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Calibration of femtosecond optical tweezers as a sensitive thermometer

机译:飞秒光镊作为敏感温度计的校准

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We present cumulative perturbation effects of femtosecond laser pulses on an optical tweezer. Our experiments involve a dual wavelength high repetition rate femtosecond laser, one at the non-heating wavelength of 780 nm while the other at 1560 nm to cause heating in the trapped volume under low power (100-800 μW) conditions. The 1560 nm high repetition rate laser acts as a resonant excitation source for the vibrational combination band of the hydroxyl group (OH) of water, which helps create the local heating effortlessly within the trapping volume. With such an experimental system, we are the first to observe direct effect of temperature on the corner frequency deduced from power spectrum. We can, thus, control and measure temperature precisely at the optical trap. This observation has lead us to calculate viscosity as well as temperature in the vicinity of the trapping zone. These experimental results also support the well-known fact that the nature of Brownian motion is the response of the optically trapped bead from the temperature change of surroundings. Temperature rise near the trapping zone can significantly change the viscosity of the medium. However, we notice that though the temperature and viscosity are changing as per our corner frequency calculations, the trap stiffness remains the same throughout our experiments within the temperature range of about 20 K.
机译:我们在光学镊子上展示飞秒激光脉冲的累积扰动效应。我们的实验涉及双波长高重复率飞秒激光器,一个在780 nm的非加热波长下,另一个在1560 nm的波长下,在低功率(100-800μW)条件下引起被捕集体积的加热。 1560 nm高重复频率激光器充当水的羟基(OH)振动组合带的共振激发源,有助于在捕集体积内毫不费力地产生局部加热。有了这样的实验系统,我们是第一个观察温度对从功率谱推导的转折频率的直接影响的人。因此,我们可以在光阱处精确地控制和测量温度。该观察结果使我们能够计算陷井区域附近的粘度和温度。这些实验结果也支持众所周知的事实,即布朗运动的性质是光学捕获的小珠对周围温度变化的响应。捕集区附近的温度升高会显着改变介质的粘度。但是,我们注意到,尽管温度和粘度根据我们的转折频率计算而变化,但在整个实验中,陷阱刚度在大约20 K的温度范围内保持不变。

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