材料科学
超短脉冲
皮秒
光纤激光器
激光器
纤维
兴奋剂
光学
石英纤维
光纤
光电子学
物理
复合材料
作者
Yafei Wang,Yinggang Chen,Shikai Wang,Meng Wang,Lei Zhang,Suya Feng,Fei Yu,Guoping Dong,Lei Wen,Danping Chen,Chunlei Yu,Lili Hu
标识
DOI:10.1117/1.apn.2.6.066002
摘要
Ultrashort pulses at 920 nm are a highly desired light source in two-photon microscopy for the efficient excitation of green fluorescence protein. Although Nd3 + -doped fibers have been utilized for 920-nm ultrashort pulse generation, the competitive amplified spontaneous emission (ASE) at 1.06 μm remains a significant challenge in improving their performance. Here, we demonstrate a coordination engineering strategy to tailor the properties of Nd3 + -doped silica glass and fiber. By elevating the covalency between Nd3 + and bonded anions via sulfur incorporation, the fiber gain performance at 920 nm is enhanced, and 1.06-μm ASE intensity is suppressed simultaneously. As a result, the continuous-wave laser efficiencies and signal-to-noise ratio at 920 nm by this fiber are significantly enhanced. Importantly, the stable picosecond pulses at 920 nm are produced by a passive mode-locking technique with a fundamental repetition rate up to 207 MHz, which, to the best of our knowledge, is the highest reported repetition rate realized by Nd3 + -doped silica fibers. The presented strategy enriches the capacity of Nd3 + -doped silica fiber in generating 920-nm ultrashort pulses for application in biophotonics, and it also provides a promising way to tune the properties of rare-earth ion-doped silica glasses and fibers toward ultrafast lasers.
科研通智能强力驱动
Strongly Powered by AbleSci AI