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同步辐射紫外-可见多光谱发光显微成像在历史样品分析中的应用。

Synchrotron UV-visible multispectral luminescence microimaging of historical samples.

机构信息

Scientific Research Department, National Gallery of Art, Washington, DC 20565, United States.

出版信息

Anal Chem. 2011 Mar 1;83(5):1737-45. doi: 10.1021/ac102986h. Epub 2011 Feb 3.

Abstract

UV-visible luminescence techniques are fre-quently used for the study of cultural heritage materials, despite their limitations for identification and discrimination in the case of complex heterogeneous materials. In contrast to tabletop setups, two methods based on the vacuum ultraviolet (VUV)-UV-visible emission generated at a bending magnet of a synchrotron source are described. The main advantages of the source are the extended wavelength range attained, the continuous tunability of the source, and its brightness, leading to a submicrometer lateral resolution. Raster-scanning microspectroscopy and full-field microimaging were implemented and tested at the DISCO beamline (synchrotron SOLEIL, France). Investigative measurements were performed on a sample from a varnished musical instrument and a paint sample containing the pigment zinc white (ZnO) in order to illustrate some of the challenges analyzing heterogeneous cultural heritage cross-section samples with the novel imaging approach. The data sets obtained proved useful for mapping organic materials at the submicrometer scale and visualizing heterogeneities of the semiconductor pigment material. We propose and discuss the combined use of raster-scanning microspectroscopy and full-field microimaging in an integrated analytical methodology. Synchrotron UV luminescence appears as a novel tool for identification of craftsmen's and artists' materials and techniques and to assess the condition of artifacts, from the precise identification and localization of luminescent materials.

摘要

尽管在面对复杂的多相材料时,其在鉴定和区分方面存在局限性,但紫外-可见发光技术常用于文化遗产材料的研究。与台式设备不同,本文描述了两种基于同步辐射源弯曲磁体产生的真空紫外(VUV)-紫外可见发射的方法。该光源的主要优点是获得了扩展的波长范围、连续可调谐性和亮度,从而实现了亚微米级的横向分辨率。在 DISCO 光束线(法国 SOLEIL 同步加速器)上实现并测试了光栅扫描微光谱和全场微成像。对来自上漆乐器的样品和含有颜料锌白(ZnO)的油漆样品进行了研究性测量,以说明用新型成像方法分析多相文化遗产截面样品时的一些挑战。所获得的数据集对于在亚微米尺度上绘制有机材料图并可视化半导体颜料材料的异质性非常有用。我们提出并讨论了在集成分析方法中结合使用光栅扫描微光谱和全场微成像。同步加速器紫外发光似乎是一种新工具,可用于识别工匠和艺术家的材料和技术,并从发光材料的精确识别和定位来评估文物的状况。

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