DocumentCode :
1297009
Title :
A Design Technique for Embedded Electromagnetic Band Gap Structure in Load Board Applications
Author :
Huh, Suzanne Lynn ; Swaminathan, Madhavan
Author_Institution :
Sch. of Electr. & Comput. Eng.- ing, Georgia Inst. of Technol., Atlanta, GA, USA
Volume :
54
Issue :
2
fYear :
2012
fDate :
4/1/2012 12:00:00 AM
Firstpage :
443
Lastpage :
456
Abstract :
A new design technique and analysis for an embedded electromagnetic bandgap (EBG) structure is presented. In modern multifunction designs, it may be required to integrate noise-sensitive analog circuits next to digital circuits. Here, digital switching noise can propagate through power/ground planes and affect analog circuit performance. It is important to block this effect. To prevent the noise propagation, an EBG-patterned power/ground plane can be an acceptable solution. However, difficulties arise when the EBG structure is put in a stripline-like environment; the embedded EBG structure loses the noise filtering function. The reason for the functional failure is analyzed, followed by a solution. The proposed solution has been demonstrated by both simulation and measurement. Simulation and measurement results demonstrate that the proposed embedded EBG structure can be effective for the desired noise isolation. The design technique is tested on a prototype load board for a 10-bit 3-GHz analog-to-digital converter from National Semiconductor. The suggested design technique for the embedded EBG structure includes three design parameters: 1) the potentials of the planes above and below the EBG layer; 2) the thicknesses of the dielectric layers above and below the EBG layer; and 3) the number and position of vias interconnecting the top and bottom planes.
Keywords :
analogue-digital conversion; embedded systems; failure analysis; photonic band gap; analog-to-digital converter; design technique; dielectric layers; digital circuits; digital switching noise; embedded EBG structure; embedded electromagnetic band gap structure; frequency 3 GHz; functional failure analysis; load board applications; multifunction designs; noise filtering function; noise isolation; noise propagation; noise-sensitive analog circuits; power-ground planes; stripline-like environment; word length 10 bit; Electromagnetic scattering; Metamaterials; Noise; Periodic structures; Pins; Resonant frequency; Solids; Electromagnetic bandgap (EBG); embedded EBG; load board; mixed signal system; noise propagation;
fLanguage :
English
Journal_Title :
Electromagnetic Compatibility, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9375
Type :
jour
DOI :
10.1109/TEMC.2011.2162337
Filename :
5983433
Link To Document :
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