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Pressurizing Field-Effect Transistors of Few-Layer MoS2 in a Diamond Anvil Cell

Authors
Chen, YB (Chen, Yabin)Ke, F (Ke, Feng)Ci, PH (Ci, Penghong)Ko, CH (Ko, Changhyun)Park, T (Park, Taegyun)Saremi, S (Saremi, Sahar)Liu, HL (Liu, Huili)Lee, YB (Lee, Yeonbae)Suh, JK (Suh, Joonki)Martin, LW (Martin, Lane W.)Ager, JW (Ager, Joel W.)Chen, B (Chen, Bin)Wu, JQ (Wu, Junqiao)...More...
Issue Date
Jan-2017
Publisher
AMER CHEMICAL SOC
Citation
NANO LETTERS, v.17, no.1, pp 194 - 199
Pages
6
Journal Title
NANO LETTERS
Volume
17
Number
1
Start Page
194
End Page
199
URI
https://scholarworks.sookmyung.ac.kr/handle/2020.sw.sookmyung/147009
DOI
10.1021/acs.nanolett.6b03785
ISSN
1530-6984
1530-6992
Abstract
Hydrostatic pressure applied using diamond anvil cells (DAC) has been widely explored to modulate physical properties of materials by tuning their lattice degree of freedom. Independently, electrical field is able to tune the electronic degree of freedom of functional materials-via, for example, the field-effect transistor (FET) configuration. Combining these two orthogonal approaches would allow discovery of new physical properties and phases going beyond the known phase space. Such experiments are, however, technically challenging and have not been demonstrated. Herein, we report a feasible strategy to prepare and measure FETs in a DAC by lithographically patterning the nanodevices onto the diamond culet. Multiple-terminal FETs were fabricated in the DAC using few-layer MoS2 and BN as the channel semiconductor and dielectric layer, respectively. It is found that the mobility, conductance, carrier concentration, and contact conductance of MoS2 can all be significantly enhanced with pressure. We expect that the approach could enable unprecedented ways to explore new phases and properties of materials under coupled mechano-electrostatic modulation.
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첨단소재·전자융합공학부 (신소재물리전공)
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