论文标题

用空气称量在热平衡中的光学捕获的微球

Weighing an optically trapped microsphere in thermal equilibrium with air

论文作者

Hillberry, L. E., Xu, Y., Miki-Silva, S., Alvarez, G. H., Orenstein, J. E., Ha, L. C., Ether, D. S., Raizen, M. G.

论文摘要

我们报告了一个单二氧化硅微球光学捕获并浸入空气中的称重计量实验。基于有关热平衡的波动,研究了三种不同的质量测量值,每种质量测量是由两种原理方法之一引起的。第一种方法基于光谱分析,并可以同时提取各种系统参数。此外,光谱方法在3秒内的系统相对不确定性为3.0 \%,并且在几个诱捕激光功率中的统计相对不确定性为0.9 \%。从光谱方法中学到的参数值是基于均衡定理的第二种方法的输入或校准步骤。该方法给出了两个额外的质量测量值,其系统和统计相对不确定性比光谱方法中获得的相对不确定性略大,但在时间间隔内短10倍。我们的质量估计值是在强烈的环境耦合方面获得的,其不确定性可与真空中纳米球进行的力驱动计量实验中获得的质量估计值可比。此外,了解微球的质量准确,精确地将实现基于空气的传感应用。

We report a weighing metrology experiment of a single silica microsphere optically trapped and immersed in air. Based on fluctuations about thermal equilibrium, three different mass measurements are investigated, each arising from one of two principle methods. The first method is based on spectral analysis and enables simultaneous extraction of various system parameters. Additionally, the spectral method yields a mass measurement with systematic relative uncertainty of 3.0\% in 3~s and statistical relative uncertainty of 0.9\% across several trapping laser powers. Parameter values learned from the spectral method serve as input, or a calibration step, for the second method based on the equipartition theorem. The equipartition method gives two additional mass measurements with systematic and statistical relative uncertainties slightly larger than the ones obtained in the spectral method, but over a time interval 10 times shorter. Our mass estimates, which are obtained in a scenario of strong environmental coupling, have uncertainties comparable to ones obtained in force-driven metrology experiments with nanospheres in vacuum. Moreover, knowing the microsphere's mass accurately and precisely will enable air-based sensing applications.

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