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Power Efficient Gigabit Communication Over Capacitively Driven RC-Limited On-Chip Interconnects

机译:通过电容驱动的RC限制的片上互连实现功率高效的千兆位通信

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This paper presents a set of circuit techniques to achieve high data rate point-to-point communication over long on-chip RC-limited wire-pairs. The ideal line termination impedances for a flat transfer function with linear phase (pure delay) are derived, using an s-parameter wire-pair model. It is shown that a driver with series capacitance on the one hand and a resistive load on the other, are fair approximations of these ideal terminations in the frequency range of interest. From a perspective of power efficiency, a capacitive driver is preferred, as the series capacitance reduces the voltage swing along the line which reduces dynamic power consumption. To reduce cross-talk and maintain data integrity, parallel differential interconnects with alternatingly one or two twists are used. In combination with a low offset dynamic sense amplifier at the receiver, and a low-power decision feedback equalization technique with analog feedback, gigabit communication is demonstrated at very low power consumption. A point-to-point link on a 90 nm CMOS test chip achieves 2 Gb/s over 10 mm long interconnects, while consuming 0.28 pJ/bit corresponding to 28 fJ/bit/mm, which is much lower than competing designs.
机译:本文提出了一组电路技术,以通过长片上RC限制的线对实现高数据速率点对点通信。使用s参数线对模型,可以得出具有线性相位(纯延迟)的平坦传递函数的理想线路终端阻抗。可以看出,一方面具有串联电容而另一方面具有阻性负载的驱动器在所关注的频率范围内是这些理想终端的合理近似值。从功率效率的角度来看,首选电容性驱动器,因为串联电容可减少沿线路的电压摆幅,从而降低动态功耗。为了减少串扰并保持数据完整性,使用了交替交替使用一或两个绞合线的并行差分互连。结合接收器处的低失调动态检测放大器以及具有模拟反馈的低功率判决反馈均衡技术,可以证明千兆位通信的功耗非常低。 90 nm CMOS测试芯片上的点对点链接在10 mm长的互连上达到2 Gb / s,而消耗的0.28 pJ / bit相当于28 fJ / bit / mm,这比竞争设计要低得多。

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