Review of Near-Field Wireless Power and Communication for Biomedical Applications

被引:192
作者
Kim, Han-Joon [1 ]
Hirayama, Hiroshi [2 ]
Kim, Sanghoek [3 ]
Han, Ki Jin [4 ]
Zhang, Rui [5 ]
Choi, Ji-Woong [1 ]
机构
[1] Daegu Gyeongbuk Inst Sci & Technol, Dept Informat & Commun Engn, Daegu 771873, South Korea
[2] Nagoya Inst Technol, Nagoya, Aichi 4668555, Japan
[3] Kyung Hee Univ, Dept Elect & Radio Engn, Youngin Si 446701, South Korea
[4] Dongguk Univ, Div Elect & Elect Engn, Seoul 04620, South Korea
[5] Natl Univ Singapore, Dept Elect & Comp Engn, Singapore 117583, Singapore
来源
IEEE ACCESS | 2017年 / 5卷
基金
新加坡国家研究基金会;
关键词
Near-field wireless power; near-field wireless communication; biomedical applications; implantable device; CONTACTLESS ENERGY-TRANSFER; DATA-TRANSMISSION; TRANSFER SYSTEMS; MEDICAL DEVICES; DATA LINKS; TELEMETRY; DESIGN; OPTIMIZATION; INFORMATION; FREQUENCY;
D O I
10.1109/ACCESS.2017.2757267
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Near-field magnetic wireless systems have distinct advantages over their conventional far field counterparts in water-rich environments, such as underwater, underground, and in biological tissues, due to lower power absorption. This paper presents a comprehensive review of near-field magnetic wireless power transfer (WPT) and communication technologies in a variety of applications from general free-space systems, to implantable biomedical devices we find of particular interest. To implement a fully wirelessly-powered implantable system, both high-efficiency power transfer and high-rate data communication are essential. This paper first presents the history and the fundamentals of near-field WPT and communication in free-space systems, followed by technical details for their specific use in implantable biomedical devices. Finally, this paper reviews recent advances in simultaneous wireless information and power transfer and highlights their applications in implantable biomedical systems. The knowledge reviewed in the paper could provide intuition in the design of various wireless and mobile systems such as wireless body area networks, small-cell 5G cellular, as well as in-body biomedical applications, especially for efficient power and data management and higher security.
引用
收藏
页码:21264 / 21285
页数:22
相关论文
共 216 条
[1]   An Inductive Link-Based Wireless Power Transfer System for Biomedical Applications [J].
Adeeb, M. ;
Islam, A. ;
Haider, M. ;
Tulip, F. ;
Ericson, M. ;
Islam, S. .
ACTIVE AND PASSIVE ELECTRONIC COMPONENTS, 2012, 2012
[2]  
Adler R.B., 1968, ELECTROMAGNETIC ENER
[3]  
Agbinya Johnson I., 2013, Progress In Electromagnetics Research B, V49, P129
[4]  
Agbinya Johnson I., 2013, Progress In Electromagnetics Research C, V37, P15
[5]  
Agbinya J.I., 2010, Proceedings of the Fifth International Conference on Broadband and Biomedical Communications, P1
[6]  
Agbinya JI, 2010, 2010 THIRD INTERNATIONAL CONFERENCE ON COMMUNICATIONS AND ELECTRONICS (ICCE), P400, DOI 10.1109/ICCE.2010.5739497
[7]   Power Equations and Capacity Performance of Magnetic Induction Communication Systems [J].
Agbinya, Johnson I. ;
Masihpour, Mehrnoush .
WIRELESS PERSONAL COMMUNICATIONS, 2012, 64 (04) :831-845
[8]   Low Frequency Electromagnetic Field Reduction Techniques for the On-Line Electric Vehicle (OLEV) [J].
Ahn, Seungyoung ;
Pak, Junso ;
Song, Taigon ;
Lee, Heejae ;
Byun, Jung-Gun ;
Kang, Deogsoo ;
Choi, Cheol-Seung ;
Kim, Eunjung ;
Ryu, Jiyun ;
Kim, Mijoo ;
Cha, Yumin ;
Chun, Yangbae ;
Rim, Chun-Taek ;
Yim, Jae-Ha ;
Cho, Dong-Ho ;
Kim, Joungho .
2010 IEEE INTERNATIONAL SYMPOSIUM ON ELECTROMAGNETIC COMPATIBILITY (EMC 2010), 2010, :625-630
[9]   A wireless implantable multichannel digital neural recording system for a micromachined sieve electrode [J].
Akin, T ;
Najafi, K ;
Bradley, RM .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 1998, 33 (01) :109-118
[10]   Realizing Underwater Communication through Magnetic Induction [J].
Akyildiz, Ian F. ;
Wang, Pu ;
Sun, Zhi .
IEEE COMMUNICATIONS MAGAZINE, 2015, 53 (11) :42-48