Actuators for MRE: New Perspectives With Flexible Electroactive Materials

被引:4
|
作者
Gnanago, Jean-Lynce [1 ]
Capsal, Jean-Fabien [2 ]
Gerges, Tony [1 ]
Lombard, Philippe [1 ]
Semet, Vincent [1 ]
Cottinet, Pierre-Jean [2 ]
Cabrera, Michel [1 ]
Lambert, Simon Auguste [1 ]
机构
[1] Univ Claude Bernard Lyon 1, Univ Lyon, INSA Lyon, Ecole Cent Lyon,CNRS,Ampere,UMR5005, Villeurbanne, France
[2] Inst Natl Sci Appl, Lab Genie Elect & Ferroelect, EA682, Villeurbanne, France
来源
FRONTIERS IN PHYSICS | 2021年 / 9卷
关键词
magnetic resonance imaging; actuators; electroactive materials; magnetic resonance elastography; piezoelectricity; MAGNETIC-RESONANCE ELASTOGRAPHY; IN-VIVO; VISCOELASTIC PROPERTIES; PIEZOELECTRIC ACTUATOR; MECHANICAL-PROPERTIES; HIGH-PERFORMANCE; LIVER FIBROSIS; BRAIN; STIFFNESS; DESIGN;
D O I
10.3389/fphy.2021.633848
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Since 1995, Magnetic Resonance Elastography (MRE) has been constantly developed as a non-invasive diagnostic tool for quantitative mapping of mechanical properties of biological tissues. Indeed, mechanical properties of tissues vary over five orders of magnitude (the shear stiffness is ranging from 10(2) Pa for fat to 10(7) Pa for bones). Additionally, these properties depend on the physiological state which explains the granted benefit of MRE for staging liver fibrosis and its potential in numerous medical and biological domains. In comparison to the other modalities used to perform such measurement, Magnetic Resonance (MR) techniques offer the advantages of acquiring 3D high spatial resolution images at high penetration depth. However, performing MRE tissue characterization requires low frequency shear waves propagating in the tissue. Inducing them is the role of a mechanical actuator specifically designed to operate under Magnetic Resonance Imaging (MRI) specific restrictions in terms of electromagnetic compatibility. Facing these restrictions, many different solutions have been proposed while keeping a common structure: a vibration generator, a coupling device transmitting the vibration and a piston responsible for the mechanical coupling of the actuator with the tissue. The following review details the MRI constraints and how they are shaping the existing actuators. An emphasis is put on piezoelectric solutions as they solve the main issues encountered with other actuator technologies. Finally, flexible electroactive materials are reviewed as they could open great perspectives to build new type of mechanical actuators with better adaptability, greater ease-of-use and more compactness of dedicated actuators for MRE of small soft samples and superficial organs such as skin, muscles or breast.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Electroactive polymer actuators with carbon aerogel electrodes
    Palmre, Viljar
    Lust, Enn
    Jaenes, Alar
    Koel, Mihkel
    Peikolainen, Anna-Liisa
    Torop, Janno
    Johanson, Urmas
    Aabloo, Alvo
    JOURNAL OF MATERIALS CHEMISTRY, 2011, 21 (08) : 2577 - 2583
  • [42] Ion Distribution in Ionic Electroactive Polymer Actuators
    Liu, Yang
    Lu, Caiyan
    Twigg, Stephen
    Lin, Jun-hong
    Hatipoglu, Gokhan
    Liu, Sheng
    Winograd, Nicholas
    Zhang, Q. M.
    ELECTROACTIVE POLYMER ACTUATORS AND DEVICES (EAPAD) 2011, 2011, 7976
  • [43] The transverse strain response of electroactive polymer actuators
    Yang, G
    Ren, W
    Mukherjee, BK
    Szabo, JP
    2004 14th IEEE International Symposium on Applications of Ferroelectrics-ISAF-04, 2004, : 237 - 240
  • [44] Electroactive Polymer Actuators: From Lab to Market
    Carpi, F.
    Kiil, H. -E.
    Kornbluh, R.
    Sommer-Larsen, P.
    Alici, G.
    ACTUATOR 10, CONFERENCE PROCEEDINGS, 2010, : 405 - +
  • [45] Electroactive nanotube polymer nanocomposites for sensors and actuators
    Harrison, Joycelyn S.
    Lowther, Sharon E.
    Kang, Jin Ho
    Park, Cheol
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2009, 237
  • [46] Wrinkled polypyrrole electrode for electroactive polymer actuators
    Watanabe, M
    Shirai, H
    Hirai, T
    JOURNAL OF APPLIED PHYSICS, 2002, 92 (08) : 4631 - 4637
  • [47] Molecular mechanism of ionic electroactive polymer actuators
    Kiyohara, K.
    Sugino, T.
    Asaka, K.
    SMART MATERIALS & STRUCTURES, 2011, 20 (12):
  • [48] ELECTROACTIVE POLYMER (EAP) AS ACTUATORS FOR BIOMIMETIC APPLICATIONS
    Bar-Cohen, Y.
    PROCEEDINGS OF THE ASME INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION (IMECE 2010), VOL 9, 2012, : 655 - 660
  • [49] Electroactive Elastomeric Actuators for Biomedical and Bioinspired Systems
    Carpi, F.
    Frediani, G.
    De Rossi, D.
    2012 4TH IEEE RAS & EMBS INTERNATIONAL CONFERENCE ON BIOMEDICAL ROBOTICS AND BIOMECHATRONICS (BIOROB), 2012, : 623 - 627
  • [50] Electroactive textile actuators for wearable and soft robots
    Guo, Jianglong
    Xiang, Chaoqun
    Helps, Tim
    Taghavi, Majid
    Rossiter, Jonathan
    2018 IEEE INTERNATIONAL CONFERENCE ON SOFT ROBOTICS (ROBOSOFT), 2018, : 339 - 343