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Evidence of the quantum-optical nature of high-harmonic generation (2405.15022v2)

Published 23 May 2024 in quant-ph

Abstract: High-harmonic generation is a light up-conversion process occurring in a strong laser field, leading to coherent bursts of extreme ultrashort broadband radiation [1]. As a new perspective, we propose that ultrafast strong-field electronic or photonic processes such as high-harmonic generation can potentially generate non-classical states of light well before the decoherence of the system occurs [2, 3]. This could address fundamental challenges in quantum technology such as scalability, decoherence or the generation of massively entangled states [4]. Here, we report experimental evidence of the non-classical nature of the harmonic emission in several semiconductors excited by a femtosecond infrared laser. By investigating single- and double beam intensity cross-correlation [5], we measure characteristic, non-classical features in the single photon statistics. We observe two-mode squeezing in the generated harmonic radiation, which depends on the laser intensity that governs the transition from Super-Poissonian to Poissonian photon statistics. The measured violation of the Cauchy-Schwarz inequality realizes a direct test of multipartite entanglement in high-harmonic generation [6]. This result is supported by the theory of multimodal detection and the Hamiltonian from which the effective squeezing modes of the harmonics can be derived [7, 8]. With this work, we show experimentally that high-harmonic generation is a new quantum bosonic platform that intrinsically produces non-classical states of light with unique features such as multipartite broadband entanglement or multimode squeezing. The source operates at room temperature using standard semiconductors and a standard commercial fiber laser, opening new routes for the quantum industry, such as optical quantum computing, communication and imaging.

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References (45)
  1. \bibcommenthead
  2. Theory of high-harmonic generation by low-frequency laser fields. Physical Review A 49, 2117 (1994).
  3. The quantum-optical nature of high harmonic generation. Nature Communications 11, 4598 (2020).
  4. Stammer, P. et al. High photon number entangled states and coherent state superposition from the extreme ultraviolet to the far infrared. Physical Review Letters 128, 123603 (2022).
  5. Lewenstein, M. et al. Attosecond physics and quantum information science. arXiv preprint arXiv:2208.14769 (2022).
  6. Loudon, R. Non-classical effects in the statistical properties of light. Reports on Progress in Physics 43, 913 (1980).
  7. Cauchy-schwarz inequality and particle entanglement. Physical Review A 90, 033616 (2014).
  8. Gonoskov, I. et al. Nonclassical light generation and control from laser-driven semiconductor intraband excitations. arXiv preprint arXiv:2211.06177 (2022).
  9. Probing multimode squeezing with correlation functions. New Journal of Physics 13, 033027 (2011).
  10. Correlation between photons in two coherent beams of light. Nature 177, 27–29 (1956).
  11. Glauber, R. J. The quantum theory of optical coherence. Physical Review 130, 2529 (1963).
  12. Abbott, B. P. et al. Observation of gravitational waves from a binary black hole merger. Physical Review Letters 116, 061102 (2016).
  13. Pirandola, S. et al. Advances in quantum cryptography. Advances in optics and photonics 12, 1012–1236 (2020).
  14. Polarization entanglement-enabled quantum holography. Nature Physics 17, 591–597 (2021).
  15. Quantum-enhanced standoff detection using correlated photon pairs. Physical Review A 99, 023828 (2019).
  16. Gilaberte Basset, M. et al. Perspectives for applications of quantum imaging. Laser & Photonics Reviews 13, 1900097 (2019).
  17. Advances in high-dimensional quantum entanglement. Nature Reviews Physics 2, 365–381 (2020).
  18. Nonlinear interactions and non-classical light. Quantum Photonics: Pioneering Advances and Emerging Applications 51–101 (2019).
  19. Two-color bright squeezed vacuum. Physical Review A 82, 011801 (2010).
  20. Alcalà, J. et al. High-harmonic spectroscopy of quantum phase transitions in a high-tc superconductor. Proceedings of the National Academy of Sciences 119, e2207766119 (2022).
  21. McPherson, A. et al. Studies of multiphoton production of vacuum-ultraviolet radiation in the rare gases. JOSA B 4, 595–601 (1987).
  22. Itatani, J. et al. Tomographic imaging of molecular orbitals. Nature 432, 867–871 (2004).
  23. Ghimire, S. et al. Observation of high-order harmonic generation in a bulk crystal. Nature Physics 7, 138–141 (2011).
  24. Floquet group theory and its application to selection rules in harmonic generation. Nature Communications 10, 405 (2019).
  25. The effect of hamiltonian symmetry on generation of odd and even harmonics. Journal of Physics B: Atomic, Molecular and Optical Physics 26, 3017 (1993).
  26. High-order harmonics measured by the photon statistics of the infrared driving-field exiting the atomic medium. Nature Communications 8, 15170 (2017).
  27. Lewenstein, M. et al. Generation of optical schrödinger cat states in intense laser–matter interactions. Nature Physics 17, 1104–1108 (2021).
  28. Quantum-optical description of photon statistics and cross correlations in high-order harmonic generation. Physical Review A 104, 033703 (2021).
  29. Stammer, P. et al. Quantum electrodynamics of intense laser-matter interactions: A tool for quantum state engineering. PRX Quantum 4, 010201 (2023).
  30. Even Tzur, M. et al. Photon-statistics force in ultrafast electron dynamics. Nature Photonics 17, 501–509 (2023).
  31. Förtsch, M. et al. A versatile source of single photons for quantum information processing. Nature Communications 4, 1818 (2013).
  32. Optical Coherence and Quantum Optics (Cambridge university press, 1995).
  33. Ghimire, S. et al. Strong-field and attosecond physics in solids. Journal of Physics B: Atomic, Molecular and Optical Physics 47, 204030 (2014).
  34. Loudon, R. The quantum theory of light (OUP Oxford, 2000).
  35. Kheruntsyan, K. et al. Violation of the cauchy-schwarz inequality with matter waves. Physical Review Letters 108, 260401 (2012).
  36. Electron-correlation induced nonclassicallity of light from high-harmonic generation. arXiv preprint arXiv:2312.08942 (2023).
  37. Light emission from strongly driven many-body systems. Nature Physics 19, 551–561 (2023).
  38. Introduction to theory of high-harmonic generation in solids: tutorial. JOSA B 39, 535–555 (2022).
  39. Walls, D. F. Squeezed states of light. Nature 306, 141–146 (1983).
  40. Superposition of two-mode squeezed states for quantum information processing and quantum sensing. Physical Review A 103, 062405 (2021).
  41. Introduction to modern quantum optics (World Scientific, 1998).
  42. Multiphoton correlations in parametric down-conversion and their measurement in the pulsed regime. Quantum Electronics 36, 951 (2006).
  43. Becker, W. Advanced time-correlated single photon counting techniques Vol. 81 (Springer Science & Business Media, 2005).
  44. Single-photon generation and detection: physics and applications (Academic Press, 2013).
  45. Zielnicki, K. et al. Joint spectral characterization of photon-pair sources. Journal of Modern Optics 65, 1141–1160 (2018).
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