• Chinese Optics Letters
  • Vol. 19, Issue 7, 072701 (2021)
Boya Xie and Sheng Feng*
Author Affiliations
  • Hubei Key Laboratory of Modern Manufacturing Quality Engineering, School of Mechanical Engineering, Hubei University of Technology, Wuhan 430068, China
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    DOI: 10.3788/COL202119.072701 Cite this Article Set citation alerts
    Boya Xie, Sheng Feng. Heterodyne detection enhanced by quantum correlation[J]. Chinese Optics Letters, 2021, 19(7): 072701 Copy Citation Text show less
    References

    [1] M. Armano, H. Audley, G. Auger, J. T. Baird, M. Bassan, P. Binetruy, M. Born, D. Bortoluzzi, N. Brandt, M. Caleno, L. Carbone, A. Cavalleri, A. Cesarini, G. Ciani, G. Congedo, A. M. Cruise, K. Danzmann, M. de Deus Silva, R. De Rosa, M. Diaz-Aguiló, L. Di Fiore, I. Diepholz, G. Dixon, R. Dolesi, N. Dunbar, L. Ferraioli, V. Ferroni, W. Fichter, E. D. Fitzsimons, R. Flatscher, M. Freschi, A. F. García Marín, C. García Marirrodriga, R. Gerndt, L. Gesa, F. Gibert, D. Giardini, R. Giusteri, F. Guzmán, A. Grado, C. Grimani, A. Grynagier, J. Grzymisch, I. Harrison, G. Heinzel, M. Hewitson, D. Hollington, D. Hoyland, M. Hueller, H. Inchauspé, O. Jennrich, P. Jetzer, U. Johann, B. Johlander, N. Karnesis, B. Kaune, N. Korsakova, C. J. Killow, J. A. Lobo, I. Lloro, L. Liu, J. P. López-Zaragoza, R. Maarschalkerweerd, D. Mance, V. Martín, L. Martin-Polo, J. Martino, F. Martin-Porqueras, S. Madden, I. Mateos, P. W. McNamara, J. Mendes, L. Mendes, A. Monsky, D. Nicolodi, M. Nofrarias, S. Paczkowski, M. Perreur-Lloyd, A. Petiteau, P. Pivato, E. Plagnol, P. Prat, U. Ragnit, B. Raïs, J. Ramos-Castro, J. Reiche, D. I. Robertson, H. Rozemeijer, F. Rivas, G. Russano, J. Sanjuán, P. Sarra, A. Schleicher, D. Shaul, J. Slutsky, C. F. Sopuerta, R. Stanga, F. Steier, T. Sumner, D. Texier, J. I. Thorpe, C. Trenkel, M. Tröbs, H. B. Tu, D. Vetrugno, S. Vitale, V. Wand, G. Wanner, H. Ward, C. Warren, P. J. Wass, D. Wealthy, W. J. Weber, L. Wissel, A. Wittchen, A. Zambotti, C. Zanoni, T. Ziegler, P. Zweifel. Sub-femto-g free fall for space-based gravitational wave observatories: LISA pathfinder results. Phys. Rev. Lett., 116, 231101(2006).

    [2] J. Luo, L.-S. Chen, H.-Z. Duan, Y.-G. Gong, S. Hu, J. Ji, Q. Liu, J. Mei, V. Milyukov, M. Sazhin, C.-G. Shao, V. T. Toth, H.-B. Tu, Y. Wang, Y. Wang, H.-C. Yeh, M.-S. Zhan, Y. Zhang, V. Zharov, Z.-B. Zhou. TianQin: a space-borne gravitational wave detector. Class. Quantum Grav., 33, 035010(2016).

    [3] S. Babak, J. Gair, A. Sesana, E. Barausse, C. F. Sopuerta, C. P. L. Berry, E. Berti, P. Amaro-Seoane, A. Petiteau, A. Klein. Science with the space-based interferometer LISA. V. Extreme mass-ratio inspirals. Phys. Rev. D, 95, 103012(2017).

    [4] J. H. Shapiro, H. P. Yuen, J. A. Machado Mata. Optical communication with two-photon coherent states-part II: photoemissive detection and structured receiver performance. IEEE Trans. Information Theory, 25, 179(1979).

    [5] H. P. Yuen, V. W. S. Chan. Noise in homodyne and heterodyne detection. Opt. Lett., 8, 177(1983).

    [6] Y. Yamamoto, H. A. Haus. Preparation, measurement and information capacity of optical quantum states. Rev. Mod. Phys., 58, 1001(1986).

    [7] C. M. Caves, P. D. Drummond. Quantum limits on bosonic communication rates. Rev. Mod. Phys., 66, 481(1994).

    [8] K. Bencheikh, O. Lopez, I. Abram, J. A. Levenson. Improvement of photodetection quantum efficiency by noiseless optical preamplification. Appl. Phys. Lett., 66, 399(1995).

