EFRI NewLAW:: Non-reciprocal Elastic Wave Propagation in dynamically modulated Photo-elastic media
EFRI NewLAW:: Non-reciprocal Elastic Wave Propagation in dynamically modulated Photo-elastic media
批准号:
1640860
负责人:
Pierre Deymier
金额:
$194.39万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-08-15 至 2022-07-31
中文摘要
波的传播是信息传输、电信或医学成像中使用的技术设备的核心,是一种普遍存在的物理现象。波的单向传播正在成为一种新的现象,它可以扰乱当前技术使用波的方式。传统上和直觉上,人们期望波在正向或反向传播得同样好,然而,某些介质可能会打破这种对称性。单向或单向传播,也称为波的非互易传播,将传播限制在一个方向上。这种非传统的特性可能会实现全新的功能,并最终实现新的技术和设备。该奖项支持基础研究,为开发能够支持弹性波的非互易传播的固体材料提供所需的知识。与电子二极管的出现类似,在电子二极管中,非互易元素构成了现代电子和计算的基础,这项研究将使未来的设备能够运行,其运行依赖于处理固体中弹性波传输的信息。这种装置的例子是表面或体声波装置以及电信中使用的光机械系统。这项研究涉及材料科学、力学、光子学和物理学等多个学科。这种多学科的方法将有助于扩大未被充分代表的群体在研究中的参与,并对工程教育产生积极的影响。该项目将研究固体硫化物玻璃和相变材料,作为产生单向传播的表面和块体弹性波的平台。硫化物材料具有大的、快速的和可逆光弹性效应,材料的弹性性质,如刚性,在光的照射下会发生变化。该项目利用动态照明对固体介质弹性性质的时空调制,这是最近出现的一种潜在的打破对称性的通用方法,以实现固体中的非互易弹性波传播。该团队将开发理论、数值和实验方法,创建一个新的概念和实践框架,以开发在动态调制弹性结构(如纤维或薄膜)中非常规传播的弹性波。这将包括定义机制、设计和控制参数,以打破弹性波传播方向的对称性,并实现固体介质中的非互易波传播。
英文摘要
The propagation of waves is a ubiquitous physical phenomenon at the heart of technological devices used in information transmission, telecommunication or medical imaging. One-way propagation of waves is emerging as a novel phenomenon that can disrupt ways in which current technologies employ waves. Conventionally and intuitively, one expects waves to propagate equally well in the forward or backward directions, however, certain media can break this symmetry. One-way or unidirectional propagation, also called non-reciprocal propagation of waves, restricts the transmission to only one direction. This unconventional property may enable totally new functionalities and ultimately new technologies and devices. This award supports fundamental research to provide needed knowledge for the development of solid materials that can support non-reciprocal propagation of elastic waves. Similar to the advent of the electrical diode, in which non-reciprocal elements formed the basis for modern electronics and computing, this research will enable future devices, whose operation relies on processing information transported by elastic waves in solids. Examples of such devices are surface or bulk acoustic wave devices as well as opto-mechanical systems used in telecommunication. This research involves several disciplines including materials science, mechanics, photonics and physics. The multi-disciplinary approach will help broaden participation of underrepresented groups in research and positively impact engineering education.The project will investigate solid chalcogenide glasses and phase change materials as a platform to produce surface and bulk elastic waves with unidirectional propagation. Chalcogenide materials possess large, fast, and reversible photo-elastic effects whereby the material elastic properties such as stiffness change upon illumination by light. This project exploits the spatiotemporal modulation of solid media's elastic properties through dynamical illumination, which has recently emerged as a potential universal method of breaking symmetry to achieve non-reciprocal elastic wave propagation within solids. The team will develop the theoretical, numerical and experimental methods to create a new conceptual and practical framework for developing elastic waves with non-conventional propagation in dynamically modulated elastic structures such as fibers or membranes. This will include defining the mechanisms, designs, and control parameters to break the symmetry in the direction of propagation of elastic waves and achieve non-reciprocal wave propagation in solid media.
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Design of Elastic Band Structures with Broken Symmetry via Spatio-Temporal Modulations of Elasticity
通过弹性时空调制设计破缺对称弹性带结构
DOI:
--
发表时间:
2017
期刊:
Phonon Transport/Coupling and Topological Phononics
影响因子:
--
作者:
[Deymier, P. A., Runge, K., Gole, V., Lucas, P., Vasseur, J. O., Boechler, N.]
通讯作者:
Boechler, N.
DOI:
10.1103/physrevb.104.214209
发表时间:
2021-12
期刊:
Physical Review B
影响因子:
3.7
作者:
[Lizhu Li;A. Khanolkar;J. Ari;P. Deymier;P. Lucas]
通讯作者:
Lizhu Li;A. Khanolkar;J. Ari;P. Deymier;P. Lucas
DOI:
10.1063/5.0041256
发表时间:
2021-02
期刊:
Journal of Applied Physics
影响因子:
3.2
作者:
[P. Deymier;K. Runge;M. A. Hasan]
通讯作者:
P. Deymier;K. Runge;M. A. Hasan
DOI:
10.1121/at.2021.17.3.13
发表时间:
2021
期刊:
Acoustics Today
影响因子:
--
作者:
[A. Alú]
通讯作者:
A. Alú
DOI:
10.1063/5.0086559
发表时间:
2022-02
期刊:
Applied Physics Letters
影响因子:
4
作者:
[P. Deymier;K. Runge]
通讯作者:
P. Deymier;K. Runge
共 14 条
New Frontiers of Sound (NewFoS) Science and Technology Center
-
批准号:2242925
-
项目类别:Cooperative Agreement
-
资助金额:$2999.78万
-
财政年份:2023
-
负责人:Pierre Deymier
-
依托单位:
Collaborative Research: CQIS: A Sound Leap (SouL)
-
批准号:2204400
-
项目类别:Standard Grant
-
资助金额:$59.57万
-
财政年份:2022
-
负责人:Pierre Deymier
-
依托单位:
Student Support to 5th International Conference on Phonomic Crystals/Metamaterials, Phonon Transport/Coupling & Topological Phonomics; Tucson, Arizona; 2-7 June 2019
-
批准号:1902900
-
项目类别:Standard Grant
-
资助金额:$1.95万
-
财政年份:2018
-
负责人:Pierre Deymier
-
依托单位:
Defect Reduction in Megasonic Cleaning, through In-Situ Characterization of Cavitation Processes using a Novel Electrochemistry based Device with Improved Time and Space Resolution
-
批准号:0925340
-
项目类别:Standard Grant
-
资助金额:$29.91万
-
财政年份:2009
-
负责人:Pierre Deymier
-
依托单位:
K-Space Multifunctional Acoustic Wave Devices
-
批准号:0924103
-
项目类别:Standard Grant
-
资助金额:$29.67万
-
财政年份:2009
-
负责人:Pierre Deymier
-
依托单位:
NIRT: Reversible and Directional Self-Assembly of Bio-Molecular Templates for Nanotechnology Interconnects
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批准号:0303863
-
项目类别:Standard Grant
-
资助金额:$122.8万
-
财政年份:2003
-
负责人:Pierre Deymier
-
依托单位:
海外基金