Kim Min Seok, Kim Jihoon, Lee Seul-Lee, Choi Sungwook, Jeong Sun Jae, Kim Do Kyung, Lee Yong Wook
Interdisciplinary Program of Biomedical Mechanical & Electrical Engineering, Pukyong National University, 45 Yongso-ro, Nam-gu, Busan 48513, Korea.
School of Electrical Engineering, Pukyong National University, 45 Yongso-ro, Nam-gu, Busan 48513, Korea.
J Nanosci Nanotechnol. 2020 Jan 1;20(1):155-160. doi: 10.1166/jnn.2020.17234.
Here we propose a wavelength-switchable erbium-doped fiber ring laser using a temperatureinsensitive spectral polarization-dependent loss (PDL) element and two fiber Bragg gratings (FBGs). The fiber PDL element was fabricated by inscribing a long-period grating (LPG) on polarizationmaintaining photonic crystal fiber (PMPCF) with a 10.6 m CO₂ laser. The LPG fabricated on PMPCF, referred to as PMPCF-LPG, has the characteristics of a fiber polarizer at two specific wavelengths due to the birefringence of PMPCF and the co-directional mode coupling of the LPG. The two wavelengths at which the fabricated PMPCF-LPG acts as a polarizer are two resonance wavelengths (~1528.58 and ~1555.90 nm) of the PMPCF-LPG, obtained for orthogonal input polarization states. By considering these two resonance wavelengths of the PMPCF-LPG, the Bragg wavelengths of two FBGs, which determine lasing wavelengths in our wavelength-switchable laser, were selected as ~1527.71 and ~1554.74 nm. As the temperature sensitivity of the PMPCF birefringence is 30 times lower than that of the birefringence of conventional polarization-maintaining fiber (PMF), the fabricated PMPCF-LPG could facilitate more stable switching operation between the two lasing wavelengths in comparison with a previous fiber laser employing an LPG inscribed on conventional PMF as a wavelength-switching filter. The lasing wavelengths of our laser could be switched by controlling input polarization of the PMPCF-LPG with a polarization controller, and temperature-insensitive wavelength switching operation was experimentally demonstrated over a temperature range of 25-100 °C.
在此,我们提出一种波长可切换的掺铒光纤环形激光器,它使用一个温度不敏感的光谱偏振相关损耗(PDL)元件和两个光纤布拉格光栅(FBG)。光纤PDL元件是通过用10.6米的二氧化碳激光在保偏光子晶体光纤(PMPCF)上写入长周期光栅(LPG)制成的。在PMPCF上制作的LPG,称为PMPCF-LPG,由于PMPCF的双折射和LPG的同向模式耦合,在两个特定波长处具有光纤偏振器的特性。制作的PMPCF-LPG作为偏振器的两个波长是PMPCF-LPG的两个共振波长(1528.58和1555.90纳米),是针对正交输入偏振态获得的。考虑到PMPCF-LPG的这两个共振波长,我们的波长可切换激光器中决定激射波长的两个FBG的布拉格波长被选为1527.71和1554.74纳米。由于PMPCF双折射的温度敏感性比传统保偏光纤(PMF)双折射的温度敏感性低30倍,与之前采用刻写在传统PMF上的LPG作为波长切换滤波器的光纤激光器相比,制作的PMPCF-LPG可以促进在两个激射波长之间更稳定的切换操作。我们激光器的激射波长可以通过用偏振控制器控制PMPCF-LPG的输入偏振来切换,并且在25-100°C的温度范围内通过实验证明了温度不敏感的波长切换操作。