Insights into the role of transition and noble metals mediating photochemical vapor generation†

IF 3.1 2区 化学 Q2 CHEMISTRY, ANALYTICAL Journal of Analytical Atomic Spectrometry Pub Date : 2024-10-30 DOI:10.1039/D4JA00261J
Ralph E. Sturgeon, Enea Pagliano, Gisele S. Lopes, Renato S. A. Neto and Jane K. S. Brito
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Abstract

The recent expansion of the suite of elements amenable to photochemical vapor generation (PVG) is primarily linked to the addition of mg L−1 concentrations of selected transition metals (TMs) to the photolysis medium, principally Fe, Cd, Co, Ni and Cu. Their presence enhances synthesis yields of several analytical targets, particularly carbonylated species, in some cases by orders of magnitude. A consideration of curated analytical PVG literature reveals substantial inconsistencies with the current use of generalized ligand-to-metal charge transfer processes to mechanistically account for these so-called TM “sensitizer” effects via their enhancement in free radical populations participating in the PVG synthesis routes. In this study, a novel approach utilizes an independent window for evaluation of the effects of added TMs on radical production based on an examination of the altered concentration profiles of H2, CO, CH4 and CO2 generated in formic and acetic acid media, whose origins lie with the precursor free radicals responsible for the analytical PVG process. A photocatalytic mechanism induced by homogeneous co-generation of TM nanoparticles is proposed which more reasonably accounts for both the altered gas profiles and their notable selectivity evident with improved PVG efficiencies of specific analytes. A tutorial approach to the topic has been adopted in an effort to provide a balanced framework within which the various processes are comprehensively discussed with relevance to state-of-the-art PVG techniques and current literature.

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过渡金属和贵金属在光化学蒸汽产生中的作用
最近光化学蒸汽生成(PVG)的元素组的扩展主要与在光解介质中添加mg L−1浓度的选定过渡金属(TMs)有关,主要是Fe, Cd, Co, Ni和Cu。它们的存在提高了几种分析目标的合成收率,特别是羰基化的物种,在某些情况下提高了数量级。对整理的分析性PVG文献的考虑揭示了与目前使用的广义配体到金属电荷转移过程的实质性不一致,该过程通过增强参与PVG合成路线的自由基群来机械地解释这些所谓的TM“敏化剂”效应。在这项研究中,一种新的方法利用一个独立的窗口来评估添加的TMs对自由基产生的影响,该方法基于对甲酸和乙酸培养基中产生的H2、CO、CH4和CO2浓度变化谱的检查,这些变化来源于负责分析性PVG过程的前体自由基。提出了一种由TM纳米颗粒均相热电联产诱导的光催化机制,该机制更合理地解释了气体分布的改变以及特定分析物的PVG效率的显著选择性。为了提供一个平衡的框架,在这个框架内,各种过程都与最先进的PVG技术和当前文献相关,进行了全面的讨论。
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来源期刊
CiteScore
6.20
自引率
26.50%
发文量
228
审稿时长
1.7 months
期刊介绍: Innovative research on the fundamental theory and application of spectrometric techniques.
期刊最新文献
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