Design and Optimization of High-Performance Through Hole Based MEMS Energy Harvester Using PiezoMUMPs

被引:8
作者
Biswal, Priyabrata [1 ]
Kar, Sougata Kumar [1 ]
Mukherjee, Banibrata [2 ]
机构
[1] NIT Rourkela, Dept ECE, Rourkela 769008, India
[2] IIT Kharagpur, Adv Technol Dev Ctr, Kharagpur 721302, W Bengal, India
关键词
MEMS; rectangular hole effect; piezoelectric energy harvester; optimization; PiezoMUMPs; FABRICATION; GENERATOR;
D O I
10.1007/s11664-020-08528-6
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Piezoelectric energy harvesting is an emerging area of research to meet the demand of nonconventional energy sources. In this paper, we have designed and analysed high-performance micro-electromechanical system (MEMS) piezoelectric energy harvesters by incorporating a through-hole in the classical cantilever configuration. The harvesters are designed using piezoelectric multi-user MEMS processes (PiezoMUMPs), where aluminum nitride (AlN) piezoelectric material is chosen on silicon substrate. A unique optimization method is applied to deduce a critical ratio of hole length to cantilever length as 0.2-0.26 for structures that are not tip mass-based and 0.4-0.5 for tip massbased structures to achieve maximum power harvesting capability. The performance of the proposed harvesters is observed to be superior in comparison to that reported in the literature in terms of improved voltage and power harvesting capability and less area requirement. The classical cantilever topology with unoptimized and optimized holes produces power of 423 nW with normalized power density (NPD) of 12.78 mu W/mm(3)/g(2) and 490 nW with NPD of 14:95 mu W/mm3/g2, respectively, at load resistance of 1 MX with application of 1 g acceleration. Furthermore, a comprehensive analysis of PiezoMUMPs design guidelines for designing hole-based harvesters is presented, and a layout of the harvesters to be fabricated is also provided.
引用
收藏
页码:375 / 388
页数:14
相关论文
共 32 条
  • [1] Impact of Geometry on the Performance of Cantilever-Based Piezoelectric Vibration Energy Harvesters
    Alameh, Abdul Hafiz
    Gratuze, Mathieu
    Nabki, Frederic
    [J]. IEEE SENSORS JOURNAL, 2019, 19 (22) : 10316 - 10326
  • [2] [Anonymous], 2019, ENERGY HARVESTING SY
  • [3] A versatile and fully instrumented test station for piezoelectric energy harvesters
    Batra, A. K.
    Currie, J. R.
    Alomari, A. A.
    Aggarwal, M. D.
    Bowen, C. R.
    [J]. MEASUREMENT, 2018, 114 : 9 - 15
  • [4] Distribution Network Reconfiguration together with Distributed Generator and Shunt Capacitor allocation for Loss Minimization
    Biswas, Partha P.
    Suganthan, P. N.
    Amaratunga, Gehan A. J.
    [J]. 2018 IEEE CONGRESS ON EVOLUTIONARY COMPUTATION (CEC), 2018, : 1857 - 1863
  • [5] Design and analysis of MEMS based piezoelectric energy harvester for machine monitoring application
    Chaudhuri, Dipta
    Kundu, Sudip
    Chattoraj, Neela
    [J]. MICROSYSTEM TECHNOLOGIES-MICRO-AND NANOSYSTEMS-INFORMATION STORAGE AND PROCESSING SYSTEMS, 2019, 25 (04): : 1437 - 1446
  • [6] High Power Density CMOS Compatible Micro-Machined MEMs Energy Harvester
    Chauhan, Sandeep Singh
    Joglekar, M. M.
    Manhas, S. K.
    [J]. IEEE SENSORS JOURNAL, 2019, 19 (20) : 9122 - 9130
  • [7] de Oliveira FAC, 2017, 2017 2ND INTERNATIONAL SYMPOSIUM ON INSTRUMENTATION SYSTEMS, CIRCUITS AND TRANSDUCERS (INSCIT), P60
  • [8] Dai Y., 2020, IEEE SENS J
  • [9] Highly efficient piezoelectric micro harvester for low level of acceleration fabricated with a CMOS compatible process
    Defosseux, M.
    Allain, M.
    Defay, E.
    Basrour, S.
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2012, 188 : 489 - 494
  • [10] A new energy harvester design for high power output at low frequencies
    Dhakar, Lokesh
    Liu, Huicong
    Tay, F. E. H.
    Lee, Chengkuo
    [J]. SENSORS AND ACTUATORS A-PHYSICAL, 2013, 199 : 344 - 352