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基于可扩展的微型制造和设计的等级音声元材料
Charles Dorn1,2, Vignesh Kannan1,3, Ute Drechsler4
1Mechanics and Materials Laboratory, ETH Zurich, Zurich, Switzerland.
Nature communications
|February 25, 2026
概括
可扩展的音声元材料被设计和制造用于弹性波导. 这一突破使得复杂的波导具有数百万个单元细胞,用于芯片上先进的操作.
科学领域:
- 材料科学 材料科学 材料科学
- 声学 声学 在声学方面
- 固体力学 固体力学是什么
背景情况:
- 超材料具有独特的波浪操纵特性.
- 音声元材料的重点是机械波.
- 扩展性是音声元材料开发中的一个主要挑战.
研究的目的:
- 开发一个可扩展的框架来设计和制造音声元材料.
- 为了使复杂的弹性波导与大量单元细胞的创建.
- 通过使用开发的方法来演示宽带弹性波导.
主要方法:
- 开发了一个可扩展的逆向设计框架,用于空间分级的音声元材料.
- 利用光线跟踪模型在分级光束格子中进行波传播.
- 在基元材料的微制造中使用光刻法和蚀刻.
- 使用激光激发和干扰测量测量进行实验验证.
主要成果:
- 成功设计和制造了具有数十万个单元细胞的音声元材料.
- 证明了宽带弹性波导能力.
- 框架可以扩展到数以百万计的单元细胞,而无需修改协议.
结论:
- 提出的可扩展的设计和制造框架克服了音声元材料开发中的局限性.
- 这种方法对芯片上的弹性波操纵和集成音声设备具有显著的前景.
相关概念视频
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The innovation of touch-tone telephony revolutionized the telecommunications industry by replacing the traditional rotary dial with a dual-tone multi-frequency (DTMF) signaling system. This system uses a matrix-style keypad with buttons arranged in four rows and three columns, creating 12 distinct signals each assigned to a pair of frequencies. Each button press results in a simultaneous generation of two sinusoidal tones – one from a low-frequency group (697 to 941 Hz) and one from a...

