Shi Tiantian, Pan Duo, Chang Pengyuan, Shang Haosen, Chen Jingbiao
State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Electronics Engineering and Computer Science, and Center for Quantum Information Technology, Peking University, Beijing 100871, People's Republic of China.
Rev Sci Instrum. 2018 Apr;89(4):043102. doi: 10.1063/1.5020969.
Without exploiting any frequency selective elements, we have realized a highly integrated, single-mode, narrow-linewidth Nd:YAG 1064 nm laser, which is end-pumped by the 808.6 nm diode laser in an integrated invar cavity. It turns out that each 1064 nm laser achieves a most probable linewidth of 8.5 kHz by beating between two identical laser systems. The output power of the 1064 nm laser increases steadily as the 808.6 nm pump power is raised, which can be up to 350 mW. Moreover, the resonant wavelength of cavity grows continuously in a certain crystal temperature range. Such a 1064 nm laser will be frequency stabilized to an ultrastable cavity by using the Pound-Drever-Hall technique and used as the good cavity laser to lock the main cavity length of 1064/1470 nm good-bad cavity dual-wavelength active optical clock.
在未采用任何频率选择元件的情况下,我们实现了一种高度集成的单模窄线宽Nd:YAG 1064 nm激光器,它由808.6 nm二极管激光器在集成殷钢腔中进行端面泵浦。结果表明,通过在两个相同的激光系统之间拍频,每个1064 nm激光器实现了最可能线宽为8.5 kHz。随着808.6 nm泵浦功率的提高,1064 nm激光器的输出功率稳步增加,可达350 mW。此外,在一定的晶体温度范围内,腔的谐振波长持续增长。这样的1064 nm激光器将通过使用庞德-德弗-霍尔技术频率稳定到一个超稳腔,并用作良好腔激光器来锁定1064/1470 nm好坏腔双波长有源光钟的主腔长度。