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Plastic Deformations01:19

Plastic Deformations

471
Plastic deformation represents a fundamental concept in materials science, which explains the irreversible change in the shape of a material when it experiences stress beyond its elastic capability. This phenomenon is important in structural engineering, especially in designing and analyzing cantilever beams—structures that are securely fixed at one end and bear loads at the opposite end. When these beams are subjected to loads within their elastic range, they will return to their...
471
Plastic Deformations01:14

Plastic Deformations

473
It is essential to understand how structural members behave under plastic deformation when the bending stress exceeds the material's yield strength. This state of deformation permanently alters the shape of the member, in contrast to the linear elastic behavior observed before yielding. The strain at any point in the member is expressed in terms of maximum strain. Notably, the neutral axis, which coincides with the centroid during elastic bending, shifts away from the centroid under plastic...
473
Temperature Dependent Deformation01:12

Temperature Dependent Deformation

409
In a nonhomogeneous rod made up of steel and brass, restrained at both ends and subjected to a temperature change, several steps are involved in calculating the stress and compressive load. Due to the problem's static indeterminacy, one end support is disconnected, allowing the rod to experience the temperature change freely. Next, an unknown force is applied at the free end, triggering deformations in the rod's steel and brass portions. These deformations are then calculated and added...
409
Deformations in a Symmetric Member in Bending01:18

Deformations in a Symmetric Member in Bending

521
When analyzing the deformation of a symmetric prismatic member subjected to bending by equal and opposite couples, it becomes clear that as the member bends, the originally straight lines on its wider faces curve into circular arcs, with a constant radius centered at a point known as Point C. This phenomenon helps to understand the stress and strain distribution within the member more clearly.
When the member is segmented into tiny cubic elements, it is observed that the primary stress...
521
Deformation of Member under Multiple Loadings01:11

Deformation of Member under Multiple Loadings

484
When a rod is made of different materials or has various cross-sections, it must be divided into parts that meet the necessary conditions for determining the deformation. These parts are each characterized by their internal force, cross-sectional area, length, and modulus of elasticity. These parameters are then used to compute the deformation of the entire rod.
In the case of a member with a variable cross-section, the strain is not constant but depends on the position. The deformation of an...
484
Deformation in a Circular Shaft01:10

Deformation in a Circular Shaft

929
One of the distinctive characteristics of circular shafts is their ability to maintain their cross-sectional integrity under torsion. In other words, each cross-section continues to exist as a flat, unaltered entity, simply rotating like a solid, rigid slab. To understand the distribution of shearing stress within such a shaft, consider a cylindrical section inside this circular shaft. This section has a length of L and a radius of R, with one end fixed. The radius of the cylindrical section is...
929

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Related Experiment Video

Updated: Feb 8, 2026

Epitaxial Nanostructured &#945;-Quartz Films on Silicon: From the Material to New Devices
11:34

Epitaxial Nanostructured α-Quartz Films on Silicon: From the Material to New Devices

Published on: October 6, 2020

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New Deformation-Induced Nanostructure in Silicon.

Bo Wang1,2, Zhenyu Zhang1, Keke Chang2

  • 1Key Laboratory for Precision and Non-Traditional Machining Technology of Ministry of Education , Dalian University of Technology , Dalian 116024 , China.

Nano Letters
|June 19, 2018
PubMed
Summary

Researchers developed a new method for creating silicon nanostructures using high-speed nanoscale deformation. This technique enables the fabrication of advanced nanostructures for electronic devices.

Keywords:
NanostructureSideformationstresstransmission electron microscopy

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Solid-State Physics

Background:

  • Silicon nanostructures are crucial for high-performance electronic devices.
  • Previous fabrication methods for nanostructures have limitations in confinement and loading conditions.
  • Nanoscale deformation at high speeds (m/s) has not been previously demonstrated for nanostructure fabrication.

Purpose of the Study:

  • To develop a novel approach for fabricating nanostructures using nanoscale deformation at high speeds.
  • To investigate the characteristics and formation mechanisms of newly observed deformation-induced nanostructures in silicon.
  • To explore potential applications of these novel nanostructures in electronic and energy devices.

Main Methods:

  • High-speed nanoscale deformation using grinding or scratching at 40.2 m/s with a specialized diamond tip (5.11 GPa stress).
  • Characterization of nanostructures using transmission electron microscopy (TEM).
  • Elucidation of the formation mechanism of the new phase using ab initio simulations (2.16 GPa shear stress).

Main Results:

  • A novel deformation-induced nanostructure in silicon was successfully fabricated.
  • The observed nanostructure comprises an amorphous phase, a new tetragonal phase, slip bands, twinning superlattices, and a single crystal.
  • The formation mechanism of the new tetragonal phase was explained through simulations.

Conclusions:

  • A new route for fabricating nanostructures via nanoscale deformation at m/s speeds has been established.
  • The findings offer insights into creating advanced silicon nanostructures for transistors, integrated circuits, diodes, solar cells, and energy storage.
  • This work advances the field of nanostructure fabrication for next-generation electronic applications.