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Microscopic Quantum Transport Processes of Out-of-Plane Charge Flow in 2D Semiconductors Analyzed by a Fowler–Nordheim Tunneling Probe

Title
Microscopic Quantum Transport Processes of Out-of-Plane Charge Flow in 2D Semiconductors Analyzed by a Fowler–Nordheim Tunneling Probe
Authors
Shin D.H.Lee D.H.Choi S.-J.Kim S.Kim H.Watanabe K.Taniguchi T.Campbell E.E.B.Lee S.W.Jung S.
Ewha Authors
이상욱신동훈
SCOPUS Author ID
이상욱scopus; 신동훈scopus
Issue Date
2023
Journal Title
Advanced Electronic Materials
ISSN
2199-160XJCR Link
Citation
Advanced Electronic Materials vol. 9, no. 6
Keywords
2D semiconductorselectron and hole field emissionFowler-Nordheim tunnelingSchottky-barrier heightvan der Waals vertical heterostructures
Publisher
John Wiley and Sons Inc
Indexed
SCIE; SCOPUS WOS scopus
Document Type
Article
Abstract
Weak interlayer couplings at 2D van der Waals (vdW) interfaces fundamentally distinguish out-of-plane charge flow, the information carrier in vdW-assembled vertical electronic and optical devices, from the in-plane band transport processes. Here, the out-of-plane charge transport behavior in 2D vdW semiconducting transition metal dichalcogenides (SCTMD) is reported. The measurements demonstrate that, in the high electric field regime, especially at low temperatures, either electron or hole carrier Fowler–Nordheim (FN) tunneling becomes the dominant quantum transport process in ultrathin SCTMDs, down to monolayers. For few-layer SCTMDs, sequential layer-by-layer FN tunneling is observed to dominate the charge flow, thus serving as a material characterization probe for addressing the Fermi level positions and the layer numbers of the SCTMD films. Furthermore, it is shown that the physical confinement of the electron or hole carrier wave packets inside the sub-nm thick semiconducting layers reduces the vertical quantum tunneling probability, leading to an enhanced effective mass of tunneling carriers. © 2023 The Authors. Advanced Electronic Materials published by Wiley-VCH GmbH.
DOI
10.1002/aelm.202300051
Appears in Collections:
자연과학대학 > 물리학전공 > Journal papers
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