Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide

We conducted a laser parameter study on CO<sub>2</sub> laser induced electrical conductivity on a polyimide film. The induced electrical conductivity was found to occur dominantly at the center of the scanning line instead of uniformly across the whole line width. MicroRaman examination...

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Main Authors: Zhongke Wang, Kok Keat Tan, Yee Cheong Lam
Format: Article
Language:English
Published: MDPI AG 2021-02-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/12/3/227
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spelling doaj-cc51ade91d754b4baf96b4b8edc6b2182021-02-25T00:05:36ZengMDPI AGMicromachines2072-666X2021-02-011222722710.3390/mi12030227Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of PolyimideZhongke Wang0Kok Keat Tan1Yee Cheong Lam2SIMTech-NTU Joint Laboratory (Precision Machining), Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, SingaporeSingapore Institute of Manufacturing Technology (SIMTech), A*STAR, 2 Fusionopolis Way, Singapore 138634, SingaporeSIMTech-NTU Joint Laboratory (Precision Machining), Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, SingaporeWe conducted a laser parameter study on CO<sub>2</sub> laser induced electrical conductivity on a polyimide film. The induced electrical conductivity was found to occur dominantly at the center of the scanning line instead of uniformly across the whole line width. MicroRaman examination revealed that the conductivity was mainly a result of the multi-layers (4–5) of graphene structure induced at the laser irradiation line center. The graphene morphology at the line center appeared as thin wall porous structures together with nano level fiber structures. With sufficient energy dose per unit length and laser power, this surface modification for electrical conductivity was independent of laser pulse frequency but was instead determined by the average laser power. High electrical conductivity could be achieved by a single scan of laser beam at a sufficiently high-power level. To achieve high conductivity, it was not efficient nor effective to utilize a laser at low power but compensating it with a slower scanning speed or having multiple scans. The electrical resistance over a 10 mm scanned length decreased significantly from a few hundred Ohms to 30 Ohms when energy dose per unit length increased from 0.16 J/mm to 1.0 J/mm, i.e., the laser power increased from 5.0 W to 24 W with corresponding power density of 3.44 × 10 W/cm<sup>2</sup> to 16.54 W/cm<sup>2</sup> respectively at a speed of 12.5 mm/s for a single pass scan. In contrast, power below 5 W at speeds exceeding 22.5 mm/s resulted in a non-conductive open loop.https://www.mdpi.com/2072-666X/12/3/227CO<sub>2</sub> laser irradiationpolyimide filmgraphene structureelectrical conductivityMicroRaman spectra
collection DOAJ
language English
format Article
sources DOAJ
author Zhongke Wang
Kok Keat Tan
Yee Cheong Lam
spellingShingle Zhongke Wang
Kok Keat Tan
Yee Cheong Lam
Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide
Micromachines
CO<sub>2</sub> laser irradiation
polyimide film
graphene structure
electrical conductivity
MicroRaman spectra
author_facet Zhongke Wang
Kok Keat Tan
Yee Cheong Lam
author_sort Zhongke Wang
title Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide
title_short Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide
title_full Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide
title_fullStr Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide
title_full_unstemmed Electrical Resistance Reduction Induced with CO<sub>2</sub> Laser Single Line Scan of Polyimide
title_sort electrical resistance reduction induced with co<sub>2</sub> laser single line scan of polyimide
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2021-02-01
description We conducted a laser parameter study on CO<sub>2</sub> laser induced electrical conductivity on a polyimide film. The induced electrical conductivity was found to occur dominantly at the center of the scanning line instead of uniformly across the whole line width. MicroRaman examination revealed that the conductivity was mainly a result of the multi-layers (4–5) of graphene structure induced at the laser irradiation line center. The graphene morphology at the line center appeared as thin wall porous structures together with nano level fiber structures. With sufficient energy dose per unit length and laser power, this surface modification for electrical conductivity was independent of laser pulse frequency but was instead determined by the average laser power. High electrical conductivity could be achieved by a single scan of laser beam at a sufficiently high-power level. To achieve high conductivity, it was not efficient nor effective to utilize a laser at low power but compensating it with a slower scanning speed or having multiple scans. The electrical resistance over a 10 mm scanned length decreased significantly from a few hundred Ohms to 30 Ohms when energy dose per unit length increased from 0.16 J/mm to 1.0 J/mm, i.e., the laser power increased from 5.0 W to 24 W with corresponding power density of 3.44 × 10 W/cm<sup>2</sup> to 16.54 W/cm<sup>2</sup> respectively at a speed of 12.5 mm/s for a single pass scan. In contrast, power below 5 W at speeds exceeding 22.5 mm/s resulted in a non-conductive open loop.
topic CO<sub>2</sub> laser irradiation
polyimide film
graphene structure
electrical conductivity
MicroRaman spectra
url https://www.mdpi.com/2072-666X/12/3/227
work_keys_str_mv AT zhongkewang electricalresistancereductioninducedwithcosub2sublasersinglelinescanofpolyimide
AT kokkeattan electricalresistancereductioninducedwithcosub2sublasersinglelinescanofpolyimide
AT yeecheonglam electricalresistancereductioninducedwithcosub2sublasersinglelinescanofpolyimide
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