    [9] A. Sesana. Prospects for multiband gravitational-wave astronomy after GW150914. Phys. Rev. Lett., 116, 23110(2016).

    [10] H. P. Yuen, J. H. Shapiro. Optical communication with two-photon coherent states–part Ill: quantum measurements realizable with photoemissive detectors. IEEE Transactions on Information Theory, 26, 78(1980).

    [11] Y.-Q. Li, D. Guzun, M. Xiao. Sub-shot-noise-limited optical heterodyne detection using an amplitude-squeezed local oscillator. Phys. Rev. Lett., 82, 5225(1999).

    [12] A. A. M. Marino, C. R. Stroud, V. Wong, R. S. Bennink, R. W. Boyd. Bichromatic local oscillator for detection of two-mode squeezed states of light. J. Opt. Soc. Am. B, 24, 335(2007).

    [13] W. Li, X. D. Yu, J. Zhang. Measurement of the squeezed vacuum state by a bichromatic local oscillator. Opt. Lett., 40, 5299(2015).

    [14] S. Feng, D. C. He, B. Y. Xie. Quantum theory of phase-sensitive heterodyne detection. J. Opt. Soc. Am. B, 33, 1365(2016).

    [15] F. Liu, Y. Zhou, J. Yu, G. Guo, Y. Wu, S. Xiao, D. Wei, Y. Zhang, X. Jia, M. Xiao. Squeezing-enhanced fiber Mach–Zehnder interferometer for low-frequency phase measurement. Appl. Phys. Lett., 110, 021106(2017).

    [16] B. Y. Xie, S. Feng. Squeezing-enhanced heterodyne detection of 10 Hz atto-watt optical signals. Opt. Lett., 43, 6073(2018).

    [17] J. Kong, F. Hudelist, Z. Y. Ou, W. P. Zhang. Cancellation of internal quantum noise of an amplifier by quantum correlation. Phys. Rev. Lett., 111, 033608(2013).

    [18] C. M. Caves. Quantum limits on noise in linear amplifiers. Phys. Rev. D, 26, 1817(1982).

    [19] Z. Y. Ou, S. F. Pereira, H. J. Kimble. Quantum noise reduction in optical amplification. Phys. Rev. Lett., 70, 3239(1993).

    [20] Y. J. Wang, Y. H. Tian, X. C. Sun, L. Tian, Y. H. Zheng. Noise transfer of pump field noise with analysis frequency in a broadband parametric downconversion process. Chin. Opt. Lett., 19, 052703(2021).

    [21] R. J. Glauber. Coherent and incoherent states of the radiation field. Phys. Rev., 131, 2766(1963).

    [22] Z. Y. Ou, C. K. Hong, L. Mandel. Coherence properties of squeezed light and the degree of squeezing. J. Opt. Soc. Am. B, 4, 1574(1987).

    [23] L. Mandel, E. Wolf. Optical Coherence and Quantum Optics(1995).

    [24] R. J. Glauber. The quantum theory of optical coherence. Phys. Rev., 130, 2529(1963).

    [25] A. Mosset, F. Devaux, E. Lantz. Spatially noiseless optical amplification of images. Phys. Rev. Lett., 94, 223603(2005).

    [26] R. C. Pooser, A. M. Marino, V. Boyer, K. M. Jones, P. D. Lett. Low-noise amplification of a continuous-variable quantum state. Phys. Rev. Lett., 103, 010501(2009).

    [27] N. V. Corzo, A. M. Marino, K. M. Jones, P. D. Lett. Noiseless optical amplifier operating on hundreds of spatial modes. Phys. Rev. Lett., 109, 043602(2012).

    [28] X. C. Sun, Y. J. Wang, L. Tian, Y. H. Zheng, K. C. Peng. Detection of 13.8 dB squeezed vacuum states by optimizing the interference efficiency and gain of balanced homodyne detection. Chin. Opt. Lett., 17, 072701(2019).

    [29] T. Torounidis, P. A. Andrekson, B.-E. Olsson. Fiber-optical parametric amplifier with 70-dB gain. IEEE Photon. Tech. Lett., 18, 1194(2006).

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    [1] Jing-Chen Hao, Pei-Lin Du, Heng-Xin Sun, Kui Liu, Jing Zhang, Rong-Guo Yang, Jiang-Rui Gao.

    [1] Jing- Chen Hao, Pei- Lin Du, Heng- Xin Sun, Kui Liu, Jing Zhang, Rong- Guo Yang, Jiang- Rui Gao.

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    [1] Jing- Chen Hao, Pei- Lin Du, Heng- Xin Sun, Kui Liu, Jing Zhang, Rong- Guo Yang, Jiang- Rui Gao.

    Boya Xie, Sheng Feng. Heterodyne detection enhanced by quantum correlation[J]. Chinese Optics Letters, 2021, 19(7): 072701
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