[3] PENG Z, CHI CH CH. Temperature-insensitive magnetic field sensor based on nanoparticle magnetic fluid and photonic crystal fiber [J]. IEEE Photonics Journal, 2012, 4: 491-498.
[5] CHIEH J J, YANG S Y, HORNG H E. Magnetic-fluid optical-fiber modulators via magnetic modulation [J]. Applied Physics Letters, 2007, 90(13): 133505.
[6] PENG Z, CHI CH CH. High extinction ratio magneto-optical fiber modulator based on nanoparticle magnetic fluids [J]. IEEE Photonics Journal, 2012, 4: 1140-1146.
[7] TARASENKO O, MARGULIS W. Electro-optical fiber modulation in a Sagnac interferometer [J]. Optics Letters, 2007, 32(11): 1356-1358.
[8] STARODUMOV A N, ZENTENO L A, ARZATE N, et al.. Nonlinear-optical modulator for high-power fiber lasers[J]. Optics Letters, 1997, 22(5): 286-288.
[9] RAJABVAND M, BEHNIA F. In-fiber wavelength-selective modulation of WDM channels with performance analysis[J]. Journal of Lightwave Technology, 2010, 28(1): 141-147.
[10] MORENO I, DAVIS J A, HERNANDEZ T M, et al.. Complete polarization control of light from a liquid crystal spatial light modulator[J]. Optics Express, 2012, 20(1): 364-376.
[11] QI Y H, DESJARDINS P, MENG X S, et al.. Electrochromic ruthenium complex materials for optical attenuation[J]. Optical Materials, 2003, 21(1-3): 255-263.
[12] TWU R C, HONG H Y, LEE H H, et al.. An optical homodyne technique to measure photorefractive-induced phase drifts in lithium niobate phase modulators[J]. Optics Express, 2008, 16(6): 4366-4374.
[13] PENG F, YANG J, LI X L, et al.. In-fiber integrated accelerometer [J]. Optics Letters, 2011, 36(11): 2056-2058.
[14] YANG X H, LI L, YUAN L B, et al.. Submicrometer organic silica gel fiber for oxygen sensing[J]. Optics Letters, 2011, 36(23): 4656-4658.
[15] DONG B, CUI Y M, YANG H, et al.. The preparation and magnetic properties of GdxBiY2-YFe5O12 nanoparticles [J]. Materials Letters, 2006, 60(17-18): 2094-2097.