石墨烯支持的无线片上网络

I. Llatser, S. Abadal, Albert Mestres, A. Cabellos-Aparicio, E. Alarcón
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引用次数: 8

摘要

石墨烯无线通信(GWC)提倡使用基于石墨烯的等离子体天线,或石墨烯,它利用石墨烯的等离子体特性在太赫兹波段(0.1-10太赫兹)辐射电磁波。GWC可能代表了无线片上通信研究领域的一个突破,即在一个芯片多处理器的不同处理器或核心之间,以及这些核心与存储系统之间。由此产生的石墨烯支持的片上无线网络(GWNoC)的主要优点有两个。一方面,gwc在太赫兹波段辐射的潜力提供了巨大的传输带宽,不仅可以以极高的速度传输信息,还可以设计超低功耗和低复杂度的方案。另一方面,相对于具有相同谐振频率的金属天线,石墨烯的尺寸可以大大减小,从而允许将石墨烯集成在单个处理核心内并实现核心级无线通信。除了这些物理层优势之外,从多核架构的角度来看,GWNoC代表了一个明显的机会。由于其广播和组播通信的原生实现,GWNoC不仅可以缓解传统片上网络的延迟或功耗瓶颈,还可以设计新颖的多核架构。
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Graphene-enabled Wireless Networks-on-Chip
Graphene-enabled Wireless Communications (GWC) advocate for the use of graphene-based plasmonic antennas, or graphennas, which take advantage of the plasmonic properties of graphene to radiate electromagnetic waves in the terahertz band (0.1-10 THz). GWC may represent a breakthrough in the research areas of wireless on-chip communications, i.e., among the different processors or cores of a chip multiprocessor, and of these cores with the memory system. The main advantages of the resulting Graphene-enabled Wireless Networks on-Chip (GWNoC) are twofold. On the one hand, the potential of GWCto radiate in the terahertz band provides a huge transmission bandwidth, allowing not only the transmission of information at extremely high speeds but also the design of ultra-low-power and low-complexity schemes. On the other hand, the size of graphennas can be greatly reduced with respect to metallic antennas with the same resonant frequency, allowing the integration of graphennas within individual processing cores and the implementation of core-level wireless communication. In addition to these physical layer advantages, GWNoC represent a clear opportunity from the multicore architecture perspective. Due to their native implementation of broadcast and multicast communications, GWNoC will enable not just the alleviation of the latency or power bottlenecks of traditional on-chip networks, but also the devising of novel multicore architectures.
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