatic passage technique in the Landau-Zener model with harmonic interaction modulation[J]. Acta Physica Sinica, 2013, 62(17): 170303.

    [8] Cao X X, Zhuang J, Ning X J, et al. Accelerating an adiabatic process by nonlinear sweeping[J]. Chin Phys B, 2013, 22(9): 090310.

    [9] Chen X, Lizuain I, Ruschhaupt A, et al. Shortcut to adiabatic passage in two-and three-level atoms[J]. Phys Rev Lett, 2010, 105(12): 123003.

    [10] Du Y X, Liang Z T, Li Y C, et al. Experimental realization of stimulated Raman shortcut-to-adiabatic passage with cold atoms[J]. Nat Commun, 2016, 7: 12479.

    [11] Funo K, Zhang J N, Chatou C, et al. Universal work fluctuations during shortcuts to adiabaticity by counterdiabatic driving[J]. Phys Rev Lett, 2017, 118(10): 100602.

    [12] Chen Y H, Xia Y, Wu Q C, et al. Method for constructing shortcuts to adiabaticity by a substitute of counterdiabatic driving terms[J]. Phys Rev A, 2016, 93(5): 052109.

    [13] Wang Liping, Meng Shuo, Tan Fengling, et al. Coherent control of population transfer in asymmetric double quantum well[J]. Acta Optica Sinica, 2016, 36(9): 0927002.

    [14] Masuda S, Rice S A. Selective vibrational population transfer using combined stimulated Raman adiabatic passage and counter-diabatic fields[J]. J Phys Chem C, 2014, 119(26): 14513-14523.

    [15] Vandermause J, Ramanathan C. Superadiabatic control of quantum operations[J]. Phys Rev A, 2016, 93(5): 052329.

    [16] Demirplak M, Rice S A. Adiabatic population transfer with control fields[J]. J Phys Chem A, 2003, 107(46): 9937-9945.

    [17] Agundez R R, Hill C D, Hollenberg L C L, et al. Superadiabatic quantum state transfer in spin chains[J]. Phys Rev A, 2017, 95(1): 012317.

    [18] Song X K, Ai Q, Qiu J, et al. Physically feasible three-level transitionless quantum driving with multiple Schrdinger dynamics[J]. Phys Rev A, 2016, 93(5): 052324.

    [19] Bason M G, Viteau M, Malossi N, et al. High-fidelity quantum driving[J]. Nat Phys, 2012, 8: 147-152.

    [20] Malossi N, Bason M G, Viteau M, et al. Quantum driving protocols for a two-level system: from generalized Landau-Zener sweeps to transitionless control[J]. Phys Rev A, 2013, 87(1): 012116.

    [21] Dou F Q, Liu J, Fu L B. High-fidelity superadiabatic population transfer of a two-level system with a linearly chirped Gaussian pulse[J]. Europhysics Letters, 2017, 116(6): 60014.

    [22] Zhang J, Shim J H, Niemeyer I, et al. Experimental implementation of assisted quantum adiabatic passage in a single spin[J]. Phys Rev Lett, 2013, 110(24): 240501.

    [23] Liang Z T, Yue X, Lü Q, et al. Proposal for implementing universal superadiabatic geometric quantum gates in nitrogen-vacancy centers[J]. Phys Rev A, 2016, 93(4): 040305.

    [24] Zhou B B, Baksic A, Ribeiro H, et al. Accelerated quantum control using superadiabatic dynamics in a solid-state lambda system[J]. Nat Phys, 2017, 13: 330-334.

    [25] Lu Daoming. Entanglement properties in the system of atoms interacting with coupled cavities via a two-photonhopping interaction[J]. Acta Optica Sinica, 2012, 32(2): 0227001.

    [26] Li Bin, Sachuerfu, Guo Caili. Quantum properties in a system of two two-level atoms interacting with Pólya state light field[J]. Laser & Optoelectronics Progress, 2016, 53(3): 032702.

    [27] Suominen K A, Garraway B M. Population transfer in a level-crossing model with two time scales[J]. Phys Rev A, 1992, 45(1): 374-386.

    [28] Simeonov L S, Vitanov N V. Exactly solvable two-state quantum model for a pulse of hyperbolic-tangent shape[J]. Phys Rev A, 2014, 89(4): 043411.

    [29] Lacour X, Guérin S, Yatsenko L P, et al. Uniform analytic description of dephasing effects in two-state transitions[J]. Phys Rev A, 2007, 75(3): 033417.

    [30] Ye Difa, Fu Libin, Zhao Hong, et al. Nonliner Rosen-Zener transition[J]. Acta Physica Sinica, 2007, 56(9): 5071-5076.

    [31] Torosov B T, Vitanov N V. Coherent control of a quantum transition by a phase jump[J]. Phys Rev A, 2007, 76(5): 053404.

    [32] Ishkhanyan A M, Joulakian B, Suominen K A. Two strong nonlinearity regimes in cold molecule formation[J]. Eur Phys J D, 2008, 48(3): 397-404.

    [33] Dou Fuquan, Zheng Weiqiang. High-fidelity population inversion of two-level system[J]. Chin Sci Bull, 2016, 61(20): 2309-2315 .

    [34] Paul K, Sarma A K. Shortcut to adiabatic passage in a waveguide coupler with a complex-hyperbolic-secant scheme[J]. Phys Rev A, 2015, 91(5): 053406.

    [35] Chen Y H, Shi Z C, Song J, et al. Optimal shortcut approach based on an easily obtained intermediate Hamiltonian[J]. Phys Rev A, 2017, 95(6): 062319.

    Feng Ping, Sun Jian′an, Wang Wenyuan, Dou Fuquan. High-Fidelity Superadiabatic Quantum Driving in Demkov-Kunike Model[J]. Laser & Optoelectronics Progress, 2017, 54(12): 122701
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