Transcranial magnetic stimulation (TMS) has recently been used as a method for the treatment of neurological and psychiatric diseases. Daily TMS sessions can provide continuous therapeutic effectiveness, and the installation of TMS systems at patients' homes has been proposed. A figure-eight coil, which is normally used for TMS therapy, induces a highly localized electric field; however, it is challenging to achieve accurate coil positioning above the targeted brain area using this coil. In this paper, a bowl-shaped coil for stimulating a localized but wider area of the brain is proposed. The coil's electromagnetic characteristics were analyzed using finite element methods, and the analysis showed that the bowl-shaped coil induced electric fields in a wider area of the brain model than a figure-eight coil. The expanded distribution of the electric field led to greater robustness of the coil to the coil-positioning error. To improve the efficiency of the coil, the relationship between individual coil design parameters and the resulting coil characteristics was numerically analyzed. It was concluded that lengthening the outer spherical radius and narrowing the width of the coil were effective methods for obtaining a more effective and more uniform distribution of the electric field.
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7 May 2015
Research Article|
Magnetism and Magnetic Materials|
March 17 2015
Characteristics of bowl-shaped coils for transcranial magnetic stimulation Available to Purchase
Keita Yamamoto;
Keita Yamamoto
1Department of Electrical Engineering and Information Systems, Graduate School of Engineering,
The University of Tokyo
, Tokyo, Japan
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Momoko Suyama;
Momoko Suyama
1Department of Electrical Engineering and Information Systems, Graduate School of Engineering,
The University of Tokyo
, Tokyo, Japan
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Yoshihiro Takiyama;
Yoshihiro Takiyama
1Department of Electrical Engineering and Information Systems, Graduate School of Engineering,
The University of Tokyo
, Tokyo, Japan
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Dongmin Kim;
Dongmin Kim
1Department of Electrical Engineering and Information Systems, Graduate School of Engineering,
The University of Tokyo
, Tokyo, Japan
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Youichi Saitoh;
Youichi Saitoh
2Department of Neuromodulation and Neurosurgery, Graduate School of Medicine,
Osaka University
, Osaka, Japan
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Masaki Sekino
Masaki Sekino
a)
1Department of Electrical Engineering and Information Systems, Graduate School of Engineering,
The University of Tokyo
, Tokyo, Japan
2Department of Neuromodulation and Neurosurgery, Graduate School of Medicine,
Osaka University
, Osaka, Japan
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Keita Yamamoto
1
Momoko Suyama
1
Yoshihiro Takiyama
1
Dongmin Kim
1
Youichi Saitoh
2
Masaki Sekino
1,2,a)
1Department of Electrical Engineering and Information Systems, Graduate School of Engineering,
The University of Tokyo
, Tokyo, Japan
2Department of Neuromodulation and Neurosurgery, Graduate School of Medicine,
Osaka University
, Osaka, Japan
a)
Author to whom correspondence should be addressed. Electronic mail: [email protected].
J. Appl. Phys. 117, 17A318 (2015)
Article history
Received:
September 21 2014
Accepted:
November 03 2014
Citation
Keita Yamamoto, Momoko Suyama, Yoshihiro Takiyama, Dongmin Kim, Youichi Saitoh, Masaki Sekino; Characteristics of bowl-shaped coils for transcranial magnetic stimulation. J. Appl. Phys. 7 May 2015; 117 (17): 17A318. https://doi.org/10.1063/1.4914876
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