PhotonIcs and Electromagnetics Research Symposium,
also known as Progress In Electromagnetics Research Symposium
PIERS Proceedings
Published: 2015-07-09
Coaxial-line Structured SMT Pad for LTCC SiP Applications
By
Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)1768-1771
Abstract
In this work, a surface-mount type (SMT) pad using a coaxial-line structure is presented for low temperature co-fired ceramic (LTCC) SiP (system-in-package) applications. The vertical via transition is devised in type of the coaxial line. An overlap part between its outer conductor and a transmission line on the main board is cut off in order to eliminate their interaction. A cap on the top layer of the vertical via transition is designed in order to reduce radiation due to discontinuity. The designed SMT pad was fabricated using the standard LTCC process. The measured return and insertion loss are below −14 and −1.0 dB, respectively up to 15 GHz.
Citation
Young Chul Lee, "Coaxial-line Structured SMT Pad for LTCC SiP Applications ," Proceedings of 2015 Photonics & Electromagnetics Research Symposium, Prague, July 6 - 9,Page(s)1768-1771
References

1. Lee, Y. C., W.-I. Chang, and C. S. Park, "Monolithic LTCC SiP transmitter for 60 GHz wireless communication terminals," IEEE MTT-S International Microwave Symposium Digest, 1015-1018, 2005.
doi:10.1109/mwsym.2005.1516839        Google Scholar

2. Lee, Y. C., T. W. Kim, A. B. Ariffin, and N.-G. Myoung, "60-GHz amplitude shift-keying receiver LTCC system-on-package module," Microwave and Optical Technology Letters, Vol. 53, 758-761, 2011.
doi:10.1002/mop.25824        Google Scholar

3. Ziroff, A., M. Nalezinski, and W. Menzel, "A novel approach for LTCC packaging using a PBG structure for shielding and package mode suppression," European Microwave Conference, 419-422, 2003.
doi:10.1109/euma.2003.340979        Google Scholar

4. Lu, A. C. W., K. M. Chua, L. L. Wai, S. C. K. Wong, J. J. Wang, and Y. P. Zhang, "Integrated antenna module for broadband wireless applications," Electronics Packaging Technology Conference, 240-243, 2004.
doi:10.1109/eptc.2004.1396611        Google Scholar

5. Panther, A., C. Glaser, M. G. Stubbs, and J. S. Wight, "Vertical transitions in low temperature co-fired ceramics for LMDS applications," IEEE MTT-S Int. Microwave Symposium, Vol. 3, 1907-1910, 1907.
doi:10.1109/mwsym.2001.967281        Google Scholar

6. Lei, S., Y. X. Guo, and L. C. Ong, "CPW to stripline transitions in LTCC for millimeter-wave applications," IEEE Asia Pacific Microwave Conference (APMC) Proceedings, 2005.        Google Scholar

7. Schmuckle, F. J., A. Jentzch, W. Heinrich, J. Butz, and M. Spinnler, "LTCC as MCM substrate: Design of strip-line structures and flip-chip interconnections," IEEE MTT-S Int. Microwave Symposium Digest, Vol. 3, 1093-1096, 2001.
doi:10.1109/mwsym.2001.967280        Google Scholar

8. Yang, T.-H., C.-F. Chen, T.-Y. Huang, C.-L. Wang, and R.-B. Wu, "A 60 GHz LTCC transition between microstrip line and substrate integrated waveguide," IEEE Asia Pacific Microwave Conference (APMC) Proceedings, 2005.        Google Scholar

9. Lee, Y. C., "SMT pad using a coaxial line structure for LTCC SoP applications," Microwave and Optical Technology Letters, Vol. 51, 1769-1772, 2009.
doi:10.1002/mop.24447        Google Scholar

10. CST MICROWAVE STUDIO, CST Inc., http://www.cst.com.