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单片射频氮化硅自卷纳米膜叉指电容器的建模与制造。

Monolithic radio frequency SiN self-rolled-up nanomembrane interdigital capacitor modeling and fabrication.

作者信息

Sang Lei, Zhou Hao, Yang Zhendong, Kraman Mark D, Zhao Haojie, Michaels Julian A, Sievers Dane J, Schutt-Aine Jose E, Li Xiuling, Huang Wen

机构信息

School of Microelectronics Engineering, Academy of Photoelectric Technology, Soft Membrane Electronic Technology Laboratory, Hefei University of Technology, Hefei, Anhui 230601, People's Republic of China.

出版信息

Nanotechnology. 2019 Sep 6;30(36):364001. doi: 10.1088/1361-6528/ab244b. Epub 2019 May 23.

Abstract

Monolithic capacitors operating at radio frequencies (RF) serve as critical components in integrated circuits for wireless communication. Design and fabrication innovations for high capacitance density RF capacitors are highly desired for the miniaturization of RFIC chips. However, practical and simple solutions are limited by existing capabilities in three-dimensional (3D) structure construction and the effective configuration of electrodes. We report a unique route to achieve unprecedentedly high capacitance density at a high operating frequency through a capacitor configuration of 3D coil interdigital electrodes using planar semiconductor processing compatible materials and fabrication methods. A systematic mechanical-electrical design principle is demonstrated, and fabricated devices show a maximum 21.5 pF capacitance, which is 17.2× larger after rolling up. The corresponding capacitance density is as large as 371 pF mm, with resonant frequency of 1.5 GHz. The performance could be improved significantly by simply rolling up more turns with minimal change to the area footprint.

摘要

工作在射频(RF)频段的单片电容器是无线通信集成电路中的关键元件。为实现射频集成电路(RFIC)芯片的小型化,对高电容密度射频电容器的设计与制造创新有着迫切需求。然而,由于三维(3D)结构构建和电极有效配置方面的现有能力限制,实用且简单的解决方案较为有限。我们报告了一种独特的方法,通过使用与平面半导体工艺兼容的材料和制造方法,采用3D线圈叉指电极的电容器配置,在高工作频率下实现了前所未有的高电容密度。展示了一种系统的机电设计原理,制造的器件显示出最大21.5 pF的电容,卷绕后增大了17.2倍。相应的电容密度高达371 pF/mm,谐振频率为1.5 GHz。通过简单地增加卷绕匝数且对占地面积改变最小,性能可得到显著提升。

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