Multi-wave electromagnetic-acoustic sensing and imaging : physics and system

Single-wave electromagnetic (EM) sensing and imaging has attracted tremendous research interest for many real-life applications, ranging from high-frequency optical imaging (e.g. confocal microscopy, coherence optical tomography), microwave imaging (e.g. Radar, THz imaging), to low-frequency magneti...

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Main Author: Gao, Fei
Other Authors: Zheng Yuanjin
Format: Theses and Dissertations
Language:English
Published: 2015
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Online Access:http://hdl.handle.net/10356/63281
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-632812023-07-04T15:13:23Z Multi-wave electromagnetic-acoustic sensing and imaging : physics and system Gao, Fei Zheng Yuanjin School of Electrical and Electronic Engineering VIRTUS IC Design Centre of Excellence DRNTU::Engineering::Electrical and electronic engineering::Electronic circuits Single-wave electromagnetic (EM) sensing and imaging has attracted tremendous research interest for many real-life applications, ranging from high-frequency optical imaging (e.g. confocal microscopy, coherence optical tomography), microwave imaging (e.g. Radar, THz imaging), to low-frequency magnetic imaging (e.g. MRI). On the other hand, single-wave acoustic sensing and imaging have also found many applications in Sonar system, medical ultrasound imaging, non-destructive testing (NDT), etc.. Unfortunately, these single-wave sensing and imaging techniques suffers from either low imaging contrast or spatial resolution due to the nature of single-wave diffusion and/or diffraction. In recent decades, multi-wave EM-Acoustic sensing and imaging have shown significant potential in biomedical applications by "listening to the sound of EM wave" based on photoacoustic/thermoacoustic effect, i.e. acoustic generation due to transient EM energy absorption and thermoelastic expansion. Bridging the beauty of the two worlds, multi-wave EM-Acoustic imaging could break through the diffusion and diffraction limit of EM wave by detecting the induced acoustic wave with 1000 times less scattering, enhancing the spatial resolution with deep penetration and simultaneously maintaining the high contrast/specificity of EM sensing and imaging. To further advance the multi-wave EM-Acoustic sensing and imaging techniques, this PhD thesis comprehensively investigates several novel aspects of this area, covering fundamental methods, biomedical applications and system implementations. Doctor of Philosophy (EEE) 2015-05-12T03:57:17Z 2015-05-12T03:57:17Z 2015 2015 Thesis Gao, F. (2015). Multi-wave electromagnetic-acoustic sensing and imaging : physics and system. Doctoral thesis, Nanyang Technological University, Singapore. http://hdl.handle.net/10356/63281 en 228 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Electrical and electronic engineering::Electronic circuits
spellingShingle DRNTU::Engineering::Electrical and electronic engineering::Electronic circuits
Gao, Fei
Multi-wave electromagnetic-acoustic sensing and imaging : physics and system
description Single-wave electromagnetic (EM) sensing and imaging has attracted tremendous research interest for many real-life applications, ranging from high-frequency optical imaging (e.g. confocal microscopy, coherence optical tomography), microwave imaging (e.g. Radar, THz imaging), to low-frequency magnetic imaging (e.g. MRI). On the other hand, single-wave acoustic sensing and imaging have also found many applications in Sonar system, medical ultrasound imaging, non-destructive testing (NDT), etc.. Unfortunately, these single-wave sensing and imaging techniques suffers from either low imaging contrast or spatial resolution due to the nature of single-wave diffusion and/or diffraction. In recent decades, multi-wave EM-Acoustic sensing and imaging have shown significant potential in biomedical applications by "listening to the sound of EM wave" based on photoacoustic/thermoacoustic effect, i.e. acoustic generation due to transient EM energy absorption and thermoelastic expansion. Bridging the beauty of the two worlds, multi-wave EM-Acoustic imaging could break through the diffusion and diffraction limit of EM wave by detecting the induced acoustic wave with 1000 times less scattering, enhancing the spatial resolution with deep penetration and simultaneously maintaining the high contrast/specificity of EM sensing and imaging. To further advance the multi-wave EM-Acoustic sensing and imaging techniques, this PhD thesis comprehensively investigates several novel aspects of this area, covering fundamental methods, biomedical applications and system implementations.
author2 Zheng Yuanjin
author_facet Zheng Yuanjin
Gao, Fei
format Theses and Dissertations
author Gao, Fei
author_sort Gao, Fei
title Multi-wave electromagnetic-acoustic sensing and imaging : physics and system
title_short Multi-wave electromagnetic-acoustic sensing and imaging : physics and system
title_full Multi-wave electromagnetic-acoustic sensing and imaging : physics and system
title_fullStr Multi-wave electromagnetic-acoustic sensing and imaging : physics and system
title_full_unstemmed Multi-wave electromagnetic-acoustic sensing and imaging : physics and system
title_sort multi-wave electromagnetic-acoustic sensing and imaging : physics and system
publishDate 2015
url http://hdl.handle.net/10356/63281
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