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Device- and system-level performance modeling for graphene P-N junction logic

机译:石墨烯P-N结逻辑的设备和系统级性能建模

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Based on the property of angular dependent transmission probability of electrons observed in graphene PN junctions, a modified MUX-based graphene logic device is introduced. A more elaborate resistance model including ON resistance, leakage resistance and contact resistance is given as well as a capacitance model of the device. Compared with Si CMOS switches, MUX-based logic graphene gates have potentially lower output resistances and a smaller device area. Since interconnects play an ever increasing important role in digital circuit, for the first time, module-level and system-level analyses are made for better evaluating the potential performance of graphene logic devices. Based on the analysis of a 32-bit Han-Carlson adder, module-level evaluation has been done and comparison has been made between graphene logic circuits complemented by multilayer graphene interconnects and CMOS logic circuits with Cu/low k interconnects. The results indicate that MUX-based graphene logic circuits can outperform CMOS circuits in terms of both delay and power consumption. Both devices being evaluated are based on the 15nm technology node. For the system-level analysis, the graphene logic system can have 50% higher throughput than its Si CMOS counterpart with the same power density and die size area.
机译:基于石墨烯PN结中观察到的电子角度依赖传输概率的性质,引入了改进的基于Mux的石墨烯逻辑装置。给出了一种更精细的电阻模型,包括电阻,漏电和接触电阻以及装置的电容模型。与SI CMOS开关相比,基于MUX的逻辑石墨烯门具有潜在的输出电阻和较小的装置区域。由于互连在数字电路中发挥了不断增加的重要作用,因此首次进行模块级和系统级分析,以便更好地评估石墨烯逻辑器件的潜在性能。基于对32位HAN-CARLSON加法器的分析,已经完成了模块级评估并在具有CU / LOW k互连的多层石墨烯互连和CMOS逻辑电路互补的石墨烯逻辑电路之间进行比较。结果表明,基于MUX的石墨烯逻辑电路可以在延迟和功耗方面优于CMOS电路。正在评估的两个设备都基于15nm技术节点。对于系统级分析,石墨烯逻辑系统可以具有比其具有相同功率密度和芯片尺寸区域的SI CMOS对应物的50%的吞吐量。

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