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Thermoelectric and thermospintronic transport in Dirac material-based nanostructures.

机译:Dirac基于材料的纳米结构中的热电和热自旋电子传输。

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摘要

The growing need for power due to the rapid developments of the technologies has urged both engineers and scientists to study more sustainable types of energy. On the other hand, the improvement of our abilities although enable us, for example, to double the number of transistors in a dense integrated circuit approximately every two years (Moore's law), comes with side effect due to overheating. Taking advantage of thermoelectric effect has thus become one of the obvious solutions for the problems. But due to the poor efficiency of electricity-heat conversion, there are still challenges to be overcome in order to fully utilize the idea.;In the past few years, the realization of graphene along with the discoveries of topological insulators (TI) which are both considered as Dirac material (DM) have offer alternative routs for improving the energy conversion efficiency through different approaches as well as novel quantum effects of materials themselves for investigation.;The aim of this thesis is to present contributions to improving the efficiency of thermoelectric conversion as well as analyzing spin transport phenomena that occur in nano-devices. This thesis spans the areas of thermoelectric (TE) effect, spin-Seebeck effect (SSE) and the spin transport on the 3D topological insulator (TI). The different methods have been applied ranging from tight-binding (TB) approximation to density function theory (DFT) combined with non-equilibrium function (NEGF) techniques.
机译:由于技术的飞速发展,对电力的需求不断增长,这促使工程师和科学家们都必须研究更可持续的能源类型。另一方面,能力的提高虽然使我们能够例如每两年将密集集成电路中的晶体管数量增加一倍(摩尔定律),却会因过热而产生副作用。因此,利用热电效应已成为解决这些问题的明显方法之一。但由于电热转换效率低下,要充分利用该思想仍需克服挑战。近年来,石墨烯的实现以及拓扑绝缘子(TI)的发现两种都被认为是狄拉克材料(DM)提供了替代途径,可以通过不同的方法来提高能量转换效率,以及材料本身具有新颖的量子效应,以供研究。本论文的目的是为提高热电转换效率做出贡献以及分析纳米设备中发生的自旋传输现象。本文涵盖了3D拓扑绝缘体(TI)上的热电(TE)效应,自旋塞贝克效应(SSE)和自旋输运的领域。从紧密结合(TB)近似到结合非平衡函数(NEGF)技术的密度泛函理论(DFT),已经应用了各种方法。

著录项

  • 作者

    Chang, Po-Hao.;

  • 作者单位

    University of Delaware.;

  • 授予单位 University of Delaware.;
  • 学科 Physics.;Condensed matter physics.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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