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Enhanced channel modulation in Aluminum- and Hydrogen-Doped Zinc-Oxide-Based transistors by complementary Dual-Gate operation
[Display omitted] •High-performance ZnO transistors were achieved by dual-gate and the doping effect.•Atomic-layer-deposited ZnO transistors exhibit typical n-type characteristics.•The deposition of the top Al2O3 layer leads to the conductive changes.•Al2O3-induced hydrogen and aluminum doping effec...
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Published in: | Applied surface science 2022-05, Vol.585, p.152662, Article 152662 |
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Main Authors: | , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | [Display omitted]
•High-performance ZnO transistors were achieved by dual-gate and the doping effect.•Atomic-layer-deposited ZnO transistors exhibit typical n-type characteristics.•The deposition of the top Al2O3 layer leads to the conductive changes.•Al2O3-induced hydrogen and aluminum doping effects attributed to the changes.•Complementary dual-gate operation efficiently filled the localized trap states in the ZnO films.
This study elucidates the enhanced channel modulation by the dual-gate operation of the ultrathin ZnO-based field-effect transistors (FETs). Bottom-gate atomic-layer-deposited zinc oxide (ZnO) transistors exhibit typical n-type enhancement-mode transfer characteristics. However, when equipped with the top Al2O3 layer, the FETs exhibit conductive transfer characteristics. These electrical property changes are attributed to Al2O3-induced hydrogen and aluminum doping effects, which increase carrier concentration. Although Al2O3-induced doping increased field-effect mobility by a factor of 2, a high off current and degraded transconductance swing were observed in FETs. However, operation in dual-gate mode after the deposition of the top-gate electrode resolved these degradations and led to achieving high-performance ZnