Title: Electronic transport characteristics in a one-dimensional constriction defined by a triple-gate structure
Authors: Lee, Huang-Ming
Muraki, Koji
Chang, Edward Yi
Hirayama, Yoshiro
材料科學與工程學系
Department of Materials Science and Engineering
Issue Date: 15-Aug-2006
Abstract: We investigate the electronic transport characteristics of a one-dimensional (1D) narrow constriction defined in a GaAs/Al(x)Ga(1-x)As heterostructure by a simple triple-gate structure consisting of a pair of split gates and an additional surface Schottky gate (center gate) between them. Comparison between devices with and without a center gate reveals that the center gate, even when zero biased (V(CG)=0 V), significantly modifies the surface potential and facilitates the 1D confinement in a deep two-dimensional electron system. The pinch-off voltages at V(CG)=0 V for various channel widths W (=0.4-0.8 mu m) and lengths L (=0.2-2 mu m) are well described by the analytical formula based on the pinned-surface model [J. H. Davies , J. Appl. Phys. 77, 4504 (1995)]. Nonlinear transport spectroscopy with an additional dc bias shows that the lowest 1D subband energy separation (Delta E(1,2)) changes linearly with V(CG) and can be enhanced by 70% for V(CG)=0.8 V. A simple model assuming an infinitely long channel and no self-consistent potential well reproduces the overall behavior of the measured Delta E(1,2). In addition, effects of impurities, occasionally found for long-channel devices (L >= 1 mu m), are found to be greatly reduced by applying positive V(CG) and thereby enhancing Delta E(1,2). Data are also presented for the transport anomaly below the first conductance plateau, the so-called "0.7 anomaly," demonstrating that the triple-gate structure is useful for the study of density-dependent phenomena in a 1D system. (c) 2006 American Institute of Physics.
URI: http://dx.doi.org/10.1063/1.2229493
http://hdl.handle.net/11536/11915
ISSN: 0021-8979
DOI: 10.1063/1.2229493
Journal: JOURNAL OF APPLIED PHYSICS
Volume: 100
Issue: 4
End Page: 
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