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相关概念视频

Distributed Loads01:19

Distributed Loads

Distributed loads are a common type of load that engineers and scientists encounter in various practical situations. Distributed loads often refer to a type of load spread over a surface or a structure and can be modeled as continuous force per unit area.
For example, consider a bookshelf filled with books stacked vertically adjacent to each other. The weight of the books is evenly distributed over the length of the shelf. As a result, the pressure at different locations on the surface of the...
Work and Energy for Variable Forces01:10

Work and Energy for Variable Forces

When an object is acted upon by a variable force, the amount of work done and the change in energy of the object can be more complex to calculate compared to when a constant force is applied. Work is the product of force and displacement, while energy is the capacity of a system to do work. When a constant force is applied to an object, the work done can be calculated as the product of the force and the distance moved in the direction of the force. However, when a variable force is applied, the...
Transformation of Plane Stress01:18

Transformation of Plane Stress

Studying stress transformation is essential in understanding how stress components within a material, like a cube under plane stress, change with rotation. This change is analyzed by considering a prismatic element within the cube. As the element rotates, the stress components acting on it—both normal and shearing stresses—change in magnitude and orientation. This change is quantified using trigonometric functions of the rotation angle, relating the forces acting on the rotated element's faces...
Elastic Strain Energy for Normal Stresses01:22

Elastic Strain Energy for Normal Stresses

Strain energy quantifies the energy stored within a material due to deformation under loading conditions, a fundamental concept in materials science and engineering. The strain energy can be modeled when a material is subjected to axial loading with uniformly distributed stress. In this scenario, the stress experienced by the material is the internal force divided by the cross-sectional area, and the strain induced is directly proportional to this stress through the modulus of elasticity.
If...
Elastic Strain Energy for Shearing Stresses01:20

Elastic Strain Energy for Shearing Stresses

As discussed in previous lessons, strain energy in a material is the energy stored when it is elastically deformed, a concept crucial in materials science and mechanical engineering. This energy results from the internal work done against the cohesive forces within the material. When a material undergoes shearing stress and corresponding shearing strain, the strain energy density, which is the energy stored per unit volume, is calculated. Within the elastic limit, where the stress is...
Fast Decoupled and DC Powerflow01:24

Fast Decoupled and DC Powerflow

The fast decoupled power flow method addresses contingencies in power system operations, such as generator outages or transmission line failures. This method provides quick power flow solutions, essential for real-time system adjustments. Fast decoupled power flow algorithms simplify the Jacobian matrix by neglecting certain elements, leading to two sets of decoupled equations:

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相关实验视频

Updated: Jun 24, 2026

A Simple and Scalable Fabrication Method for Organic Electronic Devices on Textiles
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使用应力工程的无损干转移方法,用于高性能灵活的二维和三维电子.

Yoonsoo Shin1,2, Seungki Hong1,2, Yong Chan Hur3

  • 1Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul, Republic of Korea.

Nature materials
|June 21, 2024
PubMed
概括

一种新的干转印方法使用应力控制的金属薄膜,使灵活和可拉伸的电子设备能够无损地制造. 这种技术克服了当前方法的局限性,为商业化铺平了道路.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 纳米技术纳米技术
  • 电子工程 电子工程

背景情况:

  • 先进的转换印刷对于软电子和生物电子等领域的高性能灵活和可拉伸设备至关重要.
  • 目前的方法面临挑战,包括有毒化学品,高成本,薄膜损坏,以及高温加工的困难.
  • 一个新的,更安全,更有效的转印工艺对于商业化软电子设备至关重要.

研究的目的:

  • 为制造高性能灵活和可拉伸的电子设备制定无损的干转印策略.
  • 解决现有的转印技术的局限性,例如安全问题和薄膜损坏.
  • 为了使各种薄膜,包括经过高温处理的氧化物,能够集成到柔性基板上.

主要方法:

  • 压力控制的金属双层薄膜的沉积使用直流磁喷射.
  • 机械曲的应用,通过增加整体应力来诱导薄膜释放.
  • 利用实验和模拟研究来了解转移过程中的压力演变.

主要成果:

  • 成功地将金属薄膜无损地转移到柔性和可拉伸的基板上.
  • 通过使用开发的方法,成功转移高温处理的氧化物薄膜.
  • 证明了二维灵活电子设备和三维多功能设备的制造.

结论:

  • 拟议的压力控制干转印策略为现有方法提供了无损且高效的替代方案.
  • 这种技术克服了关键的挑战,促进了先进软电子设备的商业化.
  • 该方法在传输各种薄膜方面的多功能性使得创建复杂的灵活和3D电子系统成为可能.