Title :
Design of power supply noise and radiation free power—Ground plane for modern system in package
Author :
Huang, HuiFen ; Chu, QingXin ; Xiao, Jian Kang
Author_Institution :
Sch. of Electron. & Inf. Eng., South China Univ. of Technol., Guangzhou
Abstract :
The design of power distribution network to deliver noise free power to high performance systems of increasing package density, high clock speed, high power demand at low voltages, and large current change with fast slew-rate is a challenging task. We design this novel structure according to a kind of plant leaf nutrient delivering system. There is good agreement between the numerical prediction method and the measurement results. The measured S21 is below -10 dB and SSN (simultaneous switching noise) cannot deliver into chip power system. The solders increase the DC (direct current) resistance 2.7% for the novel power-ground plane and 18.68% for traditional structure. The Swiss-Chess structure effect (high resistance metal areas because of distributed via and solders and leading to the voltages or currents to the circuit - elements lower than design demand) is reduced. The simulated gain shows there is no antenna effect for our designed power-ground plane.
Keywords :
distribution networks; power supply quality; Swiss-Chess structure effect; fast slew-rate; high clock speed; high power demand; package density; plant leaf nutrient delivering system; power distribution network; power supply noise free power-ground plane; radiation free power-ground plane; simultaneous switching noise; Clocks; Electrical resistance measurement; Low voltage; Packaging; Power demand; Power measurement; Power supplies; Power systems; Prediction methods; Semiconductor device measurement;
Conference_Titel :
Electromagnetic Compatibility and 19th International Zurich Symposium on Electromagnetic Compatibility, 2008. APEMC 2008. Asia-Pacific Symposium on
Conference_Location :
Singapore
Print_ISBN :
978-981-08-0629-3
Electronic_ISBN :
978-981-08-0629-3
DOI :
10.1109/APEMC.2008.4559940