Coherent control of the efficient ladder-type population transfer by four-color harmonic laser pulses

B Bin-Bin Wang (School of Physics and Astronomy, China West Normal University 1 , Nanchong 637009,) Y Yuan Li S Su-Hua Jing (Mathematics and Physics Laboratory of the Basic Department, Officers College of PAP 2 , Chengdu 610200,) X Xiao-Yun Zhou (Mathematics and Physics Laboratory of the Basic Department, Officers College of PAP 2 , Chengdu 610200,) Y Yong-Chang Han (Department of Physics, Dalian University of Technology 3 , Dalian 116024,)

Abstract

The ladder-type population transfer of the HF molecule steered by four-color harmonic laser pulses (HLPs) is investigated using the time-dependent quantum wave packet method. It is found that although there exist large background excitations and many (resonant) transition pathways during the driving, nearly 100% of the population could be transferred to the target state. In particular, such a process could be coherently controlled by changing the phases of the four HLPs, especially the phases of the fundamental and second HLPs, which can be accounted for in large part by the combined effects of the corresponding transition pathways and the maximal amplitude of the total electric field. However, for manipulating the phases of the third and fourth HLPs, both the changes in the maximal electric field amplitude and the asymmetry size fail to guide the variation of the target-state population because of the correlated effects of all these transition pathways, particularly the ones that do not contain the third and fourth HLP excitations. Importantly, our results also denote that the variation of the maximal electric field amplitude may give a well qualitative prediction about the phase-controlled population when the manipulated phase is directly related to all the transition pathways, which is the general case in the widely used two-color scheme. In addition, the maximal amplitude of the total electric field tends to play a more important role than its asymmetry size in the phase-controlled population transfer process.

Article Details

Volume / Issue Vol. 162, Issue 10
Published March 14, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (5)

B

Bin-Bin Wang

School of Physics and Astronomy, China West Normal University 1 , Nanchong 637009,

Y

Yuan Li

S

Su-Hua Jing

Mathematics and Physics Laboratory of the Basic Department, Officers College of PAP 2 , Chengdu 610200,

X

Xiao-Yun Zhou

Mathematics and Physics Laboratory of the Basic Department, Officers College of PAP 2 , Chengdu 610200,

Y

Yong-Chang Han

Department of Physics, Dalian University of Technology 3 , Dalian 116024,