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SIMULATION OF THERMIONIC EMISSION FROM A QUANTUM WIRE USING THE NON-EQUILIBRIUM GREEN'S FUNCTION METHOD

机译:用非平衡格林函数方法模拟量子线的热辐射

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摘要

Even though the theory of thermionic emission of electrons from bulk metals is well understood, discrete electron energy states exist when material length scales approach one nanometer, and the traditional treatment must be revised. This paper presents a theoretical development of thermionic emission from nanoscale materials. A general expression for the emitted current as a function of field, temperature and work function is established for a quantum wire. The results differ from those of 3-D bulk materials. Simulation of thermionic emission from a quantum wire is achieved with the non-equilibrium Green's function (NEGF) method, which includes relevant mesoscopic physics and has been widely applied to transport problems in nanostructures. The NEGF approach provides a powerful solution to modeling problems when interfacial transport effects between bulk and confined conductors are important. Both the theoretical and simulated results indicate a higher current density and thus higher energy conversion capacity than that of a bulk material with the same work function. Thus the quantum confined materials may provide a method for improving the capacity of direct energy conversion devices and systems.
机译:即使从块状金属中电子热电子发射的理论已广为人知,但当材料长度尺度接近1纳米时,存在离散的电子能态,必须对传统的处理方法进行修改。本文介绍了纳米级材料热电子发射的理论发展。对于量子线,建立了作为场,温度和功函数的函数的发射电流的一般表达式。结果与3-D散装材料的结果不同。使用非平衡格林函数(NEGF)方法可以实现对量子线热电子发射的模拟,该方法包括相关的介观物理原理,已广泛应用于纳米结构中的传输问题。当在散装和受限导体之间的界面传输效应很重要时,NEGF方法为建模问题提供了有力的解决方案。理论结果和模拟结果均表明,与具有相同功函数的块状材料相比,电流密度更高,因此能量转换能力更高。因此,量子约束材料可以提供一种用于提高直接能量转换装置和系统的容量的方法。

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