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Thermionic emission from surface-terminated nanocrystalline diamond

机译:表面终止的纳米晶金刚石的热电子发射

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Thermionic electron emission forms the basis of both electron sources for a variety of applications and a direct energy conversion process that is compact and scalable. The present study characterizes thermionic emission from boron-doped nanocrystalline diamond films with hydrogen and nitrophenyl surface termination layers. A hemispherical energy analyzer was used to measure electron energy distributions from the emitters at elevated temperatures. Thermionic emission energy distributions, acquired at temperatures ranging from 700 to 1100 deg C, reveal that emission occurs from regions of differing work functions. The relative peak intensities, representing each work function, change with temperature indicating instability in the emitter's surface chemistry. Corresponding partial pressure measurements of pertinent gases present in the chamber during the experiment were collected by a residual gas analyzer and support the hypothesis of unstable surface chemistry. The lowest work functions measured for the hydrogen- and nitrophenyl-terminated films were 3.95 and 3.88eV, respectively. After the initial heating cycle, the hydrogen-terminated sample's surface was regenerated by exposure to hydrogen plasma. The lower work function was restored by this process, and the resulting thermionic electron energy distributions again were indicative of surface desorption.
机译:热电子发射是形成各种应用的电子源以及紧凑且可扩展的直接能量转换过程的基础。本研究表征了具有氢和硝基苯基表面终止层的掺硼纳米金刚石薄膜的热电子发射。使用半球形能量分析仪来测量在高温下来自发射器的电子能量分布。在700到1100摄氏度的温度范围内获得的热电子发射能量分布表明,发射发生在功函数不同的区域。代表每个功函数的相对峰强度随温度变化,表明发射极表面化学性质不稳定。实验过程中存在于腔室内的相关气体的相应分压测量值由残留气体分析仪收集,并支持了表面化学不稳定的假设。对于氢和硝基苯基封端的薄膜测得的最低功函数分别为3.95和3.88eV。在最初的加热循环之后,通过暴露于氢等离子体来再生氢封端样品的表面。通过该过程恢复了较低的功函,并且所得的热电子能量分布再次表明表面解吸。

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