Experimental Verification of Inter Relation between Fowler–Nordheim and Millikan–Lauritsen Plot in Chemically Synthesized Zinc Oxide System

Q3 Materials Science Macromolecular Symposia Pub Date : 2024-10-17 DOI:10.1002/masy.202400121
Pankaj Kumar, Diptonil Banerjee
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Abstract

Cold cathode emission or cold field emission (CFE) is a purely quantum mechanical phenomenon and a phenomenon of wonder. The exact science behind the observed current (I)–voltage (V) is yet to be pin pointed. For instance, a good cold emitter is very reasonably supposed to have low work function and good conductivity whereas a carbon allotropes like diamonds have just the reverse in both the cases, i.e., it is insulating in nature having very wide band gap as well as high work function yet it is considered to be an efficient field emitter. Since early of 20th century, till its middle a number of groups have suggested different equations or relations that can adequately describe the experimental CFE IV characteristics adequately. Although they all fundamentally follow an exponential law, but so far, the relation suggests by Fowler and Nordheim (F–N) is the most accepted one. However, there is another relationship suggested by Millikan and Lauritsen (M–L) which is in spite of being reasonable not so common now a day to use. This work revisits different popular approaches for analyzing cold emission data. With this aim, the experimental CFE data obtained for chemically synthesized zinc oxide nanorods are chosen. The proper phase formation of ZnO is confirmed by XRD study whereas FESEM shows the rod like morphology. EDX confirms the proper stoichiometric ratio for the sample. After detail analysis it is confirmed that the theoretically proposed relation between F–N and M–L experimentally holds good as well and thus it would not be wrong to analyze the CFE data by simple M–L theory.

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化学合成氧化锌体系中 Fowler-Nordheim 图和 Millikan-Lauritsen 图之间相互关系的实验验证
冷阴极发射或冷场发射(CFE)是一种纯量子力学现象,也是一种神奇的现象。观测到的电流(I)-电压(V)背后的确切科学原理尚待确定。例如,一个好的冷发射器理应具有低功函数和良好的导电性,而像金刚石这样的碳同素异形体在这两种情况下却恰恰相反,即它本质上是绝缘的,具有非常宽的带隙和高功函数,但却被认为是一个高效的场发射器。自 20 世纪初到中期,许多研究小组提出了不同的方程或关系,以充分描述实验中的 CFE I-V 特性。虽然它们从根本上都遵循指数规律,但到目前为止,Fowler 和 Nordheim(F-N)提出的关系是最被接受的。不过,Millikan 和 Lauritsen(M-L)提出的另一种关系尽管合理,但现在并不常用。这项工作重新审视了分析冷发射数据的不同流行方法。为此,我们选择了化学合成氧化锌纳米棒的 CFE 实验数据。XRD 研究证实了氧化锌的正确相形成,而 FESEM 则显示了棒状形态。电离显微镜确认了样品的适当化学计量比。经过详细分析证实,理论上提出的 F-N 与 M-L 之间的关系在实验中也是正确的,因此用简单的 M-L 理论分析 CFE 数据并没有错。
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来源期刊
Macromolecular Symposia
Macromolecular Symposia Materials Science-Polymers and Plastics
CiteScore
1.50
自引率
0.00%
发文量
226
期刊介绍: Macromolecular Symposia presents state-of-the-art research articles in the field of macromolecular chemistry and physics. All submitted contributions are peer-reviewed to ensure a high quality of published manuscripts. Accepted articles will be typeset and published as a hardcover edition together with online publication at Wiley InterScience, thereby guaranteeing an immediate international dissemination.
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