DocumentCode :
3470923
Title :
Ultra-wideband noise suppression of power supply noise by combining mushroom and planar type EBG structures
Author :
Ikemiya, Keisuke ; Sakai, Masayuki ; Sudo, Toshio
Author_Institution :
Shibaura-Inst. of Technol., Tokyo, Japan
fYear :
2013
fDate :
11-13 Nov. 2013
Firstpage :
1
Lastpage :
4
Abstract :
Power supply noise spectra generated by CMOS digital circuits has been shifting to the higher frequency range, as the clock frequency of CMOS digital circuit is becoming faster year by year. Therefore, a new electromagnetic band gap (EBG) structure is strongly required to prevent the wide frequency noise from DC to high frequency components so as to apply to any operating frequencies of CMOS digital circuits and RF circuits. In this paper, a new EBG structure with ultra-wide stop band has been proposed by combining two kinds of EBG structures, i.e., the mushroom type and the planar type EBG structures in a printed circuits board (PCB). This EBG structure consisted of 4 conductive layers. By placing two power supply layers and two ground planes alternatively, two mushroom type EBG structures were constituted vertically in the 4 conductive layers. The unit cells with the same potential were connected each other using via holes. In addition, the top conductive layer provided the planar EBG structure with longer bridge line than the conventional EBG structure. The new EBG structure has been found to have a ultra-wide stop band property by measurement and simulation.
Keywords :
CMOS digital integrated circuits; clocks; electromagnetic interference; photonic band gap; printed circuits; CMOS digital circuits; DC component; PCB; RF circuits; bridge line; clock frequency; conductive layer; electromagnetic band gap structure; high frequency component; mushroom type EBG structure; planar type EBG structure; power supply layer; power supply noise spectra; printed circuit board; ultra-wide stop band; ultra-wideband noise suppression; CMOS integrated circuits; Decision support systems; Digital circuits; Metamaterials; Noise; Periodic structures; Power supplies;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
CPMT Symposium Japan (ICSJ), 2013 IEEE 3rd
Conference_Location :
Kyoto
Print_ISBN :
978-1-4799-2718-0
Type :
conf
DOI :
10.1109/ICSJ.2013.6756111
Filename :
6756111
Link To Document :
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