Peest Christian, Schinke Carsten, Brendel Rolf, Schmidt Jan, Bothe Karsten
Institute for Solar Energy Research Hamelin (ISFH), Am Ohrberg 1, 31860 Emmerthal, Germany.
Rev Sci Instrum. 2017 Jan;88(1):015105. doi: 10.1063/1.4973633.
Spectrophotometers are operated in numerous fields of science and industry for a variety of applications. In order to provide confidence for the measured data, analyzing the associated uncertainty is valuable. However, the uncertainty of the measurement results is often unknown or reduced to sample-related contributions. In this paper, we describe our approach for the systematic determination of the measurement uncertainty of the commercially available two-channel spectrophotometer Agilent Cary 5000 in accordance with the Guide to the expression of uncertainty in measurements. We focus on the instrumentation-related uncertainty contributions rather than the specific application and thus outline a general procedure which can be adapted for other instruments. Moreover, we discover a systematic signal deviation due to the inertia of the measurement amplifier and develop and apply a correction procedure. Thereby we increase the usable dynamic range of the instrument by more than one order of magnitude. We present methods for the quantification of the uncertainty contributions and combine them into an uncertainty budget for the device.
分光光度计在众多科学和工业领域有着广泛应用。为确保测量数据的可信度,分析相关不确定性很有必要。然而,测量结果的不确定性往往未知或仅归结于与样品相关的因素。本文中,我们依据《测量不确定度表示指南》,阐述了系统测定市售双通道分光光度计安捷伦 Cary 5000 测量不确定度的方法。我们关注的是与仪器相关的不确定度因素,而非具体应用,从而概述了一个可适用于其他仪器的通用程序。此外,我们发现了测量放大器惯性导致的系统信号偏差,并开发应用了一种校正程序。借此,我们将仪器的可用动态范围提高了一个多数量级。我们还介绍了量化不确定度因素的方法,并将其整合为该设备的不确定度预算。