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Revealing the Elemental Distribution within Latent Fingermarks Using Synchrotron Sourced X-ray Fluorescence Microscopy

机译:使用同步辐射X射线荧光显微镜揭示潜在的Fingermarks内的元素分布

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Fingermarks are an important form of crime-scene trace evidence; however, their usefulness may be hampered by a variation in response or a lack of robustness in detection methods. Understanding the chemical composition and distribution within fingermarks may help explain variation in latent fingermark detection with existing methods and identify new strategies to increase detection capabilities. The majority of research in the literature describes investigation of organic components of fingermark residue, leaving the elemental distribution less well understood. The relative scarcity of information regarding the elemental distribution within fingermarks is in part due to previous unavailability of direct, micron resolution elemental mapping techniques. This capability is now provided at third generation synchrotron light sources, where X-ray fluorescence microscopy (XFM) provides micron or submicron spatial resolution and direct detection with sub-mu M detection limits. XFM has been applied in this study to reveal the distribution of inorganic components within fingermark residue, including endogenous trace metals (Fe, Cu, Zn), diffusible ions (Cl-, K+, Ca2+), and exogeneous metals (Ni, Ti, Bi). This study incorporated a multimodal approach using XFM and infrared microspectroscopy analyses to demonstrate colocalization of endogenous metals within the hydrophilic organic components of fingermark residue. Additional experiments were then undertaken to investigate how sources of exogenous metals (e.g., coins and cosmetics) may be transferred to, and distributed within, latent fingermarks. Lastly, this study reports a preliminary assessment of how environmental factors such as exposure to aqueous environments may affect elemental distribution within fingermarks. Taken together, the results of this study advance our current understanding of fingermark composition and its spatial distribution of chemical components and may help explain detection variation observed during detection of fingermarks using standard forensic protocols.
机译:Fingermarks是一种重要的犯罪现场追踪证据形式;然而,它们的有用性可能会受到反应的变化或检测方法缺乏鲁棒性的影响。理解化学成分和分布在Fingermarks中可能有助于解释潜在的Fingermark检测与现有方法的变化,并确定增加检测能力的新策略。文献中的大多数研究描述了对Fingermark残留物的有机成分的研究,使元素分布较少理解。关于Fingermarks内的元素分布的信息的相对稀缺性部分是由于先前的直接,微米分辨率元素映射技术的不可用。该能力现在提供第三代同步rotron光源,其中X射线荧光显微镜(XFM)提供微米或亚微米空间分辨率,并用子MU M检测限制直接检测。本研究中已应用XFM以揭示指状物残留物内无机成分的分布,包括内源性痕量金属(Fe,Cu,Zn),扩散离子(Cl-,K +,Ca2 +)和相生金属(Ni,Ti,Bi )。该研究掺入了一种使用XFM和红外微谱分析分析的多模式方法,以证明在Fingermark残基的亲水性有机组分内的内源性金属的分致化。然后进行额外的实验以研究外源金属(例如,硬币和化妆品)的源,可以转移到潜在的Fingermarks内。最后,本研究报告了对环境因素(如暴露在水环境)的初步评估可能会影响Fingermarks内的元素分布。在一起,本研究的结果提前了我们目前对FingerMark成分的理解及其化学成分的空间分布,并且可以帮助解释使用标准法医协议检测Fingermark期间观察到的检测变化。

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