DocumentCode :
3541746
Title :
Noise coupling in multi-voltage power distribution systems with decoupling capacitors
Author :
Popovich, Mikhail ; Friedman, Eby G.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Rochester, NY, USA
fYear :
2005
fDate :
23-26 May 2005
Firstpage :
620
Abstract :
Multiple supply voltages are often used in modern high performance ICs, such as microprocessors, to decrease power consumption without affecting circuit speed. A decoupling capacitor system for use in multiple supply power distribution systems is described. In order to minimize the total impedance of a multi-voltage power delivery system, as seen from a particular power supply, a decoupling capacitor is placed between the power supplies. The noise at one power supply can propagate to the other power supply, causing power and signal integrity problems in the overall system. With the introduction of a second power supply, therefore, the interaction between the two power distribution networks must be considered. The dependence of the magnitude of the voltage transfer function on the parameters of the power distribution system is investigated. It is shown that the magnitude of the voltage transfer function is strongly dependent on the parasitic inductance of the decoupling capacitors, decreasing with smaller inductance. It is also shown that it is highly desirable to maintain the effective series inductance of the decoupling capacitors as low as possible to decrease the overshoot of the response of the dual voltage power distribution system over a wide range of operating frequencies. Finally, a criterion for an overshoot-free voltage response is presented.
Keywords :
CMOS integrated circuits; capacitors; circuit noise; coupled circuits; electric impedance; electric potential; high level synthesis; inductance; integrated circuit design; power supply circuits; random noise; CMOS circuits; decoupling capacitors; effective series inductance; high level synthesis; high performance IC; impedance minimization; multi-voltage power distribution systems; noise; noise coupling; overshoot-free voltage response; parasitic inductance; power consumption; power integrity problems; signal integrity problems; voltage transfer function; Capacitors; Circuit noise; Coupling circuits; Energy consumption; Inductance; Microprocessors; Power distribution; Power supplies; Transfer functions; Voltage;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Circuits and Systems, 2005. ISCAS 2005. IEEE International Symposium on
Print_ISBN :
0-7803-8834-8
Type :
conf
DOI :
10.1109/ISCAS.2005.1464664
Filename :
1464664
Link To Document :
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