Adiabatic fidelity for atom-dimer conversion system in stimulated Raman adiabatic passage
Shao-Ying Meng, Wei Wu, (1)辽宁大学物理学院,沈阳 110036; (2)中国工程物理研究院北京研究生部,北京 100088;辽宁大学物理学院,沈阳 110036
Abstract
Shao-Ying Meng, Wei Wu, (1)辽宁大学物理学院,沈阳 110036; (2)中国工程物理研究院北京研究生部,北京 100088;辽宁大学物理学院,沈阳 110036
Abstract
From the non-U(1) invariance of the atom-dimer conversion system, we generalized the definition of fidelity to this nonlinear system. By making use of the adiabatic fidelity, we investigated the dynamics and adiabaticity of the atom-dimer conversion system in a stimulated Raman adiabatic passage (STIRAP). We found that the adiabatic fidelity for the coherent population trapping state or dark state, as the function of the adiabatic parameter, approaches to unity following a power law. The power exponent, however, is much smaller than that predicted by the linear adiabatic theorem. We further discuss how to achieve higher adiabatic fidelity for the dark state through optimizing the external parameters of STIRAP and hence to optimize the adiabaticity of the system and obtain high conversion efficiency.
OpenAlex reports 11 citations for this work. Citation counts describe recorded attention and do not establish research quality.
A contribution statement is not available in the OpenAlex record.
Method details are not available in the OpenAlex metadata.
Findings are not separately available in the OpenAlex metadata.
Limitations are not available in the OpenAlex metadata.
Application details are not available in the OpenAlex metadata.
From the non-U(1) invariance of the atom-dimer conversion system, we generalized the definition of fidelity to this nonlinear system. By making use of the adiabatic fidelity, we investigated the dynamics and adiabaticity of the atom-dimer conversion system in a stimulated Raman adiabatic passage (STIRAP). We found that the adiabatic fidelity for the coherent population trapping state or dark state, as the function of the adiabatic parameter, approaches to unity following a power law. The power exponent, however, is much smaller than that predicted by the linear adiabatic theorem. We further discuss how to achieve higher adiabatic fidelity for the dark state through optimizing the external parameters of STIRAP and hence to optimize the adiabaticity of the system and obtain high conversion efficiency.
Key concepts: Stimulated Raman adiabatic passage, Adiabatic process, Physics, Adiabatic quantum computation, Atom (system on chip), Atomic physics, Quantum mechanics, Quantum computer