Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer

Demand for the fabrication of high-performance, transparent electronic devices with improved electronic and mechanical properties is significantly increasing for various applications. In this context, it is essential to develop highly transparent and conductive electrodes for the realization of such...

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Main Authors: Hyung Seok Ryu, Hong-Seok Kim, Daeyoon Kim, Sang Jun Lee, Wonjoon Choi, Sang Jik Kwon, Jae-Hee Han, Eou-Sik Cho
Format: Article
Language:English
Published: MDPI AG 2020-08-01
Series:Micromachines
Subjects:
ITO
Online Access:https://www.mdpi.com/2072-666X/11/9/821
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spelling doaj-95a53d4a3d474f76948416e207bc5c582020-11-25T03:41:17ZengMDPI AGMicromachines2072-666X2020-08-011182182110.3390/mi11090821Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy TransferHyung Seok Ryu0Hong-Seok Kim1Daeyoon Kim2Sang Jun Lee3Wonjoon Choi4Sang Jik Kwon5Jae-Hee Han6Eou-Sik Cho7Department of Electronic Engineering, Gachon University, Gyeonggi-do 13120, KoreaDepartment of Materials Science and Engineering, Gachon University, Gyeonggi-do 13120, KoreaDepartment of Energy IT, Gachon University, Gyeonggi-do 13120, KoreaSchool of Mechanical Engineering, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, KoreaSchool of Mechanical Engineering, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, KoreaDepartment of Electronic Engineering, Gachon University, Gyeonggi-do 13120, KoreaDepartment of Materials Science and Engineering, Gachon University, Gyeonggi-do 13120, KoreaDepartment of Electronic Engineering, Gachon University, Gyeonggi-do 13120, KoreaDemand for the fabrication of high-performance, transparent electronic devices with improved electronic and mechanical properties is significantly increasing for various applications. In this context, it is essential to develop highly transparent and conductive electrodes for the realization of such devices. To this end, in this work, a chemical vapor deposition (CVD)-grown graphene was transferred to both glass and polyethylene terephthalate (PET) substrates that had been pre-coated with an indium tin oxide (ITO) layer and then subsequently patterned by using a laser-ablation method for a low-cost, simple, and high-throughput process. A comparison of the results of the laser ablation of such a graphene/ITO double layer with those of the ITO single-layered films reveals that a larger amount of effective thermal energy of the laser used is transferred in the lateral direction along the graphene upper layer in the graphene/ITO double-layered structure, attributable to the high thermal conductivity of graphene. The transferred thermal energy is expected to melt and evaporate the lower ITO layer at a relatively lower threshold energy of laser ablation. The transient analysis of the temperature profiles indicates that the graphene layers can act as both an effective thermal diffuser and converter for the planar heat transfer. Raman spectroscopy was used to investigate the graphite peak on the ITO layer where the graphene upper layer was selectively removed because of the incomplete heating and removal process for the ITO layer by the laterally transferred effective thermal energy of the laser beam. Our approach could have broad implications for designing highly transparent and conductive electrodes as well as a new way of nanoscale patterning for other optoelectronic-device applications using laser-ablation methods.https://www.mdpi.com/2072-666X/11/9/821grapheneITOlaser ablationthermal-energy transfertemperature distributionRaman spectroscopy
collection DOAJ
language English
format Article
sources DOAJ
author Hyung Seok Ryu
Hong-Seok Kim
Daeyoon Kim
Sang Jun Lee
Wonjoon Choi
Sang Jik Kwon
Jae-Hee Han
Eou-Sik Cho
spellingShingle Hyung Seok Ryu
Hong-Seok Kim
Daeyoon Kim
Sang Jun Lee
Wonjoon Choi
Sang Jik Kwon
Jae-Hee Han
Eou-Sik Cho
Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer
Micromachines
graphene
ITO
laser ablation
thermal-energy transfer
temperature distribution
Raman spectroscopy
author_facet Hyung Seok Ryu
Hong-Seok Kim
Daeyoon Kim
Sang Jun Lee
Wonjoon Choi
Sang Jik Kwon
Jae-Hee Han
Eou-Sik Cho
author_sort Hyung Seok Ryu
title Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer
title_short Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer
title_full Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer
title_fullStr Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer
title_full_unstemmed Understanding of the Mechanism for Laser Ablation-Assisted Patterning of Graphene/ITO Double Layers: Role of Effective Thermal Energy Transfer
title_sort understanding of the mechanism for laser ablation-assisted patterning of graphene/ito double layers: role of effective thermal energy transfer
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2020-08-01
description Demand for the fabrication of high-performance, transparent electronic devices with improved electronic and mechanical properties is significantly increasing for various applications. In this context, it is essential to develop highly transparent and conductive electrodes for the realization of such devices. To this end, in this work, a chemical vapor deposition (CVD)-grown graphene was transferred to both glass and polyethylene terephthalate (PET) substrates that had been pre-coated with an indium tin oxide (ITO) layer and then subsequently patterned by using a laser-ablation method for a low-cost, simple, and high-throughput process. A comparison of the results of the laser ablation of such a graphene/ITO double layer with those of the ITO single-layered films reveals that a larger amount of effective thermal energy of the laser used is transferred in the lateral direction along the graphene upper layer in the graphene/ITO double-layered structure, attributable to the high thermal conductivity of graphene. The transferred thermal energy is expected to melt and evaporate the lower ITO layer at a relatively lower threshold energy of laser ablation. The transient analysis of the temperature profiles indicates that the graphene layers can act as both an effective thermal diffuser and converter for the planar heat transfer. Raman spectroscopy was used to investigate the graphite peak on the ITO layer where the graphene upper layer was selectively removed because of the incomplete heating and removal process for the ITO layer by the laterally transferred effective thermal energy of the laser beam. Our approach could have broad implications for designing highly transparent and conductive electrodes as well as a new way of nanoscale patterning for other optoelectronic-device applications using laser-ablation methods.
topic graphene
ITO
laser ablation
thermal-energy transfer
temperature distribution
Raman spectroscopy
url https://www.mdpi.com/2072-666X/11/9/821
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