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Schottky Barrier Height Modulation Using Interface Characteristics of MoS2 Interlayer for Contact Structure

Authors
Kim, Seung-HwanHan, Kyu HyunKim, Gwang-SikKim, Seung-GeunKim, JiyoungYu, Hyun-Yong
Issue Date
13-2월-2019
Publisher
AMER CHEMICAL SOC
Keywords
Schottky barrier height; Fermi-level pinning; molybdenum disulfide; metal-induced gap state; III-V semiconductor; germanium; source/drain contact
Citation
ACS APPLIED MATERIALS & INTERFACES, v.11, no.6, pp.6230 - 6237
Indexed
SCIE
SCOPUS
Journal Title
ACS APPLIED MATERIALS & INTERFACES
Volume
11
Number
6
Start Page
6230
End Page
6237
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/67642
DOI
10.1021/acsami.8b18860
ISSN
1944-8244
Abstract
Schottky barrier height (SBH) engineering of contact structures is a primary challenge to achieve high performance in nanoelectronic and optoelectronic applications. Although SBH can be lowered through various Fermi level (FL) unpinning techniques, such as a metal/interlayer/semiconductor (MIS) structure, the room for contact metal adoption is too narrow because the work function of contact metals should be near the conduction band edge (CBE) of the semiconductor to achieve low SBH. Here, we propose a novel structure, the metal/transition metal dichalcogenide/semiconductor structure, as a contact structure that can effectively lower the SBH with wide room for contact metal adoption. A perpendicularly integrated molybdenum disulfide (MoS2) interlayer effectively alleviates FL pinning by reducing metal-induced gap states at the MoS2/semiconductor interface. Additionally, it can induce strong FL pinning of contact metals near its CBE at the metal/MoS2 interface. The technique using FL pinning and unpinning at metal/MoS2/semiconductor interfaces is first introduced in the MIS scheme to allow the use of various contact metals. Consequently, significant reductions of the SBH from 0.48 to 0.12 eV for GaAs and from 0.56 to 0.10 eV for Ge are achieved with several different contact metals. This work significantly reduces the dependence on contact metals with lowest SBH and proposes a new way of overcoming current severe contact issues for future nanoelectronic and optoelectronic applications.
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공과대학 (전기전자공학부)
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