• Chinese Optics Letters
  • Vol. 22, Issue 6, 063201 (2024)
Kailu Wang1, Haicheng Mei1, Jingsong Gao2, Liang Xu1..., Hongbing Jiang2 and Yi Liu1,3,*|Show fewer author(s)
Author Affiliations
  • 1Shanghai Key Laboratory of Modern Optical System, University of Shanghai for Science and Technology, Shanghai 200093, China
  • 2State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, Beijing 100871, China
  • 3CAS Center for Excellence in Ultra-intense Laser Science, Shanghai 201800, China
  • show less
    DOI: 10.3788/COL202422.063201 Cite this Article Set citation alerts
    Kailu Wang, Haicheng Mei, Jingsong Gao, Liang Xu, Hongbing Jiang, Yi Liu, "Optical free induction decay emission carrying orbit angular momentum from ionic nitrogen enabled by multiple-photon resonance," Chin. Opt. Lett. 22, 063201 (2024) Copy Citation Text show less
    References

    [1] P. Polynkin, Y. Cheng. Air Lasing, 206(2018).

    [2] L. Yuan, Y. Liu, J. Yao et al. Recent advances in air lasing: a perspective from quantum coherence. Adv. Quantum Technol., 2, 1900080(2019).

    [3] J. Yao, B. Zeng, H. Xu et al. High-brightness switchable multiwavelength remote laser in air. Phys. Rev. A, 84, 051802(2011).

    [4] Y. Fu, J. Cao, K. Yamanouchi et al. Air-laser-based standoff coherent Raman spectrometer. Ultrafast Sci., 2022, 9867028(2022).

    [5] H. Lei, J. Yao, J. Zhao et al. Ultraviolet supercontinuum generation driven by ionic coherence in a strong laser field. Nat. Commun., 13, 4080(2022).

    [6] X. Zhang, Q. Lu, Y. Zhu et al. Multiple-photon resonance enabled quantum interference in emission spectroscopy of N2+. Ultrafast Sci., 4, 51(2024).

    [7] X. Zhang, Q. Lu, Z. Zhang et al. Coherent control of the multiple wavelength lasing of N2+: coherence transfer and beyond. Optica, 8, 668(2021).

    [8] J. Yao, S. Jiang, W. Chu et al. Population redistribution among multiple electronic states of molecular nitrogen ions in strong laser fields. Phys. Rev. Lett., 116, 143007(2016).

    [9] T. Ando, E. Lötstedt, A. Iwasaki et al. Rotational, vibrational, and electronic modulations in N2+ lasing at 391 nm: evidence of coherent B2∑u+−X2∑g+−A2∏u coupling. Phys. Rev. Lett., 123, 203201(2019).

    [10] Z. Zhang, F. Zhang, B. Xu et al. High-sensitivity gas detection with air-lasing-assisted coherent Raman spectroscopy. Ultrafast Sci., 2022, 9761458(2022).

    [11] X. Zhang, Q. Lu, H. Mei et al. Standoff detection of an electric field by bidirectional nitrogen lasing. Phys. Rev. A, 108, 033513(2023).

    [12] G. Li, C. Jing, B. Zeng et al. Signature of superradiance from a nitrogen-gas plasma channel produced by strong-field ionization. Phys. Rev. A, 89, 033833(2014).

    [13] Y. Liu, P. Ding, N. Ibrakovic et al. Unexpected sensitivity of nitrogen ions superradiant emission on pump laser wavelength and duration. Phys. Rev. Lett., 119, 203205(2017).

    [14] W. Zheng, Z. Miao, L. Zhang et al. Enhanced coherent emission from ionized nitrogen molecules by femtosecond laser pulses. J. Phys. Chem. Lett., 10, 6598(2019).

    [15] Z. Miao, X. Zhong, L. Zhang et al. Stimulated-Raman-scattering-assisted superfluorescence enhancement from ionized nitrogen molecules in 800-nm femtosecond laser fields. Phys. Rev. A, 98, 033402(2018).

    [16] Y. Liu, P. Ding, G. Lambert et al. Recollision-induced superradiance of ionized nitrogen molecules. Phys. Rev. Lett., 115, 133203(2015).

