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Fast temperature measurement following single laser-induced cavitation inside a microfluidic gap

机译:微流隙内单次激光诱导的空化后的快速温度测量

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摘要

Single transient laser-induced microbubbles have been used in microfluidic chips for fast actuation of the liquid (pumping and mixing), to interact with biological materials (selective cell destruction, membrane permeabilization and rheology) and more recenty for medical diagnosis. However, the expected heating following the collapse of a microbubble (maximum radius ~ 10–35 µm) has not been measured due to insufficient temporal resolution. Here, we extend the limits of non-invasive fluorescence thermometry using high speed video recording at up to 90,000 frames per second to measure the evolution of the spatial temperature profile imaged with a fluorescence microscope. We found that the temperature rises are moderate (< 12.8°C), localized (< 15 µm) and short lived (< 1.3 ms). However, there are significant differences between experiments done in a microfluidic gap and a container unbounded at the top, which are explained by jetting and bubble migration. The results allow to safe-guard some of the current applications involving laser pulses and photothermal bubbles interacting with biological material in different liquid environments.
机译:单个瞬态激光诱导的微气泡已用于微流控芯片中,以快速激活液体(泵送和混合),与生物材料相互作用(选择性细胞破坏,膜通透性和流变学),最近用于医学诊断。但是,由于时间分辨率不足,未测量到微气泡破裂(最大半径〜10–35μm)之后的预期加热。在这里,我们以每秒高达90,000帧的高速视频记录来扩展非侵入式荧光测温的范围,以测量用荧光显微镜成像的空间温度分布的演变。我们发现温度上升是中等的(<12.8°C),局部的(<15 µm)和短暂的(<1.3 ms)。但是,在微流体间隙进行的实验与顶部无限制的容器之间存在显着差异,这可以通过喷射和气泡迁移来解释。结果可以安全地保护当前涉及在不同液体环境中与生物材料相互作用的激光脉冲和光热气泡的某些应用。

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