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相关概念视频

Thermal Strain01:19

Thermal Strain

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Thermal strain is a concept that arises when we consider how temperature changes affect structures. Unlike the conventional assumption that structures remain constant under load, real-world scenarios often involve temperature fluctuations that can significantly impact these structures. Consider a homogeneous rod with a uniform cross-section resting freely on a flat horizontal surface. If the rod's temperature increases, the rod elongates. This elongation is proportional to the temperature...
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Shearing Strain01:20

Shearing Strain

1.3K
The shearing strain represents a cubic element's angular change when subjected to shearing stress. This type of stress can transform a cube into an oblique parallelepiped without influencing normal strains. The cubic element experiences a significant transformation when exposed solely to shearing stress. Its shape alters from a perfect cube into a rhomboid, clearly demonstrating the effect of shearing strain. The degree of this strain is considered positive if it reduces the angle between the...
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Measurements of Strain01:27

Measurements of Strain

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Strain quantifies the deformation of a material under force, typically measured as normal strain, which represents the change in length when compared with the original length. Electrical strain gauges are used for enhanced accuracy. These devices consist of a conductive wire mounted on a paper backing that adheres to the material's surface. These gauges operate on the piezoresistive effect, where the wire's electrical resistance changes in response to mechanical deformation. The strain...
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Strain Energy01:13

Strain Energy

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Strain energy is a fundamental concept in the field of materials science and structural engineering, describing the energy absorbed by a material or structure when it is deformed under load.
Consider a rod that is fixed at one end and subjected to an axial force at the free end. This axial force induces stress within the rod, leading to its elongation. As the axial force increases, so does the elongation of the rod, illustrating a direct relationship between the force applied and the resulting...
936
Stress-Strain Diagram01:10

Stress-Strain Diagram

2.3K
A stress-strain diagram is a crucial tool that graphically displays a material's mechanical characteristics. This diagram is derived from a tensile test performed on a carefully prepared cylindrical specimen. The specimen has two gauge marks inscribed on its central part, and the distance between these marks is known as the gauge length. The cylindrical specimen is placed in a testing machine, which applies an increasing centric load. As this load grows, so does the gauge length. This...
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Transformation of Plane Strain01:12

Transformation of Plane Strain

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When analyzing elongated structures like bars subjected to uniformly distributed loads, it is essential to understand the transformation of plane strain when coordinate axes are rotated. This transformation helps to assess how material deformation characteristics vary with orientation, which is crucial in materials science and structural engineering.
Under plane strain conditions, typical for members where one dimension significantly exceeds the others, deformations and resultant strains are...
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Chemical Synthesis of Porous Barium Titanate Thin Film and Thermal Stabilization of Ferroelectric Phase by Porosity-Induced Strain
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在光学应变的SrTiO3中,超稳定铁电

T F Nova1,2, A S Disa3, M Fechner3

  • 1Max Planck Institute for the Structure and Dynamics of Matter, Hamburg 22761, Germany. tobia.nova@mpsd.mpg.de andrea.cavalleri@mpsd.mpg.de.

Science (New York, N.Y.)
|June 15, 2019
PubMed
概括

光学刺激可以在酸 (SrTiO3) 量子电器中诱导长期的极性顺序,证明光电诱导的铁电相变. 这种转移稳定的阶段持续数小时,即使在室温下.

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科学领域:

  • 凝聚物质物理
  • 材料科学
  • 量子抛电

背景情况:

  • 固体中波动的顺序往往是对称相断裂的先兆.
  • 在一些材料中,如量子偏电酸 (SrTiO3),波动持续到零温度,抑制长距离秩序.
  • 在冷却时,SrTiO3表现出越来越大的二极波动,但没有达到铁电秩序.

研究的目的:

  • 通过光学激发来研究诱导酸 (SrTiO3) 极性秩序的可能性.
  • 描述光诱导极相的特性和持久性.
  • 探索底层机制,如光电合,驱动光诱导的相位过渡.

主要方法:

  • 在SrTiO3中对格子振动的光学激发.
  • 温度依赖的测量以确定诱导的极相的稳定性.
  • 低频振动分析以检测相位过渡.
  • 空间域分布分析

主要成果:

  • 在SrTiO3中成功诱导了光学激发.
  • 这种光诱导的极相在高达290克尔文时被观察到,并且在光中断后持续数小时.
  • 一个低频振动的硬化表明光诱导的铁电相变.
  • 观察到的域分布表明光电合的作用.

结论:

  • 光学激发提供了一个诱导和控制SrTiO3等量子电的途径.
  • 可以实现并保持长时间的超稳定,光电诱导的铁电相.
  • 光电合是一种可能的机制,有助于观察到的光诱导铁电相位过渡.