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Metallic Solids02:37

Metallic Solids

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Metallic solids such as crystals of copper, aluminum, and iron are formed by metal atoms. The structure of metallic crystals is often described as a uniform distribution of atomic nuclei within a “sea” of delocalized electrons. The atoms within such a metallic solid are held together by a unique force known as metallic bonding that gives rise to many useful and varied bulk properties.
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and...
16.4K
Properties of Transition Metals02:58

Properties of Transition Metals

28.2K
Transition metals are defined as those elements that have partially filled d orbitals. As shown in Figure 1, the d-block elements in groups 3–12 are transition elements. The f-block elements, also called inner transition metals (the lanthanides and actinides), also meet this criterion because the d orbital is partially occupied before the f orbitals.
28.2K
Properties of Organometallic Compounds01:23

Properties of Organometallic Compounds

2.1K
Organometallic compounds are compounds that contain a carbon–metal bond. Carbon belongs to an organyl group like alkyl, aryl, allyl, or benzyl groups. The metal can be from Group I or Group II of the periodic table, a transition metal, or a semimetal.
2.1K
Plasticity00:58

Plasticity

2.2K
Plasticity is the property where an object loses its elasticity and undergoes irreversible deformation, even after the deformation forces are eliminated. If a material deforms irreversibly without increasing stress or load, then this is called ideal plasticity. For example, when a force is applied to an aluminum rod, it changes its shape, but it does not return to its original shape once the force is removed. Plastic deformation or ductility is thus a permanent deformation or change in the...
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Plastic Deformations01:19

Plastic Deformations

665
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...
665
Ferrocement01:30

Ferrocement

1.1K
Ferro-cement is a distinctive construction material that represents an innovative variant of reinforced concrete, characterized by its unique composition and the method by which it is formed. Unlike standard reinforced concrete, which relies on larger steel bars for reinforcement, ferro-cement utilizes densely packed layers of mesh or fine rods, fully encased in cement mortar. This composition allows for the creation of structures that are significantly thinner and more flexible than their...
1.1K

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Updated: May 3, 2026

Fabricating Metamaterials Using the Fiber Drawing Method
11:57

Fabricating Metamaterials Using the Fiber Drawing Method

Published on: October 18, 2012

14.3K

メタマテリアルの進歩:構造、特性、応用

Bin Zheng1, Peixuan Zhu1

  • 1State Key Laboratory of Extreme Photonics and Instrumentation, ZJU-Hangzhou Global Scientific and Technological Innovation Center, Zhejiang University, Hangzhou 310027, China.

Materials (Basel, Switzerland)
|January 10, 2026
PubMed
まとめ

メタマテリアルは、高度なアプリケーションのためにサブ波長構造を利用しています。この研究は、音響学、光学、電磁気学におけるその可能性を探求し、独自の材料特性を通じてイノベーションを推進しています。

科学分野:

  • 物理学
  • 材料科学
  • 工学

背景:

  • メタマテリアルは独自の電磁気および音響特性を提供します。
  • サブ波長構造はメタマテリアルの機能に不可欠です。
  • 研究は音響学、光学、電磁気学にまたがっています。

研究 の 目的:

  • メタマテリアルの可能性を探求すること。
  • 音響学、光学、電磁気学における研究の進歩を強調すること。
  • 新規アプリケーションのために独自のサブ波長構造を活用すること。

主な方法:

  • サブ波長構造を利用すること。
  • メタマテリアルの特性を調査すること。
  • 音響学、光学、電磁気学におけるアプリケーションを分析すること。

主要な成果:

  • サブ波長構造の独自の特性が活用されています。
  • 複数の科学分野にわたる進歩が達成されています。
  • サブ波長構造の独自の特性が活用されています。
  • 複数の科学分野にわたる進歩が達成されています。
キーワード:
メタマテリアルサブ波長構造音響学光学電磁気学材料科学

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Simulation, Fabrication and Characterization of THz Metamaterial Absorbers
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Simulation, Fabrication and Characterization of THz Metamaterial Absorbers

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Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing
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Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing

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関連する実験動画

Last Updated: May 3, 2026

Fabricating Metamaterials Using the Fiber Drawing Method
11:57

Fabricating Metamaterials Using the Fiber Drawing Method

Published on: October 18, 2012

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Simulation, Fabrication and Characterization of THz Metamaterial Absorbers
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Simulation, Fabrication and Characterization of THz Metamaterial Absorbers

Published on: December 27, 2012

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Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing
09:39

Characterizing Dissipative Elastic Metamaterials Produced by Additive Manufacturing

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結論:

  • メタマテリアルは急速に進歩する分野です。
  • サブ波長構造はメタマテリアルのパフォーマンスに不可欠です。
  • メタマテリアルは、科学および工学における将来のイノベーションの可能性を秘めています。