Fabrication of planar and three-dimensional microcoils on flexible substrates

被引:0
|
作者
M. Woytasik
J.-P. Grandchamp
E. Dufour-Gergam
E. Martincic
J.-P. Gilles
S. Megherbi
V. Lavalley
V. Mathet
机构
[1] Université Paris Sud,Institut d’Electronique Fondamentale, UMRCNRS 8622, bâtiment 220
[2] Domaine Universitaire,Laboratoire des Matériaux et du Génie Physique, ENSPG
来源
Microsystem Technologies | 2006年 / 12卷
关键词
Flexible Substrate; Magnetic Sensor; Conductor Line; Contact Printing; Large Frequency Range;
D O I
暂无
中图分类号
学科分类号
摘要
Inductors are basic components of magnetic sensors. Generally, with those sensors, a weak magnetic variation has to be detected. As the sensitivity increases with the inductance value, our objectives are to design inductors with a maximum of turns while keeping millimetric sizes for the sensor. In this work, we present two microcoil fabrication processes compatible with rigid and flexible substrates. The first one is used for the realization of planar microcoils with one step of copper micromoulding. For example, a 40-turn microcoil of 1 mm external diameter and 5 μm copper width and spacing wires has been obtained. The second process allows the fabrication of three-dimensional microcoils (microsolenoids). It is based on two steps of copper micromoulding. In this process, a grey-tone photolithography step is implemented. Microsolenoids with 10–13 wires have been realized.
引用
下载
收藏
页码:973 / 978
页数:5
相关论文
共 50 条
  • [21] Investigation of Cellular Confinement in Three-Dimensional Microscale Fibrous Substrates: Fabrication and Metrology
    Tourlomousis, Filippos
    Boettcher, William
    Ding, Houzhu
    Chang, Robert C.
    JOURNAL OF MICRO AND NANO-MANUFACTURING, 2018, 6 (02):
  • [22] Three-dimensional tissue fabrication
    Tsang, VL
    Bhatia, SN
    ADVANCED DRUG DELIVERY REVIEWS, 2004, 56 (11) : 1635 - 1647
  • [23] Fabrication of three-dimensional tissues
    Tsang, Valerie Liu
    Bhatia, Sangeeta N.
    TISSUE ENGINEERING II: BASICS OF TISSUE ENGINEERING AND TISSUE APPLICATIONS, 2007, 103 : 189 - 205
  • [24] Planar Sections of Three-Dimensional Cylinders
    Makeev, V. V.
    VESTNIK ST PETERSBURG UNIVERSITY-MATHEMATICS, 2016, 49 (04) : 359 - 360
  • [25] Three-Dimensional Instability of Planar Flows
    F. Gallaire
    D. Gérard-Varet
    F. Rousset
    Archive for Rational Mechanics and Analysis, 2007, 186 : 423 - 475
  • [26] Three-dimensional instability of planar flows
    Gallaire, F.
    Gerard-Varet, D.
    Rousset, F.
    ARCHIVE FOR RATIONAL MECHANICS AND ANALYSIS, 2007, 186 (03) : 423 - 475
  • [27] A Three-Dimensional 64-Site Folded Electrode Array Using Planar Fabrication
    Merriam, Sister Mary Elizabeth
    Srivannavit, Onnop
    Gulari, Mayurachat Ning
    Wise, Kensall D.
    JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2011, 20 (03) : 594 - 600
  • [28] Towards Printable Robotics: Origami-Inspired Planar Fabrication of Three-Dimensional Mechanisms
    Onal, Cagdas D.
    Wood, Robert J.
    Rus, Daniela
    2011 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND AUTOMATION (ICRA), 2011,
  • [29] Fabrication of free standing, three-dimensional, fibrous, thin film substrates of parylene C
    Wei, L.
    Lakhtakia, A.
    MATERIALS RESEARCH INNOVATIONS, 2013, 17 (02) : 129 - 135
  • [30] Three-dimensional nanopillar-array photovoltaics on low-cost and flexible substrates
    Fan, Zhiyong
    Razavi, Haleh
    Do, Jae-won
    Moriwaki, Aimee
    Ergen, Onur
    Chueh, Yu-Lun
    Leu, Paul W.
    Ho, Johnny C.
    Takahashi, Toshitake
    Reichertz, Lothar A.
    Neale, Steven
    Yu, Kyoungsik
    Wu, Ming
    Ager, Joel W.
    Javey, Ali
    NATURE MATERIALS, 2009, 8 (08) : 648 - 653