Design of hydrogel-based wearable EEG electrodes for medical applications

被引:43
|
作者
Hsieh, Ju-Chun [1 ]
Li, Yang [2 ]
Wang, Huiqian [3 ]
Perz, Matt [1 ]
Tang, Qiong [4 ]
Tang, Kai Wing Kevin [1 ]
Pyatnitskiy, Ilya [1 ]
Reyes, Raymond [1 ]
Ding, Hong [1 ]
Wang, Huiliang [1 ]
机构
[1] Univ Texas Austin, Dept Biomed Engn, Austin, TX 78712 USA
[2] Polytech Montreal, Dept Chem Engn, Montreal, PQ H3C 3J7, Canada
[3] Univ Texas Austin, Dept Math, Austin, TX 78712 USA
[4] Univ Texas Austin, Dept Aerosp Engn & Engn Mech, Austin, TX 78712 USA
关键词
ELECTRICAL-IMPEDANCE; GRAPHENE ELECTRODES; DRY ELECTRODE; CLASSIFICATION; SURFACE; ADHESION; ELECTROENCEPHALOGRAPHY; PERFORMANCE; SYSTEM; OSCILLATIONS;
D O I
10.1039/d2tb00618a
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
The electroencephalogram (EEG) is considered to be a promising method for studying brain disorders. Because of its non-invasive nature, subjects take a lower risk compared to some other invasive methods, while the systems record the brain signal. With the technological advancement of neural and material engineering, we are in the process of achieving continuous monitoring of neural activity through wearable EEG. In this article, we first give a brief introduction to EEG bands, circuits, wired/wireless EEG systems, and analysis algorithms. Then, we review the most recent advances in the interfaces used for EEG recordings, focusing on hydrogel-based EEG electrodes. Specifically, the advances for important figures of merit for EEG electrodes are reviewed. Finally, we summarize the potential medical application of wearable EEG systems.
引用
收藏
页码:7260 / 7280
页数:21
相关论文
共 50 条
  • [21] Novel Hydrogel-Based Preparation-Free EEG Electrode
    Alba, Nicolas Alexander
    Sclabassi, Robert J.
    Sun, Mingui
    Cui, Xinyan Tracy
    IEEE TRANSACTIONS ON NEURAL SYSTEMS AND REHABILITATION ENGINEERING, 2010, 18 (04) : 415 - 423
  • [22] Hydrogel-based electrodes for selective cervical vagus nerve stimulation
    Charles, Horn C.
    Forssell, Mats
    Sciullo, Michael
    Harms, Jonathan E.
    Fulton, Stephanie
    Mou, Chenchen
    Sun, Fan
    Simpson, Tyler W.
    Xiao, Gutian
    Fisher, Lee E.
    Bettinger, Christopher
    Fedder, Gary K.
    JOURNAL OF NEURAL ENGINEERING, 2021, 18 (05)
  • [23] Hydrogel-based electronics: Ultracompliant electrodes for neural interfaces and beyond
    Bettinger, Christopher
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256
  • [24] Bionic Hydrogel-based Stretchable Devices for Bioelectronics Applications
    Zhang, Yitao
    Yuan, Yiqing
    Duan, Haiyang
    Zhu, Pengcheng
    Mao, Yanchao
    JOURNAL OF BIONIC ENGINEERING, 2025,
  • [25] Hydrogel-based commercial products for biomedical applications: A review
    Cascone, Sara
    Lamberti, Gaetano
    INTERNATIONAL JOURNAL OF PHARMACEUTICS, 2020, 573
  • [26] Hydrogel-based Nanocomposite Plasmonic Sensors for Biomedical Applications
    Miranda, Bruno
    Moretta, Rosalba
    Dardano, Principia
    Rea, Ilaria
    Forestiere, Carlo
    De Stefano, Luca
    PROCEEDINGS OF 2020 ITALIAN CONFERENCE ON OPTICS AND PHOTONICS (ICOP), 2020,
  • [27] Biocompatibility of hydrogel-based scaffolds for tissue engineering applications
    Naahidi, Sheva
    Jafari, Mousa
    Logan, Megan
    Wang, Yujie
    Yuan, Yongfang
    Bae, Hojae
    Dixon, Brian
    Chen, P.
    BIOTECHNOLOGY ADVANCES, 2017, 35 (05) : 530 - 544
  • [28] Hydrogel-based protein microchips: Manufacturing, properties, and applications
    Rubina, AY
    Dementieva, EI
    Stomakhin, AA
    Darii, EL
    Pan'kov, SV
    Barsky, VE
    Ivanov, SM
    Konovalova, EV
    Mirzabekov, AD
    BIOTECHNIQUES, 2003, 34 (05) : 1008 - +
  • [29] Hydrogel-based preparation of cell aggregates for biomedical applications
    Zhang, Jiabin
    Yun, Seonho
    Du, Yuguang
    Zannettino, Andrew
    Zhang, Hu
    APPLIED MATERIALS TODAY, 2020, 20
  • [30] Injectable hydrogel-based scaffolds for tissue engineering applications
    Portnov, Tanya
    Shulimzon, Tiberiu R.
    Zilberman, Meital
    REVIEWS IN CHEMICAL ENGINEERING, 2017, 33 (01) : 91 - 107