DocumentCode :
3235363
Title :
Creating a nanocomposite metamaterial structure using the radiation force of ultrasound standing waves
Author :
Mitri, F.G. ; Sinha, D.N.
Author_Institution :
MPA 11 - Sensors & Electrochem.Devices, Los Alamos Nat. Lab., Los Alamos, NM, USA
fYear :
2011
fDate :
18-21 Oct. 2011
Firstpage :
1556
Lastpage :
1558
Abstract :
We propose to use the method based on the acoustic radiation force of counter-propagating (or standing) waves (at 1 MHz) generated inside a resonator cavity to direct the organization of nanoparticle clusters in a host fluid and create periodic arrays that are solidified in a bulk matrix. Gradually, the periodic pattern becomes permanent with full cure of the epoxy matrix so as to form a 3D periodic structure. We also show particle assembly by superimposing two ultrasound waves propagating in perpendicular directions. Furthermore, x-ray micro-computed tomography is used as a quality control tool to map the internal structure and characterize each nanocomposite. The fabrication method is a fast, cost-effective, versatile tool and not limited to a particular frequency so as to create metamaterials with different periodicities. The particles may consist of any material (metal, insulator, semiconductor, superconductor, nanowires, or tubes, CNTs, etc.), and other geometries (cylindrical, hexagonal, and other symmetries) may be also possible. Though not investigated here, the ultimate aim is to use the present results as a base for the development of finite-element models which take into account all the structural features to explore the various metamaterial functionalities in optical, acoustical, thermal, or even gravitational applications.
Keywords :
X-ray microscopy; acoustic resonators; computerised tomography; finite element analysis; metamaterials; nanocomposites; ultrasonic effects; ultrasonic waves; 3D periodic structure; X-ray microcomputed tomography; acoustic radiation force; bulk matrix solidification; counter-propagating waves; epoxy matrix; finite-element models; host fluid; metamaterial functionalities; nanocomposite metamaterial structure; nanoparticle cluster organization; particle assembly; periodic pattern; quality control tool; resonator cavity; ultrasound standing waves; ultrasound wave propagation; Acoustics; Metamaterials; Periodic structures; Rendering (computer graphics); Tomography; Ultrasonic imaging; X-Ray micro-computed tomography; nanoparticles; radiation force; ultrasound standing wave;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ultrasonics Symposium (IUS), 2011 IEEE International
Conference_Location :
Orlando, FL
ISSN :
1948-5719
Print_ISBN :
978-1-4577-1253-1
Type :
conf
DOI :
10.1109/ULTSYM.2011.0386
Filename :
6293684
Link To Document :
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