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Experimental determination of the Boltzmann constant: An undergraduate laboratory exercise for molecular physics or physical chemistry

机译:玻尔兹曼常数的实验确定:分子生物学或物理化学的本科实验

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This article describes an undergraduate laboratory exercise that uses optical spectroscopy to determine the magnitude and the uncertainty of the Boltzmann constant kb. The more accurate approach uses photoacoustic spectroscopy to measure the Doppler-broadened line profile of individual spectral lines of N2O to extract kb. Measurements and estimates of the uncertainties in the quantities needed to calculate kb from the line profiles are then used to estimate the uncertainty in kb. This experiment is unusual in that it uses advanced laser-based spectroscopy techniques to emphasize standard practices of uncertainty analysis. The core instrumentation is modular and relatively affordable; it requires a tunable single-mode laser, photoreceiver, optical cell, and vacuum pump. If this instrumentation is not available, an alternate approach can be performed which uses the intensity of each rotational transition of an infrared band to measure kb. Although there is more uncertainty using the alternate approach, low concentrations of CO2, DCl, or N2O give reasonable results for the magnitude of kb. Student assessment results indicate retention and mastery of the concept of combined measurement uncertainty.
机译:本文介绍了一个大学实验室实验,该实验使用光谱法确定Boltzmann常数kb的大小和不确定性。更准确的方法是使用光声光谱法测量N2O各个光谱线的多普勒增宽线轮廓,以提取kb。然后,根据从线轮廓中计算kb所需数量的不确定性进行测量和估计,以估计kb中的不确定性。该实验是不寻常的,因为它使用先进的基于激光的光谱技术来强调不确定性分析的标准做法。核心仪器是模块化的,价格相对便宜。它需要可调谐的单模激光器,光接收器,光学单元和真空泵。如果无法使用该仪器,则可以执行另一种方法,该方法使用红外波段每次旋转跃迁的强度来测量kb。尽管使用替代方法存在更多不确定性,但对于kb大小,低浓度的CO2,DC1或N2O会给出合理的结果。学生评估结果表明对合并测量不确定度概念的保留和掌握。

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