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相关概念视频

Van der Waals Interactions01:24

Van der Waals Interactions

72.9K
Atoms and molecules interact with each other through intermolecular forces. These electrostatic forces arise from attractive or repulsive interactions between particles with permanent, partial, or temporary charges. The intermolecular forces between neutral atoms and molecules are ion–dipole, dipole–dipole, and dispersion forces, collectively known as van der Waals forces.
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Van der Waals Equation01:10

Van der Waals Equation

6.8K
The ideal gas law is an approximation that works well at high temperatures and low pressures. The van der Waals equation of state (named after the Dutch physicist Johannes van der Waals, 1837−1923) improves it by considering two factors.
First, the attractive forces between molecules, which are stronger at higher densities and reduce the pressure, are considered by adding to the pressure a term equal to the square of the molar density multiplied by a positive coefficient a. Second, the volume...
6.8K
Fermi Level Dynamics01:12

Fermi Level Dynamics

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The vacuum level denotes the energy threshold required for an electron to escape from a material surface. It is usually positioned above the conduction band of a semiconductor and acts as a benchmark for comparing electron energies within various materials.
Electron affinity in semiconductors refers to the energy gap between the minimum of its conduction band and the vacuum level and it is a critical parameter in determining how easily a semiconductor can accept additional electrons.
The work...
919
Network Covalent Solids02:18

Network Covalent Solids

16.4K
Network covalent solids contain a three-dimensional network of covalently bonded atoms as found in the crystal structures of nonmetals like diamond, graphite, silicon, and some covalent compounds, such as silicon dioxide (sand) and silicon carbide (carborundum, the abrasive on sandpaper). Many minerals have networks of covalent bonds.
To break or to melt a covalent network solid, covalent bonds must be broken. Because covalent bonds are relatively strong, covalent network solids are typically...
16.4K
Metal-Semiconductor Junctions01:24

Metal-Semiconductor Junctions

1.2K
The contact of metal and semiconductor can lead to the formation of a junction with either Schottky or Ohmic behavior.
Schottky Barriers
Schottky barriers arise when a metal with a work function (Φm) contacts a semiconductor with a different work function (Φs). Initially, electrons transfer until the Fermi levels of the metal and semiconductor align at equilibrium. For instance, if Φm > Φs, the semiconductor Fermi level is higher than the metal's before contact. The...
1.2K
Semiconductors01:22

Semiconductors

1.8K
There is variation in the electrical conductivity of materials - metals, semiconductors, and insulators that are showcased with the help of the energy band diagrams.
Metals such as copper (Cu), zinc (Zn), or lead (Pb) have low resistivity and feature conduction bands that are either not fully occupied or overlap with the valence band, making a bandgap non-existent. This allows electrons in the highest energy levels of the valence band to easily transition to the conduction band upon gaining...
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相关实验视频

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Fabricating van der Waals Heterostructures with Precise Rotational Alignment
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二维材料和范德瓦尔斯的异构结构

K S Novoselov1, A Mishchenko2, A Carvalho3

  • 1School of Physics and Astronomy, University of Manchester, Oxford Road, Manchester M13 9PL, UK. National Graphene Institute, University of Manchester, Manchester M13 9PL, UK. kostya@manchester.ac.uk phycastr@nus.edu.sg.

Science (New York, N.Y.)
|July 30, 2016
PubMed
概括

两维 (2D) 材料的快速发展使得独特的二维物理和新的异构结构设备成为可能. 本综述探讨了二维晶体的特性及其在新兴电子和光电子技术中的应用.

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科学领域:

  • 凝聚物质物理学
  • 材料科学
  • 纳米技术

背景情况:

  • 二维 (2D) 材料及其异构结构领域正在迅速发展.
  • 这些材料表现出在散装对应物中没有观察到的独特物理现象.
  • 新兴的异构设备利用这些二维特性来实现新的功能.

研究的目的:

  • 审查新型二维晶体的基本特性.
  • 研究这些特性在新型异构装置中的应用.
  • 突出2D材料在先进的电子和光电子应用中的潜力.

主要方法:

  • 对二维材料的最新进展进行文献审查.
  • 对2D系统独特的物理性质的分析.
  • 检查使用二维异构的设备架构.

主要成果:

  • 观察明显的二维物理,包括没有远程顺序和二维激子.
  • 开发新的异构结构装置,如道晶体管和共振道二极管.
  • 用传统材料无法实现的二维异构结构的功能证明.

结论:

  • 2D材料提供了一个探索基本物理和创建下一代设备的平台.
  • 2D晶体的独特特性对于新型异构结构的性能至关重要.
  • 对二维材料的持续研究有望在电子和光学方面取得重大进展.