单电子同步辐射在光学光谱辐射测量中的应用

A. S. Sigov, E. R. Lazarenko, N. B. Golovanova, O. A. Minaeva, S. I. Anevsky, R. V. Minaev, P. Yu. Pushkin
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摘要

目标。在红外(IR)、可见光和空气紫外(UV)光谱区域对光辐射源和计量探测器特性的研究部分是基于同步辐射独特的计量特性。本工作的目的是建立一种高精度的方法来测定单电子同步辐射的存储环加速电子数,以建立光谱辐射测量和光度测量单位。方法。通过确定加速电子的数量,任何存储环都可以用来计算同步辐射在可见光、空气紫外和红外光谱区域的许多大波长处的特性。这使得可以确定归一化到电子数的主要计量特性,如发光强度、亮度、照度、辐射功率、辐射度、辐照度等,而不考虑电子的能量。结果。当采用该方法测定电子存储环在低电流下的加速电子数时,在每轨道1−1010个电子的宽动态范围内,CCD矩阵在10−2 ~ 3·103 s的曝光范围内,加速电子数的总标准差小于0.01%。结论。使用基于CCD的辐射计-比较器,通过同步辐射源的响应度进行校准,在监测亮度对比阈值和物体和背景亮度的空间分布以及确定光电测量仪器的计量特性,包括CCD相机,辐射计,光谱辐射计和光度计方面特别相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synchrotron radiation of a single electron application for optical spectroradiometry
Objectives . The investigations of optical radiation sources and metrological detector characteristics in the infrared (IR), visible, and air ultraviolet (UV) spectral regions are partially based on the unique metrological properties of synchrotron radiation. The aim of this work is to develop a high-precision method for determining the storage ring accelerated electron number with synchrotron radiation of a single electron to establish spectroradiometry and photometry units. Methods. By determining the number of accelerated electrons, any storage ring can be used to calculate the synchrotron radiation characteristics at wavelengths of many large then the critical wavelength in the visible, air UV, and IR regions of the spectrum. This makes it possible to determine the main metrological characteristics normalized to the number of electrons, such as luminous intensity, luminance, illuminance, radiant power, radiance, irradiance, etc., regardless of the energy of the electrons. Results. When applying the method for determining the number of accelerated electrons at low currents of the electronic storage ring, a total standard deviation of the number of accelerated electrons is less than 0.01% for an exposure range of the CCD matrix from 10−2 to 3 · 103 s in a wide dynamic range of 1−1010 electrons per orbit. Conclusions . The use of a CCD-based radiometer-comparator calibrated by responsivity on a synchrotron radiation source is particularly relevant in monitoring luminance contrast thresholds and spatial distribution of object and background brightness, as well as determining metrological characteristics of optoelectronic measuring instruments, including CCD cameras, radiometers, spectroradiometers and photometers.
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