    [17] H. Xu, E. Lötstedt, T. Ando et al. Alignment-dependent population inversion in N2+ in intense few-cycle laser fields. Phys. Rev. A, 96, 041401(2017).

    [18] H. Li, M. Hou, H. Zang et al. Significant enhancement of N2+ lasing by polarization-modulated ultrashort laser pulses. Phys. Rev. Lett., 122, 013202(2019).

    [19] J. Gao, X. Zhang, Y. Wang et al. Structured air lasing of N2+. Commun. Phys., 6, 97(2023).

    [20] Y. Hu, Z. Ye, H. Li et al. Generation of vortex N2+ lasing. Optica, 10, 682(2023).

    [21] H. Mei, J. Gao, K. Wang et al. Amplification of light pulses with orbital angular momentum (OAM) in nitrogen ions lasing. Opt. Express, 31, 31912(2023).

    [22] D. Naidoo, F. S. Roux, A. Dudley et al. Controlled generation of higher-order Poincaré sphere beams from a laser. Nat. Photonics, 10, 327(2016).

    [23] S. N. Alperin, R. D. Niederriter, J. T. Gopinath et al. Quantitative measurement of the orbital angular momentum of light with a single, stationary lens. Opt. Lett., 41, 5019(2016).

    [24] S. Wang, Y. Fu, E. Lötstedt et al. Strong-field-induced N2+ lasing by phase control of free induction decay. Phys. Rev. A., 108, 033113(2023).

    [25] N. B. Simpson, L. Allen, M. J. Padgett. Optical tweezers and optical spanners with Laguerre-Gaussian modes. J. Modern Opt., 43, 2485(1996).

    [26] A. Bekshaev, K. Y. Bliokh, M. Soskin. Internal flows and energy circulation in light beams. J. Opt., 13, 053001(2011).

    [27] A. Couairon, A. Mysyrowicz. Femtosecond filamentation in transparent media. Phys. Rep., 441, 47(2007).

    [28] K. M. Dorney, L. Rego, N. J. Brooks et al. Controlling the polarization and vortex charge of attosecond high-harmonic beams via simultaneous spin–orbit momentum conservation. Nat. Photonics, 13, 123(2019).

    [29] A. K. Pandey, A. Heras, T. Larrieu et al. Characterization of extreme ultraviolet vortex beams with a very high topological charge. ACS Photonics, 9, 944(2022).

    [30] W. Chu, Z. Zeng, J. Yao et al. Multiwavelength amplified harmonic emissions from carbon dioxide pumped by mid-infrared femtosecond laser pulses. Euro. Phys. Lett., 97, 64004(2012).

    [31] M. Suzuki, M. Baba, R. A. Ganeev et al. Anomalous enhancement of single high-order harmonic using laser ablation tin plume at 47 nm. Opt. Lett., 31, 3306(2006).

    [32] S. Beaulieu, S. Camp, D. Descamps et al. Role of excited states in high-order harmonic generation. Phys. Rev. Lett., 117, 203001(2016).

    [33] S. Bengtsson, E. W. Larsen, D. Kroon et al. Space-time control of free induction decay in the extreme ultraviolet. Nat. Photonics, 11, 252(2017).

    [34] M. Veenendaal, I. McNulty. Prediction of strong dichroism induced by X rays carrying orbital momentum. Phys. Rev. Lett., 98, 157401(2007).

    [35] A. Sakdinawat, Y. Liu. Soft-X-ray microscopy using spiral zone plates. Opt. Lett., 32, 2635(2007).

    [36] H. Fujita, M. Sato. Ultrafast generation of skyrmionic defects with vortex beams: printing laser profiles on magnets. Phys. Rev. B, 95, 054421(2017).

    Kailu Wang, Haicheng Mei, Jingsong Gao, Liang Xu, Hongbing Jiang, Yi Liu, "Optical free induction decay emission carrying orbit angular momentum from ionic nitrogen enabled by multiple-photon resonance," Chin. Opt. Lett. 22, 063201 (2024)
    Download Citation