基本情報
- 所属
- 国立研究開発法人宇宙航空研究開発機構 宇宙科学研究所 宇宙機応用工学研究系 特任教授
- 学位
- 学術博士(University of California, Los Angels(アメリカ合衆国))
- J-GLOBAL ID
- 200901092149206485
- researchmap会員ID
- 1000168389
- 外部リンク
研究キーワード
12研究分野
6経歴
12-
2019年4月 - 現在
-
2008年10月
-
2006年6月
-
2004年10月
学歴
5-
- 1981年3月
-
- 1979年3月
-
- 1979年
委員歴
5受賞
6-
2012年10月
-
2005年3月
論文
98-
Asia-Pacific Microwave Conference Proceedings, APMC 542-545 2023年This paper presents the fabrication of an Active Integrated Phased Array Antennas (AIPAA) sensor system prototype utilizing Information, Communication & Energy transfer (ICEt) technology. Through the high-density integration of hardware components and software algorithms, this system enables adaptive adjustments in diverse scenarios, leading to optimal system performance. The proposed prototype demonstrates the capability to fulfill sensing, communication, and energy transfer tasks in various environments, including spacecraft exploration and river disaster warning systems. This research represents a significant step towards the development of advanced wireless sensor networks with ICEt technology for multifunctional applications.
-
SN Applied Sciences 2(12) 2020年12月1日We report on the irreversible and reversible resistance changes for γ-ray irradiation in amorphous GeTe thin films with Ag electrodes. The γ-ray irradiation at a dose of 1 kGy irreversibly decreased the DC resistance by two orders of magnitude. The irreversible resistance change was caused by the formation of a conductive region that consisted of Ag-Te compounds. In-situ real-time DC resistance and AC impedance measurements revealed reversible variations in several electrode structures with DC resistances ranging widely from about 10 kΩ to about 5 MΩ. The DC resistance decreased by 2–5% with a time constant of about 3–7 min following the γ-ray irradiation with a dose rate of 0.5–2 kGy/h, and recovered on interruption. The AC impedance measurement was analyzed with a simple equivalent circuit consisting of a parallel RC circuit of the Ag-diffused GeTe matrix, connected serially to the interface resistance. The interface resistance and the capacitance of the matrix exhibited a fast reversible variation, which is explained by trapping and detrapping of carriers in the charged defects formed by the Ag re-diffusion. The resistance of the matrix showed a slow reversible variation with a time constant of 7 min, similar to the DC resistance. The slow reversible variation is attributed to the growth and dissolution of the conductive region caused by the Ag re-diffusion.
-
IEEE Microwave and Wireless Components Letters 30(10) 997-1000 2020年10月© 2020 IEEE. In this letter, a frequency-tunable rectifier in the $C$-band designed by a hybrid semiconductor integrated circuit (HySIC) concept is proposed. A GaAs monolithic microwave integrated circuit (MMIC) and a Si radio frequency integrated circuit (RFIC) were utilized as the HySIC configuration in the rectifier design. For the purpose of initial confirmation of this design validity, the GaAs and Si chips were fabricated and packaged onto the copper tungsten plate with gold plating. As measured results, frequency-tunable range from 3.82 to 4.55 GHz was measured. Maximum radio frequency (RF)-direct current (dc) conversion efficiency and output dc power in the measured power range from-10.0 to 17.8 dBm were 28.7% and 17.3 mW, respectively.
-
IEEE MTT-S International Microwave Symposium Digest 2020-August 1180-1183 2020年8月© 2020 IEEE. The 24 GHz communication system was demonstrated with wireless multi-sensors by wirelessly powering at 5.8 GHz. The wireless sensors for health monitoring in a space vehicle work as the sensors of temperature, humidity, acceleration, illuminance, battery voltage and sound in this study. Under output power of 30W from a GaN transmitter, a GaAs rectifier of energy harvester was operated with more than 80% RF-DC conversion efficiency.
MISC
494-
Korea-Japan Microwave Workshop 2002 29-32 2002年
-
2002 Union Radio-Scientifique internationale Aug. 2002年
-
2002 IEEE MTT-S INTERNATIONAL MICROWAVE SYMPOSIUM DIGEST, VOLS 1-3 1569-1572 1569-1572 2002年Active Integrated Antenna (AIA) arrays were fabricated on a glass substrate using a conductive thin film, which was thin enough to be transparent to realize a transparent RF component. It can be attached to a window glass keeping its visibility. This means a potential to develop to new applications in microwave communication. The AIA arrays, here, consist of CPW, double strong coupling and 2-element array. For the oscillation using the lossy transmission line, a backing conductor and a Partly Thickened Conductor (PTC) were used. It operated at 8.54GHz with the in-phase mode and EIRP was 14.3dBm.
-
2002 IEEE MTT-S International Microwave Conference 2002年
-
Proceedings of APMC2001 726-729 2001年
-
IEICE Transaction on Electronics E84-C(7),914-922 2001年
-
IEICE Transaction on Electronics E84-C(7),869-874 2001年
-
Journal of Advanced Science 12(3),200-205 2001年
-
Journal of Advanced Science 12(3),355-358 2001年
-
IEEE Microwave and Wireless Components Letters 11(1),19-21 2001年
-
Proceedings of APMC2001 726-729 2001年
-
IEICE Transaction on Electronics E84-C(7),914-922 2001年
-
IEICE Transaction on Electronics E84-C(7),869-874 2001年
-
Journal of Advanced Science 12(3),200-205 2001年
-
Journal of Advanced Science 12(3),355-358 2001年
-
IEEE Microwave and Wireless Components Letters 11(1),19-21 2001年
-
Journal of advanced science 12(3) 200-205 2001年
-
Journal of advanced science 12(3) 355-358 2001年
-
IEEE Microwave-and Wireless Components Letters 11(1) 19-21 2001年
-
電子情報通信学会技術研究報告. A・P, アンテナ・伝播 100(218) 55-60 2000年7月27日本報告では、パッチアンテナ、スロット開口面及び増幅器から成るアクティブ集積アンテナに並列帰還発振器層を加えた積層型アクティブ集積アンテナの試作を行ない、その結果を述べる。試作されたアンテナは、帰還ループを有する発振回路部、RF信号を上層へと給電するスロットを有する結合部、RF信号を増幅する増幅器を有する増幅部、アンテナへRF信号を給電するための結合部、そしてパッチアンテナを有する放射部の5層構造より成り立っている。実験結果より、アンテナの小型・軽量・多機能化のために、異なる機能を持つ回路を層状に組み合せた積層型アクティブ集積アンテナの基本動作の確認を行なえた。
書籍等出版物
5講演・口頭発表等
7-
KMITL_Kagoshima U joint seminar - Space Electronics Technologies and Applications 2016年10月22日
所属学協会
6Works(作品等)
1共同研究・競争的資金等の研究課題
8-
日本学術振興会 科学研究費助成事業 2011年4月 - 2015年3月
-
日本学術振興会 科学研究費助成事業 2009年 - 2012年