DocumentCode :
830582
Title :
Temperature Dependence of Carrier Transport of a Silicon Nanowire Schottky-Barrier Field-Effect Transistor
Author :
Yang, W.F. ; Lee, S.J. ; Liang, G.C. ; Eswar, R. ; Sun, Z.Q. ; Kwong, D.L.
Author_Institution :
Dept. of Electr. & Comput. Eng., Nat. Univ. of Singapore, Singapore
Volume :
7
Issue :
6
fYear :
2008
Firstpage :
728
Lastpage :
732
Abstract :
In this paper, temperature dependence of the characteristics of a silicon nanowire (SiNW) Schottky-barrier (SB) MOSFET device has been investigated in detail. Palladium or titanium source and drain SiNW MOSFETS integrated with an Al2O3/TaN/Ta gate stack have been fabricated and characterized at different temperatures. Results show that SB SiNW MOSFETs operate with different principles, compared to conventional MOSFETs. From the ION and transconductance variation with temperature, it is found that the device operation is dominated by carrier injection at the interface of the source and channel rather than the carrier transport inside the NW channel. Furthermore, this carrier injection is determined by the competition between SB tunneling and thermionic emission. Therefore, the SB height and width play an important role in SB SiNW mosfet operation, and effective barrier height has been extracted based on IDS-V GS characteristics at different temperatures. In addition, the profile of SB at the source/channel interface was analyzed with a qualitative analysis of the subthreshold swing.
Keywords :
MOSFET; Schottky barriers; alumina; charge injection; elemental semiconductors; nanowires; palladium; semiconductor quantum wires; silicon; silicon compounds; tantalum; tantalum compounds; thermionic emission; titanium; tunnelling; MOSFET; Pd; Schottky-barrier tunneling; Si; Si-Al2O3-TaN-Ta-SiO2-Si; Ti; carrier injection; carrier transport; palladium source; qualitative analysis; silicon nanowire Schottky-barrier field-effect transistor; thermionic emission; titanium source; Barrier height; Schottky-barrier (SB) mosfet; carrier injection; silicon nanowire (SiNW); temperature dependence;
fLanguage :
English
Journal_Title :
Nanotechnology, IEEE Transactions on
Publisher :
ieee
ISSN :
1536-125X
Type :
jour
DOI :
10.1109/TNANO.2008.2003353
Filename :
4595670
Link To Document :
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