• Acta Physica Sinica
  • Vol. 68, Issue 7, 073201-1 (2019)
Shuo Liu1, Jian-Dong Bai1, Jie-Ying Wang1, Jun He1、2, and Jun-Min Wang1、2、*
Author Affiliations
  • 1State Key Laboratory of Quantum Optics and Quantum Optics Devices, and Institute of Opto-Electronics, Shanxi University, Taiyuan 030006, China
  • 2Collaborative Innovation Center of Extreme Optics, the Ministry of Education and Shanxi Province, Shanxi University, Taiyuan 030006, China
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    DOI: 10.7498/aps.68.20182283 Cite this Article
    Shuo Liu, Jian-Dong Bai, Jie-Ying Wang, Jun He, Jun-Min Wang. Measurement of quantum defect of cesium nP3/2 (n = 70—94) Rydberg states by using ultraviolet single-photon Rydberg excitation [J]. Acta Physica Sinica, 2019, 68(7): 073201-1 Copy Citation Text show less

    Abstract

    A narrow-linewidth continuous-wave single-frequency tunable 318.6-nm ultraviolet laser system with watt-level output power is developed in our experiment based on well-developed fiber lasers, fiber amplifiers, and efficient laser frequency conversion technique. Cesium 6S1/2nP3/2 (n = 70—94) single-photon Rydberg excitation in a room-temperature cesium atomic vapor cell is realized by using our ultraviolet laser system. The single-photon Rydberg excitation signal is obtained via the V-type three-level atomic system which contains 6S1/2 (F = 4) ground state, 6P3/2 (F = 5) excited state and one of nP3/2 (n = 70—94) Rydberg states. When cesium atoms populated on the ground state are partially excited to Rydberg state by the ultraviolet laser, absorption of 852.3-nm probe beam which is locked to 6S1/2 (F = 4)—6P3/2 (F ′ = 5) hyperfine transition will decrease. In this way, the cesium Rydberg states are detected. The quantum defects for cesium nP3/2 (n = 70—94) Rydberg states are experimentally measured with a high-precision wavemeter. The variation trend of experimentally measured data deviates from that of calculated values. Due to the fact that the cesium vapor cell is positioned in a magnetic shielding tank, the Zeeman effect can be ignored. Considering that the polarizability of Rydberg atoms is proportional to (n*)7, in which n* is the effective principal quantum number, the Rydberg screen effect of cesium atomic vapor cell cannot completely protect cesium atoms from being perturbed by an external DC electric field. Therefore the residual DC electric field existing inside the cesium vapor cell will have a significant influence on quantum defect measurement of Rydberg atoms. Using the theoretical model of Stark effect and the relationship between polarizability of Rydberg atoms and the effective principal quantum number n*, the corrected experimental value of quantum defect for cesium nP3/2 (n = 70—94) Rydberg states is found to be ~(3.5591 ± 0.0007). The corrected experimental value of quantum defect is consistent with the calculation.
    Shuo Liu, Jian-Dong Bai, Jie-Ying Wang, Jun He, Jun-Min Wang. Measurement of quantum defect of cesium nP3/2 (n = 70—94) Rydberg states by using ultraviolet single-photon Rydberg excitation [J]. Acta Physica Sinica, 2019, 68(7): 073201-1
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