Coaxial Electrohydrodynamic Printing of Microscale Core-Shell Conductive Features for Integrated Fabrication of Flexible Transparent Electronics

被引:4
|
作者
Yu, Kun [1 ,2 ]
Qiu, Zhennan [1 ,2 ]
Gu, Bingsong [1 ,2 ]
Li, Jiaxin [1 ,2 ]
Meng, Zijie [1 ,2 ]
Li, Dichen [1 ,2 ]
He, Jiankang [1 ,2 ]
机构
[1] Xi An Jiao Tong Univ, State Key Lab Mfg Syst Engn, Xian 710049, Shaanxi, Peoples R China
[2] Xi An Jiao Tong Univ, NMPA Key Lab Res & Evaluat Addit Mfg Med Devices, Xian 710049, Shaanxi, Peoples R China
基金
中国国家自然科学基金;
关键词
coaxial electrohydrodynamic printing; microscaleconductivestructures; core-shell filament; flexibletransparent electronics; JET;
D O I
10.1021/acsami.3c15237
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Reliable insulation of microscale conductive features is required to fabricate functional multilayer circuits or flexible electronics for providing specific physical/chemical/electrical protection. However, the existing strategies commonly rely on manual assembling processes or multiple microfabrication processes, which is time-consuming and a great challenge for the fabrication of flexible transparent electronics with microscale features and ultrathin thickness. Here, we present a novel coaxial electrohydrodynamic (CEHD) printing strategy for the one-step fabrication of microscale flexible electronics with conductive materials at the core and insulating material at the outer layer. A finite element analysis (FEA) method is established to simulate the CEHD printing process. The extrusion sequence of the conductive and insulating materials during the CEHD printing process shows little effect on the morphology of the core-shell filaments, which can be achieved on different flexible substrates with a minimum conductive line width of 32 +/- 3.2 mu m, a total thickness of 53.6 +/- 4.8 mu m, and a conductivity of 0.23 x 10(7) S/m. The thin insulating layer can provide the inner conductive filament enough protection in 3D, which endows the resultant microscale core-shell electronics with good electrical stability when working in different chemical solvent solutions or under large deformation conditions. Moreover, the presented CEHD printing strategy offers a unique capability to sequentially fabricate an insulating layer, core-shell conductive pattern, and exposed electrodes by simply controlling the material extrusion sequence. The resultant large-area transparent electronics with two-layer core-shell patterns exhibit a high transmittance of 98% and excellent electrothermal performance. The CEHD-printed flexible microelectrode array is successfully used to record the electrical signals of beating mouse hearts. It can also be used to fabricate large-area flexible capacitive sensors to accurately measure the periodical pressure force. We envision that the present CEHD printing strategy can provide a promising tool to fabricate complex three-dimensional electronics with microscale resolution, high flexibility, and multiple functionalities.
引用
收藏
页码:1114 / 1128
页数:15
相关论文
共 50 条
  • [1] Microcurrent behavior of core-shell droplet deposition in coaxial electrohydrodynamic printing
    Huatan, Chen
    Junyu, Chen
    Yiman, Chen
    Jiaxin, Jiang
    Guoyi, Kang
    Zungui, Shao
    Xiang, Wang
    Wenwang, Li
    Yifang, Liu
    Gaofeng, Zheng
    MATERIALS RESEARCH EXPRESS, 2023, 10 (03)
  • [2] Stable generation of Core-Shell droplets in Coaxial Electrohydrodynamic Printing by Numerical Simulation and Jet Mode Recognition
    Chen, Yiman
    Chen, Huatan
    Chen, Junyu
    Jiang, Jiaxin
    Shen, Ruimin
    Lin, Junzhe
    Liu, Yifang
    Zheng, Gaofeng
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2024, 130 (08):
  • [3] Microscale electrohydrodynamic printing of conductive silver features based on in situ reactive inks
    Lei, Qi
    He, Jiankang
    Zhang, Bing
    Chang, Jinke
    Li, Dichen
    JOURNAL OF MATERIALS CHEMISTRY C, 2018, 6 (02) : 213 - 218
  • [4] Electrohydrodynamic Printing of Ultrafine and Highly Conductive Ag Electrodes for Various Flexible Electronics
    Ma, Jingxuan
    Feng, Jiayun
    Zhang, He
    Hu, Xuanyi
    Wen, Jiayue
    Wang, Shang
    Tian, Yanhong
    ADVANCED MATERIALS TECHNOLOGIES, 2023, 8 (16)
  • [5] Metallic core-shell nanoparticles for conductive coatings and printing
    Pajor-Swierzy, Anna
    Szczepanowicz, Krzysztof
    Kamyshny, Alexander
    Magdassi, Shlomo
    ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2022, 299
  • [6] Fabrication of Stretchable and Transparent Core-Shell Polymeric Nanofibers Using Coaxial Electrospinning and Their Application to Phototransistors
    Lee, Moo Yeol
    Oh, Youngseok
    Hong, Jayeon
    Lee, Sang Jin
    Seong, Dong Gi
    Um, Moon-Kwang
    Oh, Joon Hak
    ADVANCED ELECTRONIC MATERIALS, 2021, 7 (04)
  • [7] Ultrathin Ag@ZnO Core-Shell Nanowires for Stable Flexible Transparent Conductive Films
    Jia, Xiuhuai
    Yang, Pan
    Zhao, Le
    Du, Dawei
    Wang, Zilan
    An, Wenxing
    Yu, Shihui
    ACS APPLIED ELECTRONIC MATERIALS, 2023, 5 (08) : 4198 - 4208
  • [8] Electrohydrodynamic Printing of Conductive Microstrips on Hyperelastic Substrates for Fabrication of Flexible and Stretchable Sensors
    Philippin, Nadine
    Kuehne, Ingo
    Schrag, Gabriele
    2024 IEEE INTERNATIONAL CONFERENCE ON FLEXIBLE AND PRINTABLE SENSORS AND SYSTEMS, FLEPS 2024, 2024,
  • [9] Fabrication, Characterization, and Printing of Conductive Ink Based on Multi Core-Shell Nanoparticles Synthesized by RAPET
    Butovsky, Evgeny
    Perelshtein, Ilana
    Nissan, Ifat
    Gedanken, Aharon
    ADVANCED FUNCTIONAL MATERIALS, 2013, 23 (46) : 5794 - 5799
  • [10] Coaxial electrohydrodynamic printing of core-shell microfibrous scaffolds with layer-specific growth factors release for enthesis regeneration
    Bai, Lang
    Xu, Meiguang
    Meng, Zijie
    Qiu, Zhennan
    Xiu, Jintao
    Chen, Baojun
    Han, Qian
    Liu, Qiaonan
    He, Pei
    Wen, Nuanyang
    He, Jiankang
    Zhang, Jing
    Yin, Zhanhai
    INTERNATIONAL JOURNAL OF EXTREME MANUFACTURING, 2024, 6 (05)