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Portable semiconductor disk laser for in vivo tissue monitoring: a platform for the development of clinical applications

机译:用于体内组织监测的便携式半导体磁盘激光器:开发临床应用的平台

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Long term in vivo observations at large penetration depths and minimum sample disturbance are some of the key factors that have enabled the study of different cellular and tissue mechanisms. The continuous optimization of these aspects is the main driving force for the development of advanced microscopy techniques such as those based on nonlinear effects. Its wide implementation for general biomedical applications is however, limited as the currently used nonlinear microscopes are based on bulky, maintenance-intensive and expensive excitation sources such as Ti:sapphire ultrafast lasers. We present the suitability of a portable (140x240x70 mm) ultrafast semiconductor disk laser (SDL) source, to be used in nonlinear microscopy. The SDL is modelocked by a quantum-dot semiconductor saturable absorber mirror (SESAM). This enables the source to deliver an average output power of 287 mW with 1.5 ps pulses at 500 MHz, corresponding to a peak power of 0.4 kW. The laser center wavelength (965 nm) virtually matches the two-photon absorption cross-section of the widely used Green Fluorescent Protein (GFP). This property greatly relaxes the required peak powers, thus maximizing sample viability. This is demonstrated by presenting two-photon excited fluorescence images of GFP labeled neurons and second-harmonic generation images of pharyngeal muscles in living C. elegans nematodes. Our results also demonstrate that this compact laser is well suited for efficiently exciting different biological dyes. Importantly this non expensive, turn-key, compact laser system could be used as a platform to develop portable nonlinear bio-imaging devices, facilitating its widespread adoption in biomedical applications
机译:在较大的穿透深度和最小的样品干扰下进行的长期体内观察是一些使研究不同细胞和组织机制成为可能的关键因素。这些方面的不断优化是高级显微镜技术(例如基于非线性效应的技术)发展的主要动力。但是,由于当前使用的非线性显微镜是基于庞大,维护密集且昂贵的激发源(如Ti:蓝宝石超快激光器),因此其在一般生物医学应用中的广泛应用受到限制。我们介绍了便携式(140x240x70 mm)超快半导体磁盘激光器(SDL)光源的适用性,该光源可用于非线性显微镜检查。 SDL与量子点半导体可饱和吸收镜(SESAM)形成模型。这使电源能够在500 MHz时以1.5 ps脉冲提供287 mW的平均输出功率,相当于0.4 kW的峰值功率。激光中心波长(965 nm)实际上与广泛使用的绿色荧光蛋白(GFP)的双光子吸收截面相匹配。该特性极大地放宽了所需的峰值功率,从而最大限度地提高了样品的活力。这可以通过呈现活的秀丽隐杆线虫线虫的GFP标记神经元的双光子激发荧光图像和咽肌的二次谐波生成图像来证明。我们的结果还表明,这种紧凑型激光器非常适合于有效激发不同的生物染料。重要的是,这种廉价,交钥匙,紧凑的激光系统可以用作开发便携式非线性生物成像设备的平台,从而促进其在生物医学应用中的广泛采用。

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