Hybrid Magnetic Sensor Combined With a Tunnel Magnetoresistive Sensor and High-Temperature Superconducting Magnetic-Field-Focusing Plates

被引:9
作者
Tsukada, Keiji [1 ]
Hirata, Tetsuro [1 ]
Goda, Yuto [1 ]
Sakai, Kenji [1 ]
Kiwa, Toshihiko [1 ]
机构
[1] Okayama Univ, Sch Interdisciplinary Sci & Engn Hlth Syst, Okayama 7008530, Japan
关键词
Absolute magnetic measurement; magnetic field focusing; magnetic sensor; tunnel magnetoresitance (TMR);
D O I
10.1109/TASC.2018.2874354
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Magnetoresistive (MR) sensors are widely used, particularly in consumer products. However, in applications requiring extremely sensitive magnetic sensors, superconducting quantum interference devices (SQUIDS) are primarily used. In this study, we develop a hybrid magnetic sensor by combining an MR sensor with two high-temperature superconducting (HTS) plates to achieve sensitivity that lies between those of MR sensors and SQUIDS. In addition, we apply a modulation method for measuring the absolute magnetic field. A nanogranular in-gap tunnel MR sensor is installed inside the slit between the magnetic-field-focusing HTS plates, and the magnetic response is evaluated. Using the magnetic-field-focusing characteristics of the HTS plates (made from YBa2 Cu-3 O7-delta) and the MR sensor inside the slit between the two plates, the sensitivity and noise characteristics are improved. Adjustment of parameters, such as MR sensor height from the slit, slit width of the HTS plates, and plate size allow sensitivity control depending on the application. Moreover, the absolute magnetic response and low noise in low-frequency regions are obtained through ac modulation.
引用
收藏
页数:5
相关论文
共 13 条
[1]   Fabrication of Low-Noise HTS-SQUID Gradiometers and Magnetometers With Ramp-Edge Josephson Junctions [J].
Adachi, Seiji ;
Tsukamoto, Akira ;
Oshikubo, Yasuo ;
Hato, Tsunehiro ;
Ishimaru, Yoshihiro ;
Tanabe, Keiichi .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2011, 21 (03) :367-370
[2]   FLUX FOCUSING IN ALL HIGH-T(C) JOSEPHSON EDGE JUNCTIONS AND SQUIDS [J].
AHARONI, E ;
KOREN, G ;
COHEN, D ;
COHEN, D .
PHYSICA C, 1992, 202 (3-4) :263-267
[3]   Four coplanar superconducting strips: flux-focusing effects and inductance [J].
Brojeny, AAB ;
Clem, JR .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2004, 17 (11) :1275-1282
[4]   High-Tc SQUID biomagnetometers [J].
Faley, M. I. ;
Dammers, J. ;
Maslennikov, Y. V. ;
Schneiderman, J. F. ;
Winkler, D. ;
Koshelets, V. P. ;
Shah, N. J. ;
Dunin-Borkowski, R. E. .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2017, 30 (08)
[5]   Tracking geomagnetic fluctuations to picotesla accuracy using two superconducting quantum interference device vector magnetometers [J].
Henry, S. ;
di Borgo, E. Pozzo ;
Cavaillou, A. .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2013, 84 (02)
[6]   Characterization and demonstration results of a SQUID magnetometer system developed for geomagnetic field measurements [J].
Kawai, J. ;
Miyamoto, M. ;
Kawabata, M. ;
Nose, M. ;
Haruta, Y. ;
Uehara, G. .
SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 2017, 30 (08)
[7]  
Ketchen M., 1985, SQUID '85, Superconducting Quantum Interference Devices and Their Applications, P865
[8]   Tunnel-MR and spin electronics in metal-nonmetal granular systems [J].
Mitani, S ;
Fujimori, H ;
Takanashi, K ;
Yakushiji, K ;
Ha, JG ;
Takahashi, S ;
Maekawa, S ;
Ohnuma, S ;
Kobayashi, N ;
Masumoto, T ;
Ohnuma, M ;
Hono, K .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 1999, 198-99 :179-184
[9]   Ultra-sensitive field sensors - An alternative to SQUIDs [J].
Pannetier, M ;
Fermon, C ;
Legoff, G ;
Simola, J ;
Kerr, E ;
Welling, M ;
Wijngaarden, RJ .
IEEE TRANSACTIONS ON APPLIED SUPERCONDUCTIVITY, 2005, 15 (02) :892-895
[10]   Low-frequency noise measurements on commercial magnetoresistive magnetic field sensors [J].
Stutzke, NA ;
Russek, SE ;
Pappas, DP ;
Tondra, M .
JOURNAL OF APPLIED PHYSICS, 2005, 97 (10)