Abstract:
Several new types of low-cost and robust magnetic near-field probes manufactured in low-temperature co-fired ceramics (LTCC) are presented in this paper. Parallel C-shape...Show MoreMetadata
Abstract:
Several new types of low-cost and robust magnetic near-field probes manufactured in low-temperature co-fired ceramics (LTCC) are presented in this paper. Parallel C-shaped strips and their variations are inserted into the loop area in the front end of probes to achieve common-mode high-pass and notch filters for electric-field noise suppression. These probes with this kind of filter have excellent wideband electric field suppression. They are called high electric field suppression probes type A ~ D. The size of loop aperture in all probes is 100 μm long and 400 μm wide. The signal received from the loop is routed to a measurement apparatus through a semi-rigid coaxial cable with an outer diameter of 0.047 in. The flip-chip junction with low loss and good shielding is used between the probe head in LTCC and the semi-rigid coaxial cable. We take the probes over a 2000-μm-wide microstrip line as device-under-test to measure the probe characteristics. The isolation between electric and magnetic fields for a reference probe based on an old design using the same LTCC process is better than 30 dB from 0.05 to 12.65 GHz. The type A probe has two parallel C-shaped strips, it has better isolation of 35 dB from 0.1 to 11.05 GHz. Type C has one end of its strip shorted to ground, its 30-dB isolation frequency range can be extended to 0.05 ~ 17.8 GHz. With additional layout variation in type D, isolation can be improved to 40 dB up to 10.9 GHz. The spatial resolution for these probes is 140 μm when the distance between the metal surface of the microstrip line and the nearest edge of the loop is held at 120 μm. The calibration factors of the proposed probes are only slightly increased as compared with reference probe.
Published in: IEEE Transactions on Microwave Theory and Techniques ( Volume: 61, Issue: 6, June 2013)
References is not available for this document.
Select All
1.
T. Sudo, H. Sasaki, N. Masuda and J. L. Drewniak, "Electromagnetic interference(EMI) of system-on-package (SOP)", IEEE Trans. Adv. Packag., vol. 27, no. 2, pp. 304-314, May 2004.
2.
S. H. Hall, G. W. Hall and J. A. McCall, "10" in High-Speed Digital System Design: A Handbook of Interconnect Theory and Design Practices, USA, NY, New York:Wiley, 2000.
3.
H. Whiteside and R. W. P. King, "The loop antenna as a probe", IEEE Trans. Antennas Propag., vol. AP-12, no. 5, pp. 291-297, May 1964.
4.
J. D. Dyson, "Measurement of near fieldsof antennas and scatterers", IEEE Trans. Antennas Propag., vol. AP-21, no. 4, pp. 446-460, Jul. 1973.
5.
M. Kanda, "Standard probes for electromagneticfield measurements", IEEE Trans. Antennas Propag., vol. 41, no. 10, pp. 1349-1364, Oct. 1993.
6.
M. I. Montrose and E. M. Nakauchi, "5" in Testing for EMC Compliance: Approaches and Techniques, USA, NY, New York:Wiley, 2004.
7.
N. Masuda, N. Tamaki, T. Kuriyama, J. C. Bu, M. Yamaguchi and K.-I. Arai, "High frequency magnetic near field measurementon LSI chip using planar multi-layer shielded loop coil", IEEE Int. Electromagn. Compat. Symp., pp. 80-85, 2003-Aug.
8.
N. Tamaki, N. Masuda, T. Kuriyama, J.-C. Bu, M. Yamaguchi and K.-I. Arai, "A miniature thin-film shielded-loop probewith a flip-chip bonding for magnetic near field measurement", IEICE Tran. Electron., vol. J87-C, no. 3, pp. 335-342, Mar. 2004.
9.
N. Ando, N. Masuda, N. Tamaki, T. Kuriyama, S. Saito, K. Kato, et al., "Miniaturizedthin-film magnetic field probe with high spatial resolution fro LSI chip measurement", IEEE Int. Electromagn. Compat. Symp., pp. 357-362, 2004-Aug.
10.
"IEC 61967-6", Integrated Circuits—Measurement of Electromagnetic Emissions 150 kHz to 1 GHz—Part 6: Measurement of Conducted Emissions—Magnetic Probe Method, 2002.
11.
"IEC 61967-6 Amend 1/Ed.1", Amendment to IEC 61967-6 Ed. 1: Integrated Circuits—Measurement of Electromagnetic Emissions 150 kHz to 1 GHz—Part 6: Measurement of Conducted Emissions—Magnetic Probe Method, 2008.
12.
H. Funato and T. Suga, "Magnetic Near-field probe for GHz band andspatial resolution improvement technique", IEEE Int. EMC Symp., pp. 284-287, 2006-Mar.
13.
S.-Y. Lin, S.-K. Yen, W.-S. Chen and P.-H. Cheng, "Printed magnetic field probewith enhanced performances", IEEE Asia–Pacific Microw. Conf. Dig., pp. 649-652, 2009-Dec.
14.
D. C. Smith, "Signal and noise measurementtechniques using magnetic field probes", IEEE Int. Electromagn. Compat. Symp., pp. 559-563, 1999-Aug.
15.
Y.-T. Chou and H.-C. Lu, "Electric field coupling suppression usingvia fences for magnetic near-field shielded-loop coil probes in low temperaturecofired ceramic", IEEE Int. Electromagn. Compat. Symp., pp. 6-10, 2011-Aug.
16.
T. Harada, N. Masuda and M. Yamaguchi, "Near-field magnetic measurementsand their application to EMC of digital equipment", IEICE Trans. Electron., vol. E89-C, no. 1, pp. 9-15, Jan. 2006.
17.
C. F. M. Carobbi, L. M. Millanta and L. Chiosi, "The high-frequency behaviorof the shield in the magnetic-field probes", IEEE Int. Electromagn. Compat. Symp., pp. 35-40, 2000-Aug.
18.
C. F. M. Carobbi and L. M. Millanta, "Analysis of the common-moderejection in the measurement and generation of magnetic fields using loopprobes", IEEE Trans. Instrum. Meas., vol. 53, no. 2, pp. 514-523, Apr. 2004.
19.
T. Harada, H. Sasaki and E. Hankui, "Time-domain magnetic fieldwaveform measurement near printed circuit boards", Elect. Eng. Jpn., vol. 125, no. 4, 1998.
20.
E. Suzuki, S. Arakawa, H. Ota, K. I. Arai and R. Sato, "Optical magnetic field probe working up to 15 GHz usingCdTe electrooptic crystals", IEEE Trans. Electromagn. Compat., vol. 47, no. 2, pp. 344-351, May 2005.
21.
L. K. Yeung and K.-L. Wu, "A compact second-order LTCC bandpass filterwith two finite transmission zeros", IEEE Trans. Microw. Theory Techn., vol. 51, no. 2, pp. 337-341, Feb. 2003.
22.
W. J. Greig, "11" in Integrated Circuit Packaging Assembly and interconnections, Germany, Berlin:Springer, 2007.
23.
M. Spang, M. Albach and G. Schubert, "Response of a magnetic loopprobe to the current and voltage on a microstrip line", IEEE Int. Electromagne. Compat. Symp., pp. 1-5, 2008-Aug.
24.
F. L. Dacus, J. Van Niekerk and S. Bible, "Introducing loop antennas for short-rangeradios", Microw. RF, pp. 80-88, Jul. 2002.
25.
E. J. Denlinger, "A frequency dependent solutionfor microstrip transmission lines", IEEE Trans. Microw. Theory Techn., vol. 19, no. 1, pp. 30-39, Jan. 1971.