Efficient, broadly tunable, hollow-fiber source of megawatt pulses for multiphoton microscopy.

IF 2.9 2区 医学 Q2 BIOCHEMICAL RESEARCH METHODS
Biomedical optics express Pub Date : 2025-01-06 eCollection Date: 2025-02-01 DOI:10.1364/BOE.546888
Yishai Eisenberg, Wenchao Wang, Shitong Zhao, Eric S Hebert, Yi-Hao Chen, Dimitre G Ouzounov, Hazuki Takahashi, Anna Gruzdeva, Aaron K LaViolette, Moshe Labaz, Pavel Sidorenko, Enrique Antonio-Lopez, Rodrigo Amezcua-Correa, Nilay Yapici, Chris Xu, Frank Wise
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引用次数: 0

Abstract

Three-photon fluorescence microscopy (3PM) has driven rapid progress in deep-tissue imaging beyond the depth limit of two-photon microscopy, with impacts in neuroscience, immunology, and cancer biology. Three-photon excitation places a premium on ultrashort pulses with high peak power in the 1300- and 1700-nm wavelength bands, which allow deepest imaging. The inefficiency and cost of current sources of these pulses present major barriers to the use of 3PM in biomedical research labs. Fiber sources of such pulses could potentially alleviate these problems, but the peak-power limitations of optical fibers have limited their use in 3PM. Here, we describe a fiber-based source of femtosecond pulses with multi-megawatt peak power. Femtosecond pulses at 1030 nm are launched into an antiresonant hollow-core fiber filled with argon. By varying only the gas pressure, pulses with hundreds of nanojoules of energy and sub-100 fs duration are obtained at wavelengths between 850 and 1700 nm. This approach is a new route to an efficient and potentially low-cost source for deep-tissue imaging. In particular, 960-nJ and 50-fs pulses are generated at 1300 nm with a conversion efficiency of 10%. The nearly 20-MW peak power is an order of magnitude higher than the previous best from a femtosecond solid-core fiber source at 1300 nm. As an example of the capabilities of the source, these pulses are used to image structure and neuronal activity in a mouse brain as deep as 1.1 mm below the dura.

高效,宽可调,中空光纤源兆瓦脉冲的多光子显微镜。
三光子荧光显微镜(3PM)推动了深度组织成像的快速发展,超越了双光子显微镜的深度限制,对神经科学、免疫学和癌症生物学产生了影响。三光子激发在1300和1700纳米波段具有高峰值功率的超短脉冲上发挥了重要作用,这可以实现最深的成像。这些脉冲电流源的低效率和成本是在生物医学研究实验室中使用3PM的主要障碍。这种脉冲的光纤源可能会潜在地缓解这些问题,但是光纤的峰值功率限制了它们在3PM的使用。在这里,我们描述了一种基于光纤的飞秒脉冲源,其峰值功率为几兆瓦。1030nm的飞秒脉冲被发射到充满氩气的抗谐振空心光纤中。仅通过改变气体压力,就可以在850到1700纳米之间的波长上获得能量为数百纳焦耳、持续时间低于100秒的脉冲。这种方法为深层组织成像提供了一条高效、低成本的新途径。特别是在1300 nm处产生960-nJ和50-fs脉冲,转换效率为10%。近20兆瓦的峰值功率比以前在1300纳米处从飞秒固体芯光纤源获得的最佳峰值功率高出一个数量级。作为光源能力的一个例子,这些脉冲被用来成像老鼠大脑中硬脑膜下1.1毫米深处的结构和神经元活动。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomedical optics express
Biomedical optics express BIOCHEMICAL RESEARCH METHODS-OPTICS
CiteScore
6.80
自引率
11.80%
发文量
633
审稿时长
1 months
期刊介绍: The journal''s scope encompasses fundamental research, technology development, biomedical studies and clinical applications. BOEx focuses on the leading edge topics in the field, including: Tissue optics and spectroscopy Novel microscopies Optical coherence tomography Diffuse and fluorescence tomography Photoacoustic and multimodal imaging Molecular imaging and therapies Nanophotonic biosensing Optical biophysics/photobiology Microfluidic optical devices Vision research.
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