Zeltner Richard, Pennetta Riccardo, Xie Shangran, Russell Philip St J
Opt Lett. 2018 Apr 1;43(7):1479-1482. doi: 10.1364/OL.43.001479.
Whispering-gallery mode (WGM) resonators combine small optical mode volumes with narrow resonance linewidths, making them exciting platforms for a variety of applications. Here we report a flying WGM microlaser, realized by optically trapping a dye-doped microparticle within a liquid-filled hollow-core photonic crystal fiber (HC-PCF) using a CW laser and then pumping it with a pulsed excitation laser whose wavelength matches the absorption band of the dye. The laser emits into core-guided modes that can be detected at the endfaces of the HC-PCF. Using radiation forces, the microlaser can be freely propelled along the HC-PCF over multi-centimeter distances-orders of magnitude farther than in previous experiments where tweezers and fiber traps were used. The system can be used to measure temperature with high spatial resolution, by exploiting the temperature-dependent frequency shift of the lasing modes, and may also permit precise delivery of light to remote locations.
回音壁模式(WGM)谐振器将小的光学模式体积与窄的共振线宽相结合,使其成为适用于各种应用的令人兴奋的平台。在此,我们报告了一种飞行WGM微激光器,它是通过使用连续波激光器将掺杂染料的微粒光学捕获在充满液体的空芯光子晶体光纤(HC-PCF)内,然后用波长与染料吸收带匹配的脉冲激发激光器对其进行泵浦而实现的。该激光器发射到可在HC-PCF端面检测到的芯导模中。利用辐射力,微激光器可以沿着HC-PCF自由推进多厘米的距离——比以前使用镊子和光纤陷阱的实验远几个数量级。该系统可通过利用激光模式的温度相关频移来以高空间分辨率测量温度,并且还可能允许将光精确地传输到远程位置。