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相关概念视频

Semiconductors01:22

Semiconductors

1.7K
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...
1.7K
Types of Semiconductors01:20

Types of Semiconductors

1.6K
Intrinsic semiconductors are highly pure materials with no impurities. At absolute zero, these semiconductors behave as perfect insulators because all the valence electrons are bound, and the conduction band is empty, disallowing electrical conduction. The Fermi level is a concept used to describe the probability of occupancy of energy levels by electrons at thermal equilibrium. In intrinsic semiconductors, the Fermi level is positioned at the midpoint of the energy gap at absolute zero. When...
1.6K
Biasing of Metal-Semiconductor Junctions01:27

Biasing of Metal-Semiconductor Junctions

709
Biasing metal-semiconductor junctions involves applying a voltage across the junction. Specifically, the metal is connected to a voltage source, while the semiconductor is grounded. This technique is essential for controlling the direction and magnitude of current flow in electronic devices, including diodes, transistors, and photovoltaic cells.
In Schottky junctions, where the semiconductor is n-type, applying a positive voltage to the metal relative to the semiconductor reduces its Fermi...
709

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相关实验视频

Updated: Feb 26, 2026

Design, Fabrication, and Experimental Characterization of Plasmonic Photoconductive Terahertz Emitters
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用于高波光电子的定制半导体

Murat Sivis1,2, Marco Taucer3, Giulio Vampa3

  • 1Joint Attosecond Science Laboratory, National Research Council of Canada and University of Ottawa, 100 Sussex Drive, Ottawa, Ontario K1A 0R6, Canada. msivis@uni-goettingen.de.

Science (New York, N.Y.)
|July 22, 2017
PubMed
概括

研究人员设计了固态材料来控制高波生成,从而实现了量身定制的二次科学应用. 这一突破使得在定制的固体目标中精确控制光物相互作用.

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科学领域:

  • 固态物理
  • 一秒钟的科学
  • 纳米光子学

背景情况:

  • 气体中的高生成 (HHG) 是第二科学领域的先驱.
  • 固体中的HHG为超快光谱和光生成提供了新的途径.

研究的目的:

  • 在纳米结构和离子植入的半导体中探索和控制高和生成.
  • 在固态材料中展示HHG的局部定制.

主要方法:

  • 使用纳米结构和离子植入的半导体作为HHG介质.
  • 使用波长选择性的显微镜成像来映射波辐射.
  • 修改材料组成和形态来定制发电介质和驱动场.

主要成果:

  • 通过改变材料特性,可以对固体中的高气进行局部控制.
  • 产生的定制高波场到225纳米.
  • 通过使用弗雷内尔区域板目标,证明了对1微米点大小的波动器的衍射有限的自我聚焦.

结论:

  • 精确设计的固体目标使得高和技术的先进控制.
  • 固态HHG提供了一个多功能平台,用于为超快的科学创造量身定制的光场.