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Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D

Monolithic on-chip inductors are key passive devices in radio frequency integrated circuits (RFICs). Currently, 70–80% of the on-wafer area of most RFIC chips is occupied by the sprawling planar spiral inductors, and its operation frequency is limited to a few GHz. With continuous scaling of the tra...

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Autores principales: Yu, Xin, Huang, Wen, Li, Moyang, Comberiate, Thomas M., Gong, Songbin, Schutt-Aine, Jose E., Li, Xiuling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5386192/
https://www.ncbi.nlm.nih.gov/pubmed/25913217
http://dx.doi.org/10.1038/srep09661
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author Yu, Xin
Huang, Wen
Li, Moyang
Comberiate, Thomas M.
Gong, Songbin
Schutt-Aine, Jose E.
Li, Xiuling
author_facet Yu, Xin
Huang, Wen
Li, Moyang
Comberiate, Thomas M.
Gong, Songbin
Schutt-Aine, Jose E.
Li, Xiuling
author_sort Yu, Xin
collection PubMed
description Monolithic on-chip inductors are key passive devices in radio frequency integrated circuits (RFICs). Currently, 70–80% of the on-wafer area of most RFIC chips is occupied by the sprawling planar spiral inductors, and its operation frequency is limited to a few GHz. With continuous scaling of the transistor technology, miniaturization and high frequency operation of inductors have become the bottleneck to meet future demands of wireless communication systems. Here we report on-chip self-rolled-up 3D microtube inductors with extremely small footprint, unprecedented high frequency performance and weak dependence on substrate conductivity. The serpentine metal strips are deposited on an oppositely strained silicon nitrides (SiN(x)) bilayer. After releasing from the sacrificial layer underneath, the metal/SiN(x) layer is scrolled into a 3D hollow tubular structure by the strain induced unidirectional self-rolled-up technology. Compared to the planar spiral inductors with similar inductances and quality (Q) factors, the footprint of tube inductors is reduced by as much as two orders of magnitude, and the frequency at peak Q factor improves more than 5 times on doped substrates. The self-rolled-up 3D nanotechnology platform employed here, that “processes in 2D but functions in 3D”, is positioned to serve as a global solution for extreme RFIC miniaturization with improved performance.
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spelling pubmed-53861922017-04-14 Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D Yu, Xin Huang, Wen Li, Moyang Comberiate, Thomas M. Gong, Songbin Schutt-Aine, Jose E. Li, Xiuling Sci Rep Article Monolithic on-chip inductors are key passive devices in radio frequency integrated circuits (RFICs). Currently, 70–80% of the on-wafer area of most RFIC chips is occupied by the sprawling planar spiral inductors, and its operation frequency is limited to a few GHz. With continuous scaling of the transistor technology, miniaturization and high frequency operation of inductors have become the bottleneck to meet future demands of wireless communication systems. Here we report on-chip self-rolled-up 3D microtube inductors with extremely small footprint, unprecedented high frequency performance and weak dependence on substrate conductivity. The serpentine metal strips are deposited on an oppositely strained silicon nitrides (SiN(x)) bilayer. After releasing from the sacrificial layer underneath, the metal/SiN(x) layer is scrolled into a 3D hollow tubular structure by the strain induced unidirectional self-rolled-up technology. Compared to the planar spiral inductors with similar inductances and quality (Q) factors, the footprint of tube inductors is reduced by as much as two orders of magnitude, and the frequency at peak Q factor improves more than 5 times on doped substrates. The self-rolled-up 3D nanotechnology platform employed here, that “processes in 2D but functions in 3D”, is positioned to serve as a global solution for extreme RFIC miniaturization with improved performance. Nature Publishing Group 2015-04-27 /pmc/articles/PMC5386192/ /pubmed/25913217 http://dx.doi.org/10.1038/srep09661 Text en Copyright © 2015, Macmillan Publishers Limited. All rights reserved http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder in order to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Yu, Xin
Huang, Wen
Li, Moyang
Comberiate, Thomas M.
Gong, Songbin
Schutt-Aine, Jose E.
Li, Xiuling
Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D
title Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D
title_full Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D
title_fullStr Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D
title_full_unstemmed Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D
title_short Ultra-Small, High-Frequency, and Substrate-Immune Microtube Inductors Transformed from 2D to 3D
title_sort ultra-small, high-frequency, and substrate-immune microtube inductors transformed from 2d to 3d
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5386192/
https://www.ncbi.nlm.nih.gov/pubmed/25913217
http://dx.doi.org/10.1038/srep09661
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