• Photonics Research
  • Vol. 2, Issue 4, B35 (2014)
Ye Deng, Ming Li*, Ningbo Huang, Hui Wang, and and Ninghua Zhu
Author Affiliations
  • State Key Laboratory on Integrated Optoelectronics, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China
  • show less
    DOI: 10.1364/PRJ.2.000B35 Cite this Article Set citation alerts
    Ye Deng, Ming Li, Ningbo Huang, Hui Wang, and Ninghua Zhu. Optical length-change measurement based on an incoherent single-bandpass microwave photonic filter with high resolution[J]. Photonics Research, 2014, 2(4): B35 Copy Citation Text show less
    References

    [1] B. Culshaw. Fiber optics in sensing and measurement. IEEE J. Sel. Top. Quantum Electron., 6, 1014-1021(2000).

    [2] B. Lee. Review of the present status of optical fiber sensors. Opt. Fiber Technol., 9, 57-79(2003).

    [3] C. K. Kirkendall, A. Dandridge. Overview of high performance fibre-optic sensing. J. Phys. D, 37, R197(2004).

    [4] B. Culshaw, A. Kersey. Fiber-optic sensing: a historical perspective. J. Lightwave Technol., 26, 1064-1078(2008).

    [5] R. A. Minasian. Photonic signal processing of microwave signals. IEEE Trans. Microwave Theor. Tech., 54, 832-846(2006).

    [6] J. Yao. Microwave photonics. J. Lightwave Technol., 27, 314-335(2009).

    [7] J. Capmany, J. Mora, I. Gasulla, J. Sancho, J. Lloret, S. Sales. Microwave photonic signal processing. J. Lightwave Technol., 31, 571-586(2013).

    [8] E. C. Heyd, R. A. Minasian. A solution to the synthesis problem of recirculating optical delay line filter. IEEE Photon. Technol. Lett., 6, 833-835(1994).

    [9] J. Capmany, J. Martin. Solutions to the synthesis problem of optical delay line filters. Opt. Lett., 20, 2438-2440(1995).

    [10] G. Yu, W. Zhang, J. A. R. Williams. High-performance microwave transversal filter using fiber Bragg grating arrays. IEEE Photon. Technol. Lett., 12, 1183-1185(2000).

    [11] D. Pastor, J. Capmany, B. Ortega. Broad-band tunable microwave transversal notch filter based on tunable uniform fiber Bragg gratings as slicing filters. IEEE Photon. Technol. Lett., 13, 726-728(2001).

    [12] W. Zhang, J. A. R. Williams, I. Bennion. Polarization synthesized optical transversal filter employing high birefringence fiber gratings. IEEE Photon. Technol. Lett., 13, 523-525(2001).

    [13] T. A. Cusick, S. Iezekiel, R. E. Miles, S. Sales, J. Capmany. Synthesis of all-optical microwave filters using Mach–Zehnder lattices. IEEE Trans. Microwave Theor. Tech., 45, 1458-1462(1997).

    [14] D. Pastor, J. Capmany, B. Ortega. Experimental demonstration of parallel fiber-optic-based RF filtering using WDM techniques. IEEE Photon. Technol. Lett., 12, 77-78(2000).

    [15] V. Polo, B. Vidal, J. L. Corral, J. Marti. Novel tunable photonics microwave filter based on laser arrays and N × N AWG-based delay lines. IEEE Photon. Technol. Lett., 15, 584-586(2003).

    [16] D. Norton, S. Johns, C. Keefer, R. Soref. Tunable microwave filtering using high dispersion fiber time delays. IEEE Photon. Technol. Lett., 6, 831-832(1994).

    [17] K. H. Lee, W. Y. Choi, S. Choi, K. Oh. A novel tunable fiber-optic microwave filter using multimode DCF. IEEE Photon. Technol. Lett., 15, 969-971(2003).

    [18] H. Fu, D. Chen, H. Ou, S. He. Continuously tunable incoherent microwave photonic filter using a tunable Mach-Zehnder interferometer as the slicing filter. Microwave Opt. Technol. Lett., 49, 2382-2386(2007).

    [19] W. Li, M. Li, J. Yao. A narrow-passband and frequency-tunable microwave photonic filter based on phase-modulation to intensity-modulation conversion using a phase-shifted fiber Bragg grating. IEEE Trans. Microwave Theor. Tech., 60, 1287-1296(2012).

    [20] X. Xue, X. Zheng, H. Zhang, B. Zhou. Widely tunable single-bandpass microwave photonic filter employing a non-sliced broadband optical source. Opt. Express, 19, 18423-18429(2011).

    [21] W. Li, L. X. Wang, N. H. Zhu. All-optical microwave photonic single-passband filter based on polarization control through stimulated Brillouin scattering. IEEE Photon. J., 5, 5501411(2013).

    [22] H. Wang, J. Y. Zheng, W. Li, L. X. Wang, M. Li, L. Xie, N. H. Zhu. Widely tunable single-bandpass microwave photonic filter based on polarization processing of a nonsliced broadband optical source. Opt. Lett., 38, 4857-4860(2013).

    [23] T. Wei, J. Huang, X. Lan, Q. Han, H. Xiao. Optical fiber sensor based on a radio-frequency Mach-Zehnder interferometer. Opt. Lett., 37, 647-649(2012).

    [24] J. Mora, B. Ortega, A. Díez, J. L. Cruz, M. V. Andrés, J. Capmany, D. Pastor. Photonic microwave tunable single-bandpass filter based on a Mach-Zehnder interferometer. J. Lightwave Technol., 24, 2500(2006).

    [25] X. Yi, R. A. Minasian. Dispersion induced RF distortion of spectrum-sliced microwave-photonic filters. IEEE Trans. Microwave Theor. Tech., 54, 880-886(2006).

    CLP Journals

    [1] Fei Meng, Zhongbao Qin, Qiangzhou Rong, Hao Sun, Jiacheng Li, Zaihang Yang, Manli Hu, Honggao Geng. Hybrid fiber interferometer for simultaneous measurement of displacement and temperature[J]. Chinese Optics Letters, 2015, 13(5): 050603

    Ye Deng, Ming Li, Ningbo Huang, Hui Wang, and Ninghua Zhu. Optical length-change measurement based on an incoherent single-bandpass microwave photonic filter with high resolution[J]. Photonics Research, 2014, 2(4): B35
    Download Citation