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  5. Vertically integrated, three-dimensional nanowire complementary metal-oxide-semiconductor circuits

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Article
English
2009

Vertically integrated, three-dimensional nanowire complementary metal-oxide-semiconductor circuits

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English
2009
Proceedings of the National Academy of Sciences
Vol 106 (50)
DOI: 10.1073/pnas.0911713106

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Institutional SSO
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Charles M. Lieber
Charles M. Lieber

Harvard University

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SungWoo Nam
Xiaocheng Jiang
Qihua Xiong
+2 more

Abstract

Three-dimensional (3D), multi-transistor-layer, integrated circuits represent an important technological pursuit promising advantages in integration density, operation speed, and power consumption compared with 2D circuits. We report fully functional, 3D integrated complementary metal-oxide-semiconductor (CMOS) circuits based on separate interconnected layers of high-mobility n-type indium arsenide (n-InAs) and p-type germanium/silicon core/shell (p-Ge/Si) nanowire (NW) field-effect transistors (FETs). The DC voltage output (V(out)) versus input (V(in)) response of vertically interconnected CMOS inverters showed sharp switching at close to the ideal value of one-half the supply voltage and, moreover, exhibited substantial DC gain of approximately 45. The gain and the rail-to-rail output switching are consistent with the large noise margin and minimal static power consumption of CMOS. Vertically interconnected, three-stage CMOS ring oscillators were also fabricated by using layer-1 InAs NW n-FETs and layer-2 Ge/Si NW p-FETs. Significantly, measurements of these circuits demonstrated stable, self-sustained oscillations with a maximum frequency of 108 MHz, which represents the highest-frequency integrated circuit based on chemically synthesized nanoscale materials. These results highlight the flexibility of bottom-up assembly of distinct nanoscale materials and suggest substantial promise for 3D integrated circuits.

How to cite this publication

SungWoo Nam, Xiaocheng Jiang, Qihua Xiong, Donhee Ham, Charles M. Lieber (2009). Vertically integrated, three-dimensional nanowire complementary metal-oxide-semiconductor circuits. Proceedings of the National Academy of Sciences, 106(50), pp. 21035-21038, DOI: 10.1073/pnas.0911713106.

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Publication Details

Type

Article

Year

2009

Authors

5

Datasets

0

Total Files

0

Language

English

Journal

Proceedings of the National Academy of Sciences

DOI

10.1073/pnas.0911713106

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