Humidity Sensors Based on Cellulose Nanofiber Fabricated on a Three-Dimensional (3D) Curved Surface

被引:1
|
作者
Won, Mijin [1 ]
Oh, Gyeongseok [1 ]
Lee, Hyunah [1 ]
Kim, Jaehwan [2 ]
Kim, Dong-Soo [1 ]
机构
[1] Hanbat Natl Univ, Dept Creat Convergence Engn, Daejeon 34158, South Korea
[2] Inha Univ, Creat Res Ctr Nanocellulose Future Composites, Incheon 22212, South Korea
基金
新加坡国家研究基金会;
关键词
reverse offset; double-layer blanket; 3D curved surface; humidity sensor; 3D-printed electronics; FILM;
D O I
10.3390/nano13233005
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Traditional printed electronics processes have recently been utilized within 3D-printed structures where components and interconnects are introduced during manufacturing disruptions. The dielectric performance of 3D-printed materials has a low-resolution problem, and many technologies have been proposed for direct printing on a 3D curved surface or structure. This paper reports a humidity sensor fabricated with a 3D-printed electrode and cellulose nanofibers on a curved surface. The electrode part of an interdigital electrode (IDE) sensor is printed on a flat glass substrate and a 3D-curved glass substrate using a double blanket reverse offset. Subsequently, a cellulose nanofiber emulsion is coated onto the IDE pattern as a sensing layer with a dispenser. The electrical impedance of the sensor is measured with the relative humidity (RH) changes between 10% and 90% RH. The sensor demonstrates a high repeatability and sensitivity, even on a 3D curved substrate. This technology provides a promising method to integrate humidity sensors and 3D deformable surfaces.
引用
收藏
页数:11
相关论文
共 50 条
  • [1] Three-Dimensional ZnO Nanostructure Based Gas and Humidity Sensors
    Lin, Chih-Hung
    Chang, Shoou-Jinn
    Hsueh, Ting-Jen
    [J]. JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2018, 18 (02) : 1202 - 1206
  • [2] Three-Dimensional Fluorescent Security Features Fabricated via 3D Laser Lithography
    Mayer, Frederik
    Richter, Stefan
    Huebner, Phillip
    Jabbour, Toufic
    Wegener, Martin
    [J]. QUANTUM NANO-PHOTONICS, 2018, : 415 - 415
  • [3] Three-dimensional object recognition based on 3D invariance
    Yuan Huijuan
    Qin Guohui
    Yu Jia
    [J]. FIFTH INTERNATIONAL SYMPOSIUM ON INSTRUMENTATION SCIENCE AND TECHNOLOGY, 2009, 7133
  • [4] Three-dimensional vibration analysis of 3D graphene foam curved panels on elastic foundations
    Zhao, Li-Cai
    Chen, Shi-Shuenn
    Khajehzadeh, Mohammad
    Yousif, Mariwan Araz
    Tahouneh, Vahid
    [J]. STEEL AND COMPOSITE STRUCTURES, 2022, 43 (01): : 91 - 106
  • [5] Three-Dimensional (3D) Integration Technology
    Ohba, T.
    [J]. CHINA SEMICONDUCTOR TECHNOLOGY INTERNATIONAL CONFERENCE 2011 (CSTIC 2011), 2011, 34 (01): : 1011 - 1016
  • [6] 3D: A Three-Dimensional Block Cipher
    Nakahara, Jorge, Jr.
    [J]. CRYPTOLOGY AND NETWORK SECURITY, 2008, 5339 : 252 - 267
  • [7] Three-dimensional comparative study on the accuracy and reproducibility of dental casts fabricated by 3D printers
    Park, Mid-Eum
    Shin, Soo-Yeon
    [J]. JOURNAL OF PROSTHETIC DENTISTRY, 2018, 119 (05): : 861.e1 - 861.e7
  • [8] Three-dimensional (3D) polypyrrole microstructures with high aspect ratios fabricated by localized electropolymerization
    Seol, Seung Kwon
    Kim, Ji Tae
    Je, Jung Ho
    Hwu, Yeukuang
    Margaritondo, G.
    [J]. MACROMOLECULES, 2008, 41 (09) : 3071 - 3074
  • [9] THREE-DIMENSIONAL (3D) PRINTING BASED ON CELLULOSIC MATERIAL: A REVIEW
    Diab, Mohamed A.
    El-Sakhawy, Mohamed
    [J]. CELLULOSE CHEMISTRY AND TECHNOLOGY, 2022, 56 (1-2): : 147 - 158
  • [10] Preparation of electrospun nanofibers with desired microstructures using a programmed three-dimensional (3D) nanofiber collector
    Chen, Liang
    Al-Shawk, Ameer
    Rea, Christopher
    Mazeh, Hanan
    Wu, Xin
    Chen, Wen
    Li, Yawen
    Song, Wei
    Markel, David C.
    Ren, Weiping
    [J]. MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 106