TY - JOUR
T1 - Calculation of vibrational branching ratios and hyperfine structure of 24Mg19 F and its suitability for laser cooling and magneto-optical trapping
AU - Xu, Liang
AU - Yin, Yanning
AU - Wei, Bin
AU - Xia, Yong
AU - Yin, Jianping
N1 - Publisher Copyright:
© 2016 American Physical Society.
PY - 2016/1/12
Y1 - 2016/1/12
N2 - More recently, laser cooling of the diatomic radical magnesium monofluoride (24Mg19F) is being experimentally preformed [Appl. Phys. Express 8, 092701 (2015)10.7567/APEX.8.092701 and Opt. Express 22, 28645 (2014)10.1364/OE.22.028645] and was also studied theoretically [Phys. Rev. A 91, 042511 (2015)10.1103/PhysRevA.91.042511]. However, some important problems still remain unsolved, so, in our paper, we perform further theoretical study for the feasibility of laser cooling and trapping the 24Mg19F molecule. At first, the highly diagonal Franck-Condon factors of the main transitions are verified by the closed-form approximation, Morse approximation, and Rydberg-Klein-Rees inversion methods, respectively. Afterwards, we investigate the lower X2Σ1/2+ hyperfine manifolds using a quantum effective Hamiltonian approach and obtain the zero-field hyperfine spectrum with an accuracy of less than 30 kHz∼5μK compared with the experimental results, and then find out that one cooling beam and one or two repumping beams with their first-order sidebands are enough to implement an efficient laser slowing and cooling of 24Mg19F. Meanwhile, we also calculate the accurate hyperfine structure magnetic g factors of the rotational state (X2Σ1/2+,N=1) and briefly discuss the influence of the external fields on the hyperfine structure of 24Mg19F as well as its possibility of preparing three-dimensional magneto-optical trapping. Finally we give an explanation for the difference between the Stark and Zeeman effects from the perspective of parity and time reversal symmetry. Our study shows that, besides appropriate excitation wavelengths, the short lifetime for the first excited state A2Π1/2, and lighter mass, the 24Mg19F radical could be a good candidate molecule amenable to laser cooling and magneto-optical trapping.
AB - More recently, laser cooling of the diatomic radical magnesium monofluoride (24Mg19F) is being experimentally preformed [Appl. Phys. Express 8, 092701 (2015)10.7567/APEX.8.092701 and Opt. Express 22, 28645 (2014)10.1364/OE.22.028645] and was also studied theoretically [Phys. Rev. A 91, 042511 (2015)10.1103/PhysRevA.91.042511]. However, some important problems still remain unsolved, so, in our paper, we perform further theoretical study for the feasibility of laser cooling and trapping the 24Mg19F molecule. At first, the highly diagonal Franck-Condon factors of the main transitions are verified by the closed-form approximation, Morse approximation, and Rydberg-Klein-Rees inversion methods, respectively. Afterwards, we investigate the lower X2Σ1/2+ hyperfine manifolds using a quantum effective Hamiltonian approach and obtain the zero-field hyperfine spectrum with an accuracy of less than 30 kHz∼5μK compared with the experimental results, and then find out that one cooling beam and one or two repumping beams with their first-order sidebands are enough to implement an efficient laser slowing and cooling of 24Mg19F. Meanwhile, we also calculate the accurate hyperfine structure magnetic g factors of the rotational state (X2Σ1/2+,N=1) and briefly discuss the influence of the external fields on the hyperfine structure of 24Mg19F as well as its possibility of preparing three-dimensional magneto-optical trapping. Finally we give an explanation for the difference between the Stark and Zeeman effects from the perspective of parity and time reversal symmetry. Our study shows that, besides appropriate excitation wavelengths, the short lifetime for the first excited state A2Π1/2, and lighter mass, the 24Mg19F radical could be a good candidate molecule amenable to laser cooling and magneto-optical trapping.
UR - https://www.scopus.com/pages/publications/84954526379
U2 - 10.1103/PhysRevA.93.013408
DO - 10.1103/PhysRevA.93.013408
M3 - 文章
AN - SCOPUS:84954526379
SN - 2469-9926
VL - 93
JO - Physical Review A
JF - Physical Review A
IS - 1
M1 - 013408
ER -