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High-Performance Hexagonal Tellurium Thin-Film Transistor Using Tellurium Oxide as a Crystallization Retarder

Authors
김태규최철희김세은Kim, Jeong-KyuJang, JaemanChoi, SeungChanNoh, JiyongPark, Kwon-ShikKim, JeomJaeYoon, SooYoungJeong, Jae Kyeong
Issue Date
Feb-2023
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Inorganic p-type semiconductor; hexagonal tellurium; back-end-of-line-compatible transistor; thin-film transistor
Citation
IEEE ELECTRON DEVICE LETTERS, v.44, no.2, pp 269 - 272
Pages
4
Indexed
SCIE
SCOPUS
Journal Title
IEEE ELECTRON DEVICE LETTERS
Volume
44
Number
2
Start Page
269
End Page
272
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/185757
DOI
10.1109/LED.2022.3230705
ISSN
0741-3106
1558-0563
Abstract
This study investigates the effect of oxygen plasma (PO) on the crystalline structure of tellurium (Te) thin films during reactive sputtering. Introduction of oxygen radicals suppresses uncontrolled rapid growth of hexagonal Te crystals, amorphizing the deposited Te thin film. This amorphous phase changes to the hexagonal phase upon alumina encapsulation. A 4-nm-thick Te transistor with a PO of 7% exhibits outstanding device performances, with a field-effect mobility up to 40.8 cm2V-1s-1 and an on/off current modulation ratio up to 1.1 × 106. These behaviors originate from alleviated random polycrystallinity in the corresponding thin film. However, when PO increases above 7%, amorphization progresses further, and remnant oxygen ions hamper the growth of the hexagonal phase in Te thin film. Consequently, hole transport is degraded. This study suggests tellurium oxide as a crystallization retarder for high-performance p-channel Te transistors.
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COLLEGE OF ENGINEERING (SCHOOL OF ELECTRONIC ENGINEERING)
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