超薄高介电常数衬底中PDN诱导串扰对高速信号的影响分析

Taiki Kitazawa, Y. Hayashi, Y. Fukawa, Yougwoo Kim
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引用次数: 2

摘要

在本文中,我们分析了输电网络(PDN)引起的串扰对超薄和高介电常数衬底中高速信号的影响。当PDN阻抗较高时,信号经过渡产生回电流不连续,通过电源/地平面产生噪声。因此,为了降低PDN阻抗,印制电路板(PCB)设计中虽然采用去耦电容,但其有效带宽和设计空间都有限制。同时,超薄高介电常数衬底具有降低宽带PDN阻抗的能力。利用电磁和电路仿真,我们通过分析三种衬底的插入损耗、PDN阻抗和眼图来比较串扰的影响。在攻击者距离受害者10倍线宽的情况下,模拟了与PDN(1,0)模式频率对应的数据速率(DR)时钟信号的眼图。我们比较了有攻击者/无攻击者和被攻击者的每个DR的开眼电压和功率/地噪声量。结果发现,与传统阻燃型4 (FR-4)衬底相比,超薄高介电常数衬底可以显著抑制PDN诱导的串扰影响。此外,由于PDN阻抗在宽带中降低,这些基板可以为安装在pcb上的任何位置的信号过孔提供良好的返回路径,并有助于解决与PDN阻抗相关的各种问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the PDN Induced Crosstalk Impacts on the High-Speed Signaling in Ultra- Thin and High Permittivity Substrates
In this paper, we conduct analysis of the power delivery network (PDN) induced crosstalk impacts on the high-speed signaling in ultra-thin and high permittivity substrates. When the PDN impedance is high, the return current discontinuity occurs in signal via transition and causes noise through power/ground planes. Therefore, to reduce the PDN impedance, although the decoupling capacitors are used in printed circuit board (PCB) design, the effective bandwidth and design space have limits. Meanwhile, the ultra-thin and high permittivity substrate has capability of reducing the PDN impedance in the wideband. Using electromagnetic (EM) and circuit simulations, we compared the crosstalk impacts by analyzing the insertion loss, PDN impedance, and eye diagram in three substrates. The eye diagrams were simulated under the situation that the clock signal with data rate (DR) that corresponds to the frequency of (1,0) mode of PDN on an aggressor, which is ten times line width away from a victim. We compared the eye-opening voltage and power/ground noise amount among with/without aggressor and each DR of victim. As a result, we found that the ultra-thin and high permittivity substrate can significantly suppress the PDN induced crosstalk impacts compared to the conventional flame-retardant type 4 (FR-4) substrate. In addition, because the PDN impedance is reduced in the wideband, these substrates can provide a good return path for signal vias in any position mounted on the PCBs and are helpful for various issues related to the PDN impedance.
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