Irredicting the performance of low-loss on-chip inductors realized using carbon nanotube bundles

被引:38
作者
Nieuwoudt, Arthur [1 ]
Massoud, Yehia [1 ]
机构
[1] Rice Univ, Houston, TX 77005 USA
关键词
carbon nanotube; nanotube inductors; passive components; spiral inductors;
D O I
10.1109/TED.2007.911091
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Within the analog realm, integrated inductors continue to limit the performance of mixed-signal systems. To improve the performance of integrated inductors for future mixed-signal systems, alternative technologies must be investigated. In this paper, we propose low-loss on-chip inductors leveraging single-walled carbon nanotube (SWCNT) bundles, which have the potential to provide conductors with significantly lower resistivity than traditional copper technology. We develop a model for high-frequency current redistribution in SWCNT bundles, which we find can have a large effect on the resistance and quality factor of nanotube-based inductors. Leveraging a compact RLC circuit model, we examine the potential quality factor improvement provided by nanotube-based inductors over copper-based inductors for mixed-signal circuit applications. The results indicate that the optimized SWCNT bundle-based inductors can potentially provide a significant increase in quality factor. To demonstrate the performance advantages of optimized nanotube-based inductors, we find that their increased quality factors can lead to a noise figure and power consumption improvement in low-noise amplifiers, which are critical radio frequency circuits in integrated wireless receivers. If the integrated circuit fabrication challenges associated with high-density nanotube-based wires can be overcome, nanotube-based inductors could enable future mixed-signal and wireless systems with greater performance.
引用
收藏
页码:298 / 312
页数:15
相关论文
共 65 条
[1]   Ab initio study of 4 Å armchair carbon nanoropes:: Orientation-dependent properties -: art. no. 075403 [J].
Agrawal, BK ;
Agrawal, S ;
Srivastava, R ;
Singh, S .
PHYSICAL REVIEW B, 2004, 70 (07) :075403-1
[2]   Carbon nanotube electronics [J].
Avouris, P ;
Appenzeller, J ;
Martel, R ;
Wind, SJ .
PROCEEDINGS OF THE IEEE, 2003, 91 (11) :1772-1784
[3]   Carbon nanotube technologies for LSI via interconnects [J].
Awano, Yuji .
IEICE TRANSACTIONS ON ELECTRONICS, 2006, E89C (11) :1499-1503
[4]   A plausible mechanism for the evolution of helical forms in nanostructure growth [J].
Bandaru, P. R. ;
Daraio, C. ;
Yang, K. ;
Rao, A. M. .
JOURNAL OF APPLIED PHYSICS, 2007, 101 (09)
[5]  
BANTAS S, 2004, IEEE T CIRCUITS SYST, V15, P1507
[6]  
Budnik M, 2006, DES AUT CON, P935
[7]   On the design of RF spiral inductors on silicon [J].
Burghartz, JN ;
Rejaei, B .
IEEE TRANSACTIONS ON ELECTRON DEVICES, 2003, 50 (03) :718-729
[8]   An RF circuit model for carbon nanotubes [J].
Burke, PJ .
IEEE TRANSACTIONS ON NANOTECHNOLOGY, 2003, 2 (01) :55-58
[9]   Luttinger liquid theory as a model of the gigahertz electrical properties of carbon nanotubes [J].
Burke, PJ .
IEEE TRANSACTIONS ON NANOTECHNOLOGY, 2002, 1 (03) :129-144
[10]   Frequency-independent equivalent-circuit model for on-chip spiral inductors [J].
Cao, Y ;
Groves, RA ;
Huang, XJ ;
Zamdmer, ND ;
Plouchart, JO ;
Wachnik, RA ;
King, TJ ;
Hu, CM .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2003, 38 (03) :419-426