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Fully differential current-input CMOS amplifier front-end suppressing mixed signal substrate noise for optoelectronic applications

机译:全差分电流输入CMOS放大器前端可抑制光电应用中的混合信号基板噪声

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In recent optoelectronic communication systems, microprocessors tend to be imbedded on-chip with analog interface circuitry. This results in a critical substrate noise issues for mixed-signal chip designers because switching transients in digital MOS circuits can interfere with analog circuits integrated on the same die by means of coupling through the substrate. In order to optimize the dynamic range of the system and to minimize the sensitivity to substrate noise, many noise-reduction techniques, such as a P+ guard ring, a N-well guard ring, trench oxide isolation, and MOSCAP have been developed and employed to suppress substrate noise generated by clocking of the digital circuitry in microprocessor. In this paper, a fully differential method is described, which is used to reduce the substrate noise effect caused by the microprocessor. This approach has been implemented in a communications data processing application, in which the microprocessor is located next to the analog current-input optical data receiver and quantization circuits which have a sensitivity of -28 dBm and variable gain characteristic for power efficiency. Both simulated and experimental results of this design approach are presented herein.
机译:在最近的光电通信系统中,微处理器倾向于被嵌入到具有模拟接口电路的芯片上。对于混合信号芯片设计人员来说,这将导致严重的基板噪声问题,因为数字MOS电路中的开关瞬变会通过基板耦合而干扰集成在同一芯片上的模拟电路。为了优化系统的动态范围并最小化对基板噪声的敏感度,已开发并采用了许多降噪技术,例如P +保护环,N阱保护环,沟槽氧化物隔离和MOSCAP抑制由微处理器中数字电路的时钟产生的基板噪声。本文介绍了一种全差分方法,该方法用于减少微处理器引起的基板噪声影响。此方法已在通信数据处理应用程序中实现,其中微处理器位于模拟电流输入光学数据接收器和量化电路旁边,该电路的灵敏度为-28 dBm,功率效率具有可变增益特性。本文介绍了这种设计方法的模拟结果和实验结果。

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