DocumentCode
3490387
Title
Growth of epitaxial lanthanide oxide based gate dielectrics
Author
Osten, H.J. ; Laha, A. ; Bugiel, E. ; Schwendt, D. ; Fissel, A.
Author_Institution
Inst. of Electron. Mater. & Devices, Leibniz Univ., Hannover, Germany
fYear
2009
fDate
6-8 Nov. 2009
Firstpage
1
Lastpage
6
Abstract
Many materials systems are currently under consideration as potential replacements for SiO2 as the gate dielectric material for sub-0.1 ¿m CMOS technology. We present results for crystalline gadolinium oxides on silicon in the cubic bixbyite structure grown by solid source molecular beam epitaxy. On Si(100), crystalline Gd2O3 grows usually as (110)-oriented domains, with two orthogonal in-plane orientations. Layers grown under best vacuum conditions often exhibit poor dielectric properties due to the formation of crystalline interfacial silicide inclusions. Additional oxygen supply during growth improves the dielectric properties significantly. Layers grown by an optimized MBE process display a sufficiently high-K value to achieve equivalent oxide thickness values ¿ 1 nm, combined with ultra-low leakage current densities, good reliability, and high electrical breakdown voltage. A variety of MOS capacitors and field effect transistors has been fabricated based on these layers. Efficient manipulation of Si(100) 4° miscut substrate surfaces can lead to single domain epitaxial Gd2O3 layer. Such epi-Gd2O3 layers exhibited significant lower leakage currents compared to the commonly obtained epitaxial layers with two orthogonal domains. For capacitance equivalent thicknesses below 1 nm, this differences disappear, indicating that for ultrathin layers direct tunneling becomes dominating.
Keywords
MOS capacitors; electric breakdown; epitaxial layers; field effect transistors; gadolinium compounds; high-k dielectric thin films; inclusions; leakage currents; molecular beam epitaxial growth; permittivity; reliability; silicon; (110)-oriented domains; CMOS technology; Gd2O3-Si; MOS capacitors; Si; capacitance equivalent thicknesses; crystalline gadolinium oxides; crystalline interfacial silicide inclusions; cubic bixbyite structure; electrical breakdown voltage; epitaxial lanthanide oxide growth; equivalent oxide thickness; field effect transistors; gate dielectric material; high-K value; leakage current density; optimized MBE process; orthogonal in-plane orientations; reliability; silicon (100) substrate; size 0.1 mum; solid source molecular beam epitaxy; CMOS technology; Crystalline materials; Crystallization; Dielectric materials; Displays; High K dielectric materials; Leakage current; Molecular beam epitaxial growth; Silicides; Silicon; High-K materials; gadolinium oxide; gate dielectrics; molecular beam epitaxy;
fLanguage
English
Publisher
ieee
Conference_Titel
Signals, Circuits and Systems (SCS), 2009 3rd International Conference on
Conference_Location
Medenine
Print_ISBN
978-1-4244-4397-0
Electronic_ISBN
978-1-4244-4398-7
Type
conf
DOI
10.1109/ICSCS.2009.5414212
Filename
5414212
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