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Cited 2 time in webofscience Cited 2 time in scopus
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Transport Characteristics of Silicon Multi-Quantum-Dot Transistor Analyzed by Means of Experimental Parametrization Based on Single-Hole Tunneling Modelopen access

Authors
Lee, YoungminJun, HyewonPark, SeoyeonKim, Deuk YoungLee, Sejoon
Issue Date
Jun-2023
Publisher
MDPI
Keywords
quantum dot; Coulomb blockade; single-electron tunneling; transport mechanism
Citation
Nanomaterials, v.13, no.11, pp 1 - 13
Pages
13
Indexed
SCIE
SCOPUS
Journal Title
Nanomaterials
Volume
13
Number
11
Start Page
1
End Page
13
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/18634
DOI
10.3390/nano13111809
ISSN
2079-4991
2079-4991
Abstract
The transport characteristics of a gate-all-around Si multiple-quantum-dot (QD) transistor were studied by means of experimental parametrization using theoretical models. The device was fabricated by using the e-beam lithographically patterned Si nanowire channel, in which the ultrasmall QDs were self-created along the Si nanowire due to its volumetric undulation. Owing to the large quantum-level spacings of the self-formed ultrasmall QDs, the device clearly exhibited both Coulomb blockade oscillation (CBO) and negative differential conductance (NDC) characteristics at room temperature. Furthermore, it was also observed that both CBO and NDC could evolve along the extended blockade region within wide gate and drain bias voltage ranges. By analyzing the experimental device parameters using the simple theoretical single-hole-tunneling models, the fabricated QD transistor was confirmed as comprising the double-dot system. Consequently, based on the analytical energy-band diagram, we found that the formation of ultrasmall QDs with imbalanced energetic natures (i.e., imbalanced quantum energy states and their imbalanced capacitive-coupling strengths between the two dots) could lead to effective CBO/NDC evolution in wide bias voltage ranges.
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College of Natural Science > Division of Physics & Semiconductor Science > 1. Journal Articles
College of Advanced Convergence Engineering > Division of System Semiconductor > 1. Journal Articles

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College of Advanced Convergence Engineering (Division of System Semiconductor)
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