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Fourier domain mode-locked swept source at 1050 nm based on a tapered amplifier

机译:基于锥形放大器的1050 nm的傅里叶域锁模扫频光源

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摘要

While swept source optical coherence tomography (OCT) in the 1050 nm range is promising for retinal imaging, there are certain challenges. Conventional semiconductor gain media have limited output power, and the performance of high-speed Fourier domain mode-locked (FDML) lasers suffers from chromatic dispersion in standard optical fiber. We developed a novel light source with a tapered amplifier as gain medium, and investigated the FDML performance comparing two fiber delay lines with different dispersion properties. We introduced an additional gain element into the resonator, and thereby achieved stable FDML operation, exploiting the full bandwidth of the tapered amplifier despite high dispersion. The light source operates at a repetition rate of 116 kHz with an effective average output power in excess of 30 mW. With a total sweep range of 70 nm, we achieved an axial resolution of 15 μm in air (~11 μm in tissue) in OCT measurements. As our work shows, tapered amplifiers are suitable gain media for swept sources at 1050 nm with increased output power, while high gain counteracts dispersion effects in an FDML laser.
机译:尽管在1050 nm范围内的扫频光源光学相干断层扫描(OCT)有望用于视网膜成像,但仍存在某些挑战。常规的半导体增益介质的输出功率有限,并且高速傅里叶域锁模(FDML)激光器的性能会受到标准光纤中色散的影响。我们开发了一种以锥形放大器为增益介质的新型光源,并比较了具有不同色散特性的两条光纤延迟线,研究了FDML性能。我们在谐振器中引入了一个额外的增益元件,从而尽管在高色散下仍能利用锥形放大器的全部带宽,但实现了稳定的FDML操作。光源以116 kHz的重复频率工作,有效平均输出功率超过30 mW。在70 nm的总扫描范围内,我们在OCT测量中实现了空气中15μm(组织中约11μm)的轴向分辨率。正如我们的工作所示,锥形放大器是适用于1050 nm扫频光源的增益介质,具有增加的输出功率,而高增益则抵消了FDML激光器中的色散效应。

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