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首页> 外文期刊>Spectrochimica Acta, Part B. Atomic Spectroscopy >Electrothermal atomization of silver in graphite furnaces. Part 1. A two-precursor mechanism
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Electrothermal atomization of silver in graphite furnaces. Part 1. A two-precursor mechanism

机译:石墨炉中银的电热雾化。第1部分。前驱机制

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A two-precuisor kinetic mechanism is proposed to describe the electrothermal atomization of silver The effects of the superposition of two simultaneous atomization processes on the absorbance profiles and the Arrhenius plots are presented, both by numerical simulation and according to experimentai measurements Also, a new method is proposed for the determination of the rate constant of dissipation of the atomic vapor from a single absorbance pulse, under conditions of extended time-varying temperature By numerical simulations, two temperature regions of atomization, with well defined atomization energies, are predicted by the Anrhenius plots for systems in which the vaporization processes are at least partially time resolved. In agreement with the two-precursor model, a double peak structure is detected in the experimental absorbance profiles of silver, and the Arrhenius plots also show two temperature regions of atomization. Employing a heating rate of 300 K s~(-1), average atomization energies of120 and 250 kJ mol~(-1) are obtained in the low and the high temperature region, respectively However, at a higher heating rate of 700 K s~(-1), an atomization energy that increases from 125 to 240 kJ mol~(-1), as the initial mass of the analyte increases, is obtained in the low temperature region, whereas a mass average atomization energy of 117 kJ mol~(-1), with a first kinetic order of release, is obtained in the high temperature region The results seem to indicate simultaneous first order atomization from dispersed particles, and also from small clusters, whose size increases as the initial mass of Ag increases. Employing this two-precursor mechanism, with the experimental atomization energies and pre-exponentiai factors, an excellent descriptionof the entire absorbance profiles and their corresponding Arrhenius plots is obtained.
机译:提出了一种双前驱动力学机制来描述银的电热雾化。通过数值模拟和实验测量,提出了两个同时雾化过程的叠加对吸光度分布图和阿累尼乌斯图的影响。提出了在延长的随时间变化的温度条件下确定单个吸收脉冲的原子蒸气耗散速率常数的方法。通过数值模拟,Anrhenius预测了两个雾化温度区域,其中雾化能量定义明确至少部分时间分辨了汽化过程的系统的曲线图。与二前体模型一致,在银的实验吸光度图中检测到双峰结构,并且阿累尼乌斯图还显示了两个雾化温度区域。采用300 K s〜(-1)的加热速率,在低温和高温区域分别获得120和250 kJ mol〜(-1)的平均雾化能。但是,在700 K s的较高加热速率下〜(-1)的雾化能量从125 kJ mol增加到240 kJ mol〜(-1),随着分析物初始质量的增加,在低温区域获得,而质均雾化能量为117 kJ mol 〜(-1)在高温区域获得了第一级的释放动力学。结果似乎表明,分散颗粒以及小团簇同时发生了一级雾化,随着Ag初始质量的增加,团簇的大小也随之增大。利用这种双前体机理,结合实验的雾化能量和预指数因子,可以很好地描述整个吸收光谱及其相应的阿伦尼乌斯曲线。

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