Acta Optica Sinica, Volume. 43, Issue 21, 2127001(2023)

Thermal Lens Effect in Experimental Preparation of 1064 nm High-PowerBright Squeezed State

Rui Guo1, Wenhai Yang2、*, Yong Guo1, Hui Yao1, and Lili Li1
Author Affiliations
  • 1Department of Physics, Shanxi Agricultural University, Taigu030801, Shanxi , China
  • 2China Academy of Space Technology (Xi'an), Xi'an 710000, Shaanxi , China
  • show less
    References(24)

    [1] Furusawa A, Sorensen J L, Braunstein S L et al. Unconditional quantum teleportation[J]. Science, 282, 706-709(1998).

    [2] Wang S F, Xiang X, Dong R F et al. Research on experimental generation of quantum optical frequency comb[J]. Acta Optica Sinica, 38, 1027003(2018).

    [3] Wu Y M, Wang Q W, Tian L et al. Multi-channel multiplexing quantum teleportation based on the entangled sideband modes[J]. Photonics Research, 10, 1909-1914(2022).

    [4] Shi S P, Tian L, Wang Y J et al. Demonstration of channel multiplexing quantum communication exploiting entangled sideband modes[J]. Physical Review Letters, 125, 070502(2020).

    [5] Braunstein S L, van Loock P. Quantum information with continuous variables[J]. Reviews of Modern Physics, 77, 513-577(2005).

    [6] Liu Y Z, Zuo X J, Yan Z H et al. Analysis of quantum interferometer based on optical parametric amplifier[J]. Acta Optica Sinica, 42, 0327013(2022).

    [7] Tse M, Yu H C, Kijbunchoo N et al. Quantum-enhanced advanced LIGO detectors in the era of gravitational-wave astronomy[J]. Physical Review Letters, 123, 231107(2019).

    [8] Grote H, Danzmann K, Dooley K L et al. First long-term application of squeezed states of light in a gravitational-wave observatory[J]. Physical Review Letters, 110, 181101(2013).

    [9] Sun X C, Wang Y J, Tian L et al. Detection of 13.8 dB squeezed vacuum states by optimizing the interference efficiency and gain of balanced homodyne detection[J]. Chinese Optics Letters, 17, 072701(2019).

    [10] Vahlbruch H, Mehmet M, Danzmann K et al. Detection of 15 dB squeezed states of light and their application for the absolute calibration of photoelectric quantum efficiency[J]. Physical Review Letters, 117, 110801(2016).

    [11] Li B B, Hoff U B, Madsen L S et al. Quantum enhanced optomechanical magnetometry[J]. Optica, 5, 850-856(2018).

    [12] Wu L A, Kimble H J, Hall J L et al. Generation of squeezed states by parametric down conversion[J]. Physical Review Letters, 57, 2520-2523(1986).

    [13] McKenzie K, Mikhailov E E, Goda K et al. Quantum noise locking[J]. Journal of Optics B: Quantum and Semiclassical Optics, 7, S421-S428(2005).

    [14] Vahlbruch H, Chelkowski S, Hage B et al. Coherent control of vacuum squeezing in the gravitational-wave detection band[J]. Physical Review Letters, 97, 011101(2006).

    [15] Shi S P, Wang Y J, Yang W H et al. Detection and perfect fitting of 13.2  dB squeezed vacuum states by considering green-light-induced infrared absorption[J]. Optics Letters, 43, 5411-5414(2018).

    [16] Qin Z Z, Wang M H, Ma R et al. Progress of the squeezed states of light and their application[J]. Laser & Optoelectronics Progress, 59, 1100001(2022).

    [17] Yang W H, Shi S P, Wang Y J et al. Detection of stably bright squeezed light with the quantum noise reduction of 12.6  dB by mutually compensating the phase fluctuations[J]. Optics Letters, 42, 4553-4556(2017).

    [18] Tian Y H, Wang J P, Yang W H et al. Frequency doubling system for integrated quantum squeezed light source based on MgO: LiNbO3 crystal[J]. Chinese Journal of Lasers, 47, 1108001(2020).

    [19] Wang H L, Yang H Q, Su J et al. Experimental study on near-infrared to mid-infrared laser output based on single resonant optical parametric oscillator[J]. Chinese Journal of Lasers, 49, 1801005(2022).

    [20] Guo R, Yang W H, Guo Y et al. Green light-induced infrared absorption effect in preparation experiment of high-power bright squeezed state light field of 1064 nm[J]. Acta Optica Sinica, 43, 1027001(2023).

    [21] Innocenzi M E, Yura H T, Fincher C L et al. Thermal modeling of continuous-wave end-pumped solid-state lasers[J]. Applied Physics Letters, 56, 1831-1833(1990).

    [22] Zhang X L, Wang Q W, Yao W X et al. Influence of thermal lens effect on second harmonic process in semi-monolithic cavity[J]. Acta Physica Sinica, 71, 184203(2022).

    [23] Wang J P, Zhang W H, Li R X et al. Design of optical parametric cavity for broadband squeezed light field[J]. Acta Physica Sinica, 69, 234204(2020).

    [24] Uehara N, Gustafson E K, Fejer M M et al. Modeling of efficient mode-matching and thermal-lensing effect on a laser-beam coupling into a mode-cleaner cavity[J]. Proceedings of SPIE, 2989, 57-68(1997).

    Tools

    Get Citation

    Copy Citation Text

    Rui Guo, Wenhai Yang, Yong Guo, Hui Yao, Lili Li. Thermal Lens Effect in Experimental Preparation of 1064 nm High-PowerBright Squeezed State[J]. Acta Optica Sinica, 2023, 43(21): 2127001

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category: Quantum Optics

    Received: Apr. 10, 2023

    Accepted: Jun. 26, 2023

    Published Online: Nov. 8, 2023

    The Author Email: Yang Wenhai (yangwh1@cast504.com)

    DOI:10.3788/AOS230797

    Topics