CMOS Multichannel Single-Chip Receivers for Multi-Gigabit by Paul Muller, Yusuf Leblebici

CMOS Multichannel Single-Chip Receivers for Multi-Gigabit by Paul Muller, Yusuf Leblebici

By Paul Muller, Yusuf Leblebici

On the planet of optical information communications this booklet might be an absolute must-read. It specializes in optical communications for brief and extremely brief distance functions and discusses the monolithic integration of optical receivers with processing components in normal CMOS applied sciences. What’s extra, it offers the reader with the required heritage wisdom to completely comprehend the trade-offs in short-distance communique receiver layout and offers the major matters to be addressed within the improvement of such receivers in CMOS applied sciences. furthermore, novel layout ways are offered.

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Additional resources for CMOS Multichannel Single-Chip Receivers for Multi-Gigabit Optical Data Communications (Analog Circuits and Signal Processing)

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1 Technology Before addressing the design of such a high-speed CMOS receiver and compare it with state-ofthe-art heterogeneous technology solutions, it is important to briefly discuss the advantages and limitations of ongoing CMOS technology scaling. Undeniably, RF CMOS, as well as wireline and fiber-optic CMOS transceivers, have become a reality through the scaling of MOS transistors. 2), a common performance indicator for a manufacturing process generation, demonstrates that available CMOS processes are indeed competitive with bipolar devices in terms of speed.

Silicon-based lasers have been the holy grail of photonics researchers for years. Intel has published results of a silicon Raman laser [9], which is pumped by an external III-V laser. The more interesting results come from ST Microelectronics in Italy [10] developing high-efficiency silicon light sources. Combining this latter technology with resonant cavities, a silicon “laser-like” coherent light source seems close to become reality. Finally, advances in the manufacturing of on-chip optical waveguides also present a coherent interface with optical chip-to-chip interconnects.

The overall power consumption-data rate ratio improves when pushing the data rate closer to the limits of the considered technology generation. It goes beyond saying that these power specifications, determined from system constraints, are far from trivial to achieve at the transistor level. 1. They are based on well-known standards such as InfiniBand [38] and Gigabit Ethernet [39]. The stressed receiver specification defines the worst case horizontal eye closure with which the receiver performance is tested.

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