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Self-aligned top-gate metal-oxide thin-film transistors using a solution-processed polymer gate dielectric
- Choi, Seungbeom;
- Song, Seungho;
- Kim, Taegyu;
- Shin, Jae Cheol;
- Jo, Jeong-Wan;
- ... Park, Sung Kyu;
- 외 1명
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9SCOPUS
9초록
For high-speed and large-area active-matrix displays, metal-oxide thin-film transistors (TFTs) with high field-effect mobility, stability, and good uniformity are essential. Moreover, reducing the RC delay is also important to achieve high-speed operation, which is induced by the parasitic capacitance formed between the source/drain (S/D) and the gate electrodes. From this perspective, self-aligned top-gate oxide TFTs can provide advantages such as a low parasitic capacitance for high-speed displays due to minimized overlap between the S/D and the gate electrodes. Here, we demonstrate self-aligned top-gate oxide TFTs using a solution-processed indium-gallium-zinc-oxide (IGZO) channel and crosslinked poly(4-vinylphenol) (PVP) gate dielectric layers. By applying a selective Ar plasma treatment on the IGZO channel, low-resistance IGZO regions could be formed, having a sheet resistance value of ~20.6 kΩ/sq., which can act as the homojunction S/D contacts in the top-gate IGZO TFTs. The fabricated self-aligned top-gate IGZO TFTs exhibited a field-effect mobility of 3.93 cm2 /Vs and on/off ratio of ~106, which are comparable to those fabricated using a bottom-gate structure. Furthermore, we also demonstrated self-aligned top-gate TFTs using electrospun indium-gallium-oxide (IGO) nanowires (NWs) as a channel layer. The IGO NW TFTs exhibited a field-effect mobility of 0.03 cm2 /Vs and an on/off ratio of >105 . The results demonstrate that the Ar plasma treatment for S/D contact formation and the solution-processed PVP gate dielectric can be implemented in realizing self-aligned top-gate oxide TFTs. © 2020 by the authors. Licensee MDPI, Basel, Switzerland.
키워드
- 제목
- Self-aligned top-gate metal-oxide thin-film transistors using a solution-processed polymer gate dielectric
- 저자
- Choi, Seungbeom; Song, Seungho; Kim, Taegyu; Shin, Jae Cheol; Jo, Jeong-Wan; Park, Sung Kyu; Kim, Yong-Hoon
- 발행일
- 2020-12
- 유형
- Article
- 저널명
- Micromachines
- 권
- 11
- 호
- 12
- 페이지
- 1 ~ 10
- 언어
- ENG
- 출판사
- MDPI AG
- 발행국가
- 스위스
- 분량
- 10 페이지
- ISSN
- E 2072-666X
P 2072-666X