Design and analysis of vertical nanoparticles-magnetic-cored inductors for RF ICs

  • Zao Ni*
  • , Jing Zhan
  • , Qiang Fang
  • , Xin Wang
  • , Zitao Shi
  • , Yi Yang
  • , Tian Ling Ren
  • , Albert Wang
  • , Yuhua Cheng
  • , Jianjun Gao
  • , Xinxin Li
  • , Chen Yang
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

31 Scopus citations

Abstract

We report the design and analysis of the first vertical magnetic-cored inductors in CMOS backend for radio-frequency (RF) ICs, which includes theoretical and experimental studies of device architecture, equivalent circuit model with parameter extraction technique, process development, and device characterization. Vertical magnetic cores with multiple-layer stacked-spiral structures are designed to realize compact inductive devices in RF ICs. A CMOS-compatible post-CMOS backend process module (CMOS +) and optimized high-permeability nanoparticles are utilized to achieve a high inductance-to-coil-area ratio (L-density) in gigahertz range. The prototype six-layer inductors with NiZnCu ferrite nanoparticles-magnetic-core were fabricated in a commercial foundry 0.18-μm six-metal RF CMOS technology. A high L-density of over 700 nH/mm2 to multigigahertz was obtained, with an 80% chip size reduction from the reference planar magnetic inductors. An equivalent circuit model with parameter extraction technique is developed to analyze magnetic enhancement effects. This work demonstrates the potential of design and integration of compact high-performance vertical magnetic-cored inductive devices into CMOS backend for high-quality and low-cost RF systems-on-a-chip.

Original languageEnglish
Article number6473877
Pages (from-to)1427-1435
Number of pages9
JournalIEEE Transactions on Electron Devices
Volume60
Issue number4
DOIs
StatePublished - 2013

Keywords

  • CMOS
  • equivalent circuit
  • inductor
  • nanoparticles
  • radio frequency (RF)
  • vertical magnetic core

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