Advancing stretchable optoelectronic devices with structural and material designs

Stretchable electronics are emerging as a new type of devices with their exceeding mechanical compliance compared to the rigid or flexible devices. They can confront demanding mechanical deformations such as twisting, stretching, or conformably wrapping, enabling electronic applications under rigoro...

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Main Author: Wang, Jiangxin
Other Authors: Lee Pooi See
Format: Theses and Dissertations
Language:English
Published: 2016
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Online Access:https://hdl.handle.net/10356/67905
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-679052023-03-04T16:42:22Z Advancing stretchable optoelectronic devices with structural and material designs Wang, Jiangxin Lee Pooi See School of Materials Science & Engineering DRNTU::Engineering::Materials::Photonics and optoelectronics materials Stretchable electronics are emerging as a new type of devices with their exceeding mechanical compliance compared to the rigid or flexible devices. They can confront demanding mechanical deformations such as twisting, stretching, or conformably wrapping, enabling electronic applications under rigorous mechanical conditions that cannot be addressed by conventional devices. Stretchable electronics are believed to be one of the essential technologies for the next generation electronic device applications. With their significantly improved mechanical “robustness”, the challenges to develop the enabling technologies for stretchable devices also become more difficult to resolve. In this thesis, we focus on developing new structural and material approaches to enable stretchable optoelectronic devices, including stretchable photodetectors and stretchable electroluminescent devices. Nanowires have driven special interest in the research society due to their unique one-dimensional structure. We presented the fabrication of Zn2GeO4 nanowires and Zn2SnO4 nanowires in a chemical vapor deposition system and their assembly by a solution-processible approach for highly deformable and transparent ultraviolet photodetectors. The solution-processible approach was firstly demonstrated to assemble Zn2GeO4 nanowires and silver nanowires for transparent and flexible photodetectors. The fabricated device showed excellent mechanical stability, high photoresponse and fast switching time. Mechanical properties of the nanowire network structures were further improved to achieve stretchable devices. The first stretchable and transparent ultraviolet photodetector was demonstrated by embedding the nanowire device structures into polymer matrix. Zonyl surfactant was found to be an efficient additive to improve the bonding strength between the nanowire networks and the stretchable polymer matrix, leading to significantly improved transfer efficiency. The transparent and stretchable silver nanowire networks embedded in polymer matrix were also exploited as the electrodes for stretchable alternating-current electroluminescent (ACEL) devices. The highly stretchable EL devices fabricated with ACEL materials could achieve stable emission under large stretching strains. The unique emission mechanism in ACEL materials was essential for stable device operation under mechanical deformations. With the simple device configuration and highly conformable structures, the stretchable ACEL devices were integrated with dielectric elastomer actuators. An unprecedented self-deformable EL device was demonstrated which could be driven into dynamic shapes under external electrical bias. Stretchability of the ACEL devices was further improved by using ionic conductors as the transparent and stretchable electrodes. The ionic conductors were fabricated with blends of conductive electrolytes and polymers. Transparency and stretchability of the ionic conductors greatly exceeded those of the electronic conductors. An extremely stretchable ACEL device using ionic conductors as the stretchable and transparent electrodes was demonstrated with the stretchability of 700%. DOCTOR OF PHILOSOPHY (MSE) 2016-05-23T06:55:16Z 2016-05-23T06:55:16Z 2016 Thesis Wang, J. (2016). Advancing stretchable optoelectronic devices with structural and material designs. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/67905 10.32657/10356/67905 en 149 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::Materials::Photonics and optoelectronics materials
spellingShingle DRNTU::Engineering::Materials::Photonics and optoelectronics materials
Wang, Jiangxin
Advancing stretchable optoelectronic devices with structural and material designs
description Stretchable electronics are emerging as a new type of devices with their exceeding mechanical compliance compared to the rigid or flexible devices. They can confront demanding mechanical deformations such as twisting, stretching, or conformably wrapping, enabling electronic applications under rigorous mechanical conditions that cannot be addressed by conventional devices. Stretchable electronics are believed to be one of the essential technologies for the next generation electronic device applications. With their significantly improved mechanical “robustness”, the challenges to develop the enabling technologies for stretchable devices also become more difficult to resolve. In this thesis, we focus on developing new structural and material approaches to enable stretchable optoelectronic devices, including stretchable photodetectors and stretchable electroluminescent devices. Nanowires have driven special interest in the research society due to their unique one-dimensional structure. We presented the fabrication of Zn2GeO4 nanowires and Zn2SnO4 nanowires in a chemical vapor deposition system and their assembly by a solution-processible approach for highly deformable and transparent ultraviolet photodetectors. The solution-processible approach was firstly demonstrated to assemble Zn2GeO4 nanowires and silver nanowires for transparent and flexible photodetectors. The fabricated device showed excellent mechanical stability, high photoresponse and fast switching time. Mechanical properties of the nanowire network structures were further improved to achieve stretchable devices. The first stretchable and transparent ultraviolet photodetector was demonstrated by embedding the nanowire device structures into polymer matrix. Zonyl surfactant was found to be an efficient additive to improve the bonding strength between the nanowire networks and the stretchable polymer matrix, leading to significantly improved transfer efficiency. The transparent and stretchable silver nanowire networks embedded in polymer matrix were also exploited as the electrodes for stretchable alternating-current electroluminescent (ACEL) devices. The highly stretchable EL devices fabricated with ACEL materials could achieve stable emission under large stretching strains. The unique emission mechanism in ACEL materials was essential for stable device operation under mechanical deformations. With the simple device configuration and highly conformable structures, the stretchable ACEL devices were integrated with dielectric elastomer actuators. An unprecedented self-deformable EL device was demonstrated which could be driven into dynamic shapes under external electrical bias. Stretchability of the ACEL devices was further improved by using ionic conductors as the transparent and stretchable electrodes. The ionic conductors were fabricated with blends of conductive electrolytes and polymers. Transparency and stretchability of the ionic conductors greatly exceeded those of the electronic conductors. An extremely stretchable ACEL device using ionic conductors as the stretchable and transparent electrodes was demonstrated with the stretchability of 700%.
author2 Lee Pooi See
author_facet Lee Pooi See
Wang, Jiangxin
format Theses and Dissertations
author Wang, Jiangxin
author_sort Wang, Jiangxin
title Advancing stretchable optoelectronic devices with structural and material designs
title_short Advancing stretchable optoelectronic devices with structural and material designs
title_full Advancing stretchable optoelectronic devices with structural and material designs
title_fullStr Advancing stretchable optoelectronic devices with structural and material designs
title_full_unstemmed Advancing stretchable optoelectronic devices with structural and material designs
title_sort advancing stretchable optoelectronic devices with structural and material designs
publishDate 2016
url https://hdl.handle.net/10356/67905
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