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All-fibre supercontinuum laser for in vivo multispectral photoacoustic microscopy of lipids in the extended near-infrared region

机译:全光纤超连续谱激光器用于体内多光谱光声显微镜观察扩展的近红外区域中的脂质

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摘要

Among the numerous endogenous biological molecules, information on lipids is highly coveted for understanding both aspects of developmental biology and research in fatal chronic diseases. Due to the pronounced absorption features of lipids in the extended near-infrared region (1650−1850 nm), visualisation and identification of lipids become possible using multi-spectral photoacoustic (optoacoustic) microscopy. However, the spectroscopic studies in this spectral region require lasers that can produce high pulse energies over a broad spectral bandwidth to efficiently excite strong photoacoustic signals. The most well-known laser sources capable of satisfying the multi-spectral photoacoustic microscopy requirements (tunability and pulse energy) are tunable nanosecond optical parametric oscillators. However, these lasers have an inherently large footprint, thus preventing their use in compact microscopy systems. Besides, they exhibit low-repetition rates. Here, we demonstrate a compact all-fibre, high pulse energy supercontinuum laser that covers a spectral range from 1440 to 1870 nm with a 7 ns pulse duration and total energy of 18.3 μJ at a repetition rate of 100 kHz. Using the developed high-pulse energy source, we perform multi-spectral photoacoustic microscopy imaging of lipids, both on adipose tissue and to study the development of tadpoles, using six different excitation bands over the first overtone transition of C–H vibration bonds (1650−1850 nm).
机译:在众多内源性生物分子中,关于脂质的信息极受垂涎,因为它们既可以理解发育生物学的方面,也可以研究致命性慢性病。由于脂质在扩展的近红外区域(1650-1850 nm)中具有明显的吸收特征,因此使用多光谱光声(光声)显微镜可以对脂质进行可视化和鉴定。然而,在该光谱区域中的光谱研究需要能够在宽光谱带宽上产生高脉冲能量的激光器,以有效地激发强光声信号。能够满足多光谱光声显微镜要求(可调谐性和脉冲能量)的最著名的激光源是可调谐纳秒光学参量振荡器。但是,这些激光器固有地具有较大的覆盖区,因此妨碍了它们在紧凑型显微镜系统中的使用。此外,它们显示出低重复率。在这里,我们演示了一种紧凑的全光纤,高脉冲能量超连续谱激光器,该激光器以1100 kHz的重复频率覆盖1440至1870 nm的光谱范围,脉冲持续时间为7 ns,总能量为18.3μJ。利用发达的高脉冲能量源,我们在脂肪组织上进行了脂质的多光谱光声显微镜成像,并在C–H振动键的第一个泛音跃迁上使用了六个不同的激发带来研究s的发育。 -1850 nm)。

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