Mobile QR Code QR CODE : Journal of the Korean Institute of Illuminating and Electrical Installation Engineers

Journal of the Korean Institute of Illuminating and Electrical Installation Engineers

ISO Journal TitleJ Korean Inst. IIIum. Electr. Install. Eng.

References

1 
Hubner J., Varming P., Kristensen M., 1997, Five wavelength DFB fibre laser source for WDM systems, Electron. Lett., Vol. 36, No. 2, pp. 193-140DOI
2 
Lin B., et. al., 2011, Dual-wavelength single-longitudinal-mode erbium-doped fiber laser based on inverse-Gaussian apodized fiber Bragg grating and its application in microwave generation, Opt. Fiber Technol., Vol. 17, No. 2, pp. 120-123DOI
3 
Li Q., et. al., 2012, Photonic generation of microwave signal using a dual‐wavelength fiber ring laser with fiber bragg grating‐based fabry‐perot filter and saturable absorber, Opt. Technol. Lett., Vol. 54, No. 9, pp. 2074-2077DOI
4 
Feng S., et. al., 2013, Photonic generation of microwave signal by beating a dual‐wavelength single longitudinal mode erbium‐doped fiber ring laser based on the polarization maintaining fiber bragg grating, Opt. Technol. Lett., Vol. 55, No. 2, pp. 347-351DOI
5 
Persijn S., Harren F., Van Der Veen A., 2010, Quantitative gas measurements using a versatile OPO-based cavity ringdown spectrometer and the comparison with spectroscopic databases, Appl. Phys. B, Vol. 100, No. 2, pp. 383-390DOI
6 
Xu C., et. al., 2018, All-fiber laser with flattop beam output using a few-mode fiber Bragg grating, Opt. Lett., Vol. 43, No. 6, pp. 1247-1250DOI
7 
Sun B., et. al., 2012, Low-threshold single-wavelength all-fiber laser generating cylindrical vector beams using a few-mode fiber Bragg grating, Opt. Lett., Vol. 37, No. 4, pp. 464-466DOI
8 
Chen R., et. al., 2018, High efficiency all-fiber cylindrical vector beam laser using a long-period fiber grating, Opt. Lett., Vol. 43, No. 4, pp. 755-758DOI
9 
Chun-Liu Z., et. al., 2004, Switchable multi-wavelength erbium-doped fiber lasers by using cascaded fiber Bragg gratings written in high birefringence fiber, Opt. Commun., Vol. 230, No. 4-6, pp. 313-317DOI
10 
Peng W. J., et. al., 2013, 1.94μm switchable dual-wavelength Tm3+ fiber laser employing high-birefringence fiber Bragg grating, Appl. Opt., Vol. 52, No. 19, pp. 4601-4607DOI
11 
Mao Q., Lit J. W. Y., 2002, Switchable multiwavelength erbium-doped fiber laser with cascaded fiber grating cavities, IEEE Photon. Technol. Lett., Vol. 14, No. 5, pp. 612-614DOI
12 
Luo A. -P., Luo Z. -C., Xu W. -C., 2011, Switchable dual-wavelength passively mode-locked fiber ring laser using SESAM and cascaded fiber Bragg gratings, Laser Phys., Vol. 21, No. 2, pp. 395-398DOI
13 
Lee Y. W., Lee B., 2003, Wavelength-switchable erbium-doped fiber ring laser using spectral polarization-dependent loss element, IEEE Photon. Technol. Lett., Vol. 15, No. 6, pp. 795-797DOI
14 
Moon D. S., Paek U. -C., Chung Y., 2004, Multi-wavelength lasing oscillations in an erbium-doped fiber laser using few-mode fiber Bragg grating, Opt. Express, Vol. 12, No. 25, pp. 6147-6152DOI
15 
Sun B., et. al., 2012, Low-threshold single-wavelength all-fiber laser generating cylindrical vector beams using a few-mode fiber Bragg grating, Opt. Lett., Vol. 37, No. 4, pp. 464-466DOI
16 
Han K. J., et. al., 2004, Simultaneous measurement of strain and temperature incorporating a long-period fiber grating inscribed on a polarization-maintaining fiber, IEEE Photon. Technol. Lett., Vol. 16, No. 9, pp. 2114-2116DOI