Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns

The direct fabrication of micron-thickness patterned electronics consisting of patterned PVA films and CNT micropatterns still faces considerable challenges. Here, we demonstrated the integrated fabrication of PVA films of micron-thickness and CNT-based patterns by utilising micro-pen writing and dr...

Full description

Bibliographic Details
Main Authors: Jun Luo, Zhixuan Zhao, Lehua Qi, Hongcheng Lian, Yufang Zhao
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/11/9/2335
id doaj-f6898375b6994f6a8f02fd1b1272e670
record_format Article
spelling doaj-f6898375b6994f6a8f02fd1b1272e6702021-09-26T00:48:51ZengMDPI AGNanomaterials2079-49912021-09-01112335233510.3390/nano11092335Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT MicropatternsJun Luo0Zhixuan Zhao1Lehua Qi2Hongcheng Lian3Yufang Zhao4School of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, ChinaSchool of Mechanical Engineering, Northwestern Polytechnical University, Xi’an 710072, ChinaThe direct fabrication of micron-thickness patterned electronics consisting of patterned PVA films and CNT micropatterns still faces considerable challenges. Here, we demonstrated the integrated fabrication of PVA films of micron-thickness and CNT-based patterns by utilising micro-pen writing and drop-on-demand printing in sequence. Patterned PVA films of 1–5 μm in thickness were written first using proper micro-pen writing parameters, including the writing gap, the substrate moving velocity, and the working pressure. Then, CNT droplets were printed on PVA films that were cured at 55–65 °C for 3–15 min, resulting in neat CNT patterns. In addition, an inertia-pseudopartial wetting spreading model was established to release the dynamics of the droplet spreading process over thin viscoelastic films. Uniform and dense CNT lines with a porosity of 2.2% were printed on PVA substrates that were preprocessed at 55 °C for 9 min using a staggered overwriting method with the proper number of layers. Finally, we demonstrated the feasibility of this hybrid printing method by printing a patterned PVA-CNT film and a micro-ribbon. This study provides a valid method for directly fabricating micron-thickness PVA-CNT electronics. The proposed method can also provide guidance on the direct writing of other high-molecular polymer materials and printing inks of other nanosuspensions.https://www.mdpi.com/2079-4991/11/9/2335hybrid printingmicro-pen writingdrop-on-demand printingdroplet spreadingthin viscoelastic substratemulti-layer overwriting
collection DOAJ
language English
format Article
sources DOAJ
author Jun Luo
Zhixuan Zhao
Lehua Qi
Hongcheng Lian
Yufang Zhao
spellingShingle Jun Luo
Zhixuan Zhao
Lehua Qi
Hongcheng Lian
Yufang Zhao
Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns
Nanomaterials
hybrid printing
micro-pen writing
drop-on-demand printing
droplet spreading
thin viscoelastic substrate
multi-layer overwriting
author_facet Jun Luo
Zhixuan Zhao
Lehua Qi
Hongcheng Lian
Yufang Zhao
author_sort Jun Luo
title Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns
title_short Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns
title_full Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns
title_fullStr Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns
title_full_unstemmed Direct Fabrication of Micron-Thickness PVA-CNT Patterned Films by Integrating Micro-Pen Writing of PVA Films and Drop-on-Demand Printing of CNT Micropatterns
title_sort direct fabrication of micron-thickness pva-cnt patterned films by integrating micro-pen writing of pva films and drop-on-demand printing of cnt micropatterns
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2021-09-01
description The direct fabrication of micron-thickness patterned electronics consisting of patterned PVA films and CNT micropatterns still faces considerable challenges. Here, we demonstrated the integrated fabrication of PVA films of micron-thickness and CNT-based patterns by utilising micro-pen writing and drop-on-demand printing in sequence. Patterned PVA films of 1–5 μm in thickness were written first using proper micro-pen writing parameters, including the writing gap, the substrate moving velocity, and the working pressure. Then, CNT droplets were printed on PVA films that were cured at 55–65 °C for 3–15 min, resulting in neat CNT patterns. In addition, an inertia-pseudopartial wetting spreading model was established to release the dynamics of the droplet spreading process over thin viscoelastic films. Uniform and dense CNT lines with a porosity of 2.2% were printed on PVA substrates that were preprocessed at 55 °C for 9 min using a staggered overwriting method with the proper number of layers. Finally, we demonstrated the feasibility of this hybrid printing method by printing a patterned PVA-CNT film and a micro-ribbon. This study provides a valid method for directly fabricating micron-thickness PVA-CNT electronics. The proposed method can also provide guidance on the direct writing of other high-molecular polymer materials and printing inks of other nanosuspensions.
topic hybrid printing
micro-pen writing
drop-on-demand printing
droplet spreading
thin viscoelastic substrate
multi-layer overwriting
url https://www.mdpi.com/2079-4991/11/9/2335
work_keys_str_mv AT junluo directfabricationofmicronthicknesspvacntpatternedfilmsbyintegratingmicropenwritingofpvafilmsanddropondemandprintingofcntmicropatterns
AT zhixuanzhao directfabricationofmicronthicknesspvacntpatternedfilmsbyintegratingmicropenwritingofpvafilmsanddropondemandprintingofcntmicropatterns
AT lehuaqi directfabricationofmicronthicknesspvacntpatternedfilmsbyintegratingmicropenwritingofpvafilmsanddropondemandprintingofcntmicropatterns
AT hongchenglian directfabricationofmicronthicknesspvacntpatternedfilmsbyintegratingmicropenwritingofpvafilmsanddropondemandprintingofcntmicropatterns
AT yufangzhao directfabricationofmicronthicknesspvacntpatternedfilmsbyintegratingmicropenwritingofpvafilmsanddropondemandprintingofcntmicropatterns
_version_ 1716869825143242752