Application of conductive graphene films for high-performance hemispherical resonator gyroscopes

被引:0
|
作者
Wang, Fei [1 ]
Wang, Jian [2 ]
Yi, Zhuqing [2 ]
Ye, Chuanren [1 ]
Zhu, Yanwu [1 ,3 ,4 ]
机构
[1] Univ Sci & Technol China, Sch Chem & Mat Sci, Dept Mat Sci & Engn, Hefei 230026, Anhui, Peoples R China
[2] Hunan 208 Adv Technol Co Ltd, Changsha 410205, Hunan, Peoples R China
[3] Univ Sci & Technol China, Hefei Natl Res Ctr Phys Sci Microscale, Hefei 230026, Anhui, Peoples R China
[4] Univ Sci & Technol China, Key Lab Precis & Intelligent Chem, Hefei 230026, Anhui, Peoples R China
基金
国家重点研发计划;
关键词
CHEMICAL-VAPOR-DEPOSITION; GROWTH;
D O I
10.1063/5.0230846
中图分类号
O59 [应用物理学];
学科分类号
摘要
Hemispherical resonator gyroscope is a type of solid-state gyroscope, in which the fused silica hemispherical resonator with a high-quality factor (Q factor) is the key for the fabrication of high-performance devices. However, the metal film coated on the silica as the electrode for trigging the resonance often leads to the largely deteriorated Q factor. In this work, high-quality graphene films with controllable number of layers are uniformly coated on silica utilizing C2H4 as precursor in chemical vapor deposition. Replacing the metal film as the electrode, the hemispherical resonator coated with graphene demonstrates a Q factor of 3.38 x 10(6), with a high retention of 77.17%. At an optimized preparation temperature of 1130 degrees C, the graphene film shows a good adhesion with the silica hemisphere, providing an excellent candidate as the electrode for high-performance hemispherical resonators.
引用
收藏
页数:5
相关论文
共 50 条
  • [1] High Precision Hemispherical Resonator Gyroscopes With Oven Control Systems
    Zhao, Wanliang
    Rong, Yijie
    Li, Chong
    Wang, Yuchen
    Cai, Xiong
    Yu, Xiangyu
    IEEE SENSORS JOURNAL, 2021, 21 (06) : 7388 - 7401
  • [2] High-precision control scheme for hemispherical resonator gyroscopes with application to aerospace navigation systems
    Xu, Zeyuan
    Xi, Boqi
    Yi, Guoxing
    Ahn, Choon Ki
    AEROSPACE SCIENCE AND TECHNOLOGY, 2021, 119
  • [3] A New Manufacturing Methodology under Limited Machining Capabilities and Application to High-Performance Hemispherical Resonator
    Meng, Lei
    Zhou, Ping
    Yan, Ying
    Guo, Dongming
    MACHINES, 2022, 10 (12)
  • [4] High-Performance Transparent Conductive Films Using Rheologically Derived Reduced Graphene Oxide
    Jeong, Seung Yol
    Kim, Sung Hun
    Han, Joong Tark
    Jeong, Hee Jin
    Yang, Sunhye
    Lee, Geon-Woong
    ACS NANO, 2011, 5 (02) : 870 - 878
  • [5] Transfer of Large-Area Graphene Films for High-Performance Transparent Conductive Electrodes
    Li, Xuesong
    Zhu, Yanwu
    Cai, Weiwei
    Borysiak, Mark
    Han, Boyang
    Chen, David
    Piner, Richard D.
    Colombo, Luigi
    Ruoff, Rodney S.
    NANO LETTERS, 2009, 9 (12) : 4359 - 4363
  • [6] Study on high-performance anti-glare and conductive films
    He, XB
    Qu, XH
    Yang, H
    Wu, CC
    RARE METAL MATERIALS AND ENGINEERING, 2004, 33 : 61 - 64
  • [7] Manufacturing Transition of High-Performance MEMS Gyroscopes
    DeNatale, Jeffrey
    Martel, Stephane
    Dion, Francois
    Lachance, Jonathan
    2020 IEEE/ION POSITION, LOCATION AND NAVIGATION SYMPOSIUM (PLANS), 2020, : 24 - 26
  • [8] Preparation of High-Performance Conductive Ink with Silver Nanoparticles and Nanoplates for Fabricating Conductive Films
    Yang, Xiaojian
    He, Wei
    Wang, Shouxu
    Zhou, Guoyun
    Tang, Yao
    MATERIALS AND MANUFACTURING PROCESSES, 2012, 28 (01) : 1 - 4
  • [9] High-performance carbon nanofiber conductive films induced by titanium carbide
    Huang, He-Dong
    Fan, Jun-Wei
    Liu, Hong-Yang
    Su, Bing
    Ha, Xin-Yi
    Guo, Ze-Yu
    Ren, Yong-Fei
    JOURNAL OF MATERIALS CHEMISTRY C, 2024, 12 (14) : 5122 - 5137
  • [10] High-Performance Transparent and Conductive Films with Fully Enclosed Metal Mesh
    Nie, Bangbang
    Wang, Chunhui
    Li, Xiangming
    Tian, Hongmiao
    Chen, Xiaoliang
    Liu, Guifang
    Qiu, Yangfan
    Shao, Jinyou
    ACS APPLIED MATERIALS & INTERFACES, 2021, 13 (34) : 40806 - 40816