Engineering functional nanomaterials for biophotonics and nanomedicine applications

To date, functional nanomaterials have been commonly synthesized and applied for various biomedical applications such as sensing, imaging, drug delivery, and tissue engineering due to their unique optical, electronic, and biocompatible property. In this Ph.D. work, different types of nanomaterials/n...

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Main Author: Ouyang, Qingling
Other Authors: Yong Ken Tye
Format: Theses and Dissertations
Language:English
Published: 2019
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Online Access:https://hdl.handle.net/10356/84888
http://hdl.handle.net/10220/49168
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-848882023-07-04T16:23:48Z Engineering functional nanomaterials for biophotonics and nanomedicine applications Ouyang, Qingling Yong Ken Tye School of Electrical and Electronic Engineering Engineering::Electrical and electronic engineering To date, functional nanomaterials have been commonly synthesized and applied for various biomedical applications such as sensing, imaging, drug delivery, and tissue engineering due to their unique optical, electronic, and biocompatible property. In this Ph.D. work, different types of nanomaterials/nanodevices have been engineered, characterized, and studied for biophotonic sensing and nanodrug delivery therapy, namely, two-dimensional (2D) transition metal dichalcogenides (TMDCs), nanoporous polymers and triboelectric nanogenerator (TENG). The engineered solutions presented in the Thesis aims at addressing current limitations in healthcare diagnostics and therapeutics fields, particularly the low detection sensitivity of optical biosensors and the large footprint of stimuli-controlled drug delivery systems. The presentation of this Thesis work was divided into two parts. In the first part of Thesis, we studied the physical and optical property of a series of 2D TMDCs including molybdenum disulfide (MoS2), tungsten disulfide (WS2), molybdenum diselenide (MoSe2) and tungsten diselenide (WSe2), to develop and optimize next generation of plasmonic biosensors with high sensitivity for small molecules. The sensing performance is affected by types of 2D materials, thickness and incident wavelength. In theoretical studies, a monolayer WS2 based plasmonic biosensor was demonstrated to achieve a 200% increment in the detection sensitivity in the visible wavelength. In the experimental studies, the phase sensitivity of the WS2 sensing film reaches 15,000 deg/RIU in detecting low concentration analytes, which represents an enhancement of 151% over the conventional bare gold SPR sensing film. In addition, the enhanced SPR biosensor exhibits fast and accurate feedback in real-time monitoring of small molecules. In the second part of the work, we designed and studied the triboelectric nanogenerator (TENG) in creating a miniaturized, self-powered drug delivery device for transdermal patch application. TENG system can effectively convert various mechanical energies into electricity. It has many advantages such as the large output of power, low cost, simple fabrication, and high conversion efficiency. The designed transdermal patch mainly composed of an electric-responsive polymer and TENG. The drugs embedded in the polymer matrix were released upon receiving electric-stimuli from TENG. Such a mechanism can allow one to achieve precise control in programming the drug delivery profile by tailoring the appropriate TENG action time. The release rate can be tuned from ~ 0.05 to 0.25 μg/cm2. More importantly, the drug delivery efficiency in dermis was noted to improve by ~ 100% when compared with the absence of TENG triggered reaction. In conclusion, this Ph.D. work has generated reliable and emerging engineering solutions to overcome challenges we faced in the current healthcare diagnostic and therapeutic technology especially in the areas of optical plasmonic sensors and skin patch drug delivery devices. Such solutions can be further integrated into other sensing and drug delivery systems for personalized healthcare applications. Doctor of Philosophy 2019-07-08T02:22:17Z 2019-12-06T15:53:06Z 2019-07-08T02:22:17Z 2019-12-06T15:53:06Z 2019 Thesis Ouyang, Q. (2019). Engineering functional nanomaterials for biophotonics and nanomedicine applications. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/84888 http://hdl.handle.net/10220/49168 10.32657/10220/49168 en 277 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 Engineering::Electrical and electronic engineering
spellingShingle Engineering::Electrical and electronic engineering
Ouyang, Qingling
Engineering functional nanomaterials for biophotonics and nanomedicine applications
description To date, functional nanomaterials have been commonly synthesized and applied for various biomedical applications such as sensing, imaging, drug delivery, and tissue engineering due to their unique optical, electronic, and biocompatible property. In this Ph.D. work, different types of nanomaterials/nanodevices have been engineered, characterized, and studied for biophotonic sensing and nanodrug delivery therapy, namely, two-dimensional (2D) transition metal dichalcogenides (TMDCs), nanoporous polymers and triboelectric nanogenerator (TENG). The engineered solutions presented in the Thesis aims at addressing current limitations in healthcare diagnostics and therapeutics fields, particularly the low detection sensitivity of optical biosensors and the large footprint of stimuli-controlled drug delivery systems. The presentation of this Thesis work was divided into two parts. In the first part of Thesis, we studied the physical and optical property of a series of 2D TMDCs including molybdenum disulfide (MoS2), tungsten disulfide (WS2), molybdenum diselenide (MoSe2) and tungsten diselenide (WSe2), to develop and optimize next generation of plasmonic biosensors with high sensitivity for small molecules. The sensing performance is affected by types of 2D materials, thickness and incident wavelength. In theoretical studies, a monolayer WS2 based plasmonic biosensor was demonstrated to achieve a 200% increment in the detection sensitivity in the visible wavelength. In the experimental studies, the phase sensitivity of the WS2 sensing film reaches 15,000 deg/RIU in detecting low concentration analytes, which represents an enhancement of 151% over the conventional bare gold SPR sensing film. In addition, the enhanced SPR biosensor exhibits fast and accurate feedback in real-time monitoring of small molecules. In the second part of the work, we designed and studied the triboelectric nanogenerator (TENG) in creating a miniaturized, self-powered drug delivery device for transdermal patch application. TENG system can effectively convert various mechanical energies into electricity. It has many advantages such as the large output of power, low cost, simple fabrication, and high conversion efficiency. The designed transdermal patch mainly composed of an electric-responsive polymer and TENG. The drugs embedded in the polymer matrix were released upon receiving electric-stimuli from TENG. Such a mechanism can allow one to achieve precise control in programming the drug delivery profile by tailoring the appropriate TENG action time. The release rate can be tuned from ~ 0.05 to 0.25 μg/cm2. More importantly, the drug delivery efficiency in dermis was noted to improve by ~ 100% when compared with the absence of TENG triggered reaction. In conclusion, this Ph.D. work has generated reliable and emerging engineering solutions to overcome challenges we faced in the current healthcare diagnostic and therapeutic technology especially in the areas of optical plasmonic sensors and skin patch drug delivery devices. Such solutions can be further integrated into other sensing and drug delivery systems for personalized healthcare applications.
author2 Yong Ken Tye
author_facet Yong Ken Tye
Ouyang, Qingling
format Theses and Dissertations
author Ouyang, Qingling
author_sort Ouyang, Qingling
title Engineering functional nanomaterials for biophotonics and nanomedicine applications
title_short Engineering functional nanomaterials for biophotonics and nanomedicine applications
title_full Engineering functional nanomaterials for biophotonics and nanomedicine applications
title_fullStr Engineering functional nanomaterials for biophotonics and nanomedicine applications
title_full_unstemmed Engineering functional nanomaterials for biophotonics and nanomedicine applications
title_sort engineering functional nanomaterials for biophotonics and nanomedicine applications
publishDate 2019
url https://hdl.handle.net/10356/84888
http://hdl.handle.net/10220/49168
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