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表面等离激元赝模互连中动态调制的理论极限与框架

Theoretical limit and framework of dynamic modulation in spoof surface plasmon polariton interconnects.

作者信息

Nayem Suzit Hasan, Imtiaz Nafiz, Roy Joy Soumitra, Baten Md Zunaid

出版信息

Opt Express. 2023 Aug 28;31(18):29536-29557. doi: 10.1364/OE.497398.

Abstract

Spoof-surface-plasmon-polariton (SSPP) interconnects are potential candidates for next-generation interconnects to satisfy the growing demand for high-speed, large-volume data transfer in chip-to-chip and inter-chip communication networks. As in any interconnect, the viability and efficiency of the modulation technique employed will play a crucial role in the effective utilization of SSPP interconnects. In light of the lack of a comprehensive platform for the performance analysis of SSPP signal modulation, this work presents a theoretical framework that contributes to the following: 1) predictions of the maximum attainable modulation speed, limited by geometric dispersion in SSPP waveguide, 2) quantification of the fundamental trade-off relation between modulation speed and energy-efficiency for an arbitrary design of SSPP structure, 3) extension of the analysis over a broad category of SSPP modulation technique. In conjunction, a novel SSPP signal modulation technique is introduced, involving controlled alteration of the resonant condition of the SSPP interconnect using a variable resistor. Analyzing a sample SSPP waveguide with a 7 GHz cut-off frequency, the study identifies a potential ∼28 change in its transmission-band by varying the implanted resistor from 5kΩ to 5Ω, a range of values practically attainable with gate-controlled, state-of-the-art submicron scale field-effect transistors. The assertions of the theoretical model have been independently validated by finite-element method based numerical simulations, which show that the underlying concept can be utilized to realize the digital modulation scheme of the amplitude shift keying. For a millimeter-scale SSPP channel having 2.75 GHz transmission bandwidth, up to 300 Mbps modulation speed with nominal power loss is achieved in a standard, thermal-noise limited communication system. By scaling the interconnect to micrometer dimensions, the speed can be augmented up to 10 Gbps for data transfer over 100 mm distance with ≥80 energy efficiency. Essentially, the presented theory is the first of its kind that provides the foundational design guideline for designing and optimizing diverse range of SSPP modulators.

摘要

伪表面等离子体激元(SSPP)互连是下一代互连的潜在候选者,以满足芯片间和芯片内通信网络中对高速、大容量数据传输不断增长的需求。与任何互连一样,所采用的调制技术的可行性和效率将在SSPP互连的有效利用中发挥关键作用。鉴于缺乏用于SSPP信号调制性能分析的综合平台,这项工作提出了一个理论框架,有助于实现以下目标:1)预测受SSPP波导中几何色散限制的最大可实现调制速度;2)量化任意SSPP结构设计中调制速度与能量效率之间的基本权衡关系;3)将分析扩展到广泛的SSPP调制技术类别。同时,引入了一种新颖的SSPP信号调制技术,该技术涉及使用可变电阻器对SSPP互连的谐振条件进行可控改变。通过分析一个截止频率为7 GHz的示例SSPP波导,该研究发现,通过将植入电阻从5kΩ 变化到5Ω,其传输带可能会有 ∼28 的变化,这个电阻值范围在采用栅极控制的、最先进的亚微米级场效应晶体管时实际上是可以实现的。理论模型的断言已通过基于有限元方法的数值模拟得到独立验证,这些模拟表明该基本概念可用于实现幅移键控的数字调制方案。对于具有2.75 GHz传输带宽的毫米级SSPP通道,在标准的热噪声受限通信系统中,实现了高达300 Mbps的调制速度且功率损耗标称。通过将互连缩小到微米尺寸,对于100 mm距离的数据传输,速度可以提高到10 Gbps,能量效率≥80%。本质上,所提出的理论是同类理论中的首个理论,它为设计和优化各种SSPP调制器提供了基础设计指南。

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