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Temperature Control Methods in a Laser Tweezers System

机译:激光镊子系统中的温度控制方法

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摘要

Two methods of temperature control of a dual-beam optical-tweezers system are compared. In the first method, we used a 975 nm infrared laser to raise the temperature 5.6°C/100mW in a nonheating (830 nm) optical trap. The temperature increment logarithmically decreases toward the periphery of the heating beam, causing a fluid convection of 8 μm/s inside a 180 μm thick microchamber. In the second method, heating or cooling fluid was pumped through copper jackets that were placed on the water immersion objectives on both sides of the microchamber to control its temperature from 4.5°C to 68°C. The temperature controlled by the second method was both stable and homogeneous, inducing little fluid convection that would disturb single-molecule applications. An analysis of the power spectrum of the thermal force on a trapped bead showed no detectable vibration due to the liquid circulation. In both methods, force was measured directly by sensors of the momentum flux of light, independent of environmental disturbances including refractive index changes that vary with temperature. The utility of the second method was demonstrated in single-molecule experiments by measuring the mechanical stretch of a 41 kbp λ double-stranded DNA at temperatures ranging from 8.4°C to 45.6°C.
机译:比较了双光束光镊系统的两种温度控制方法。在第一种方法中,我们使用975 nm红外激光器在不加热(830 nm)的光阱中将温度提高5.6°C / 100mW。温度增量沿对数方向朝着加热束的周围逐渐减小,从而在180μm厚的微腔室内造成8μm/ s的流体对流。在第二种方法中,加热或冷却流体通过铜套泵入,铜套被放置在微腔室两侧的水浸物镜上,以将其温度控制在4.5°C至68°C之间。通过第二种方法控制的温度既稳定又均匀,几乎不引起流体对流,这会干扰单分子应用。对困在珠子上的热力的功率谱的分析表明,由于液体循环,没有可检测到的振动。在这两种方法中,力都是由传感器直接测量光的动量通量,与环境干扰无关,包括随温度变化的折射率变化。通过在41°C到8.4°C到45.6°C的温度下测量41 kbpλ双链DNA的机械拉伸,在单分子实验中证明了第二种方法的实用性。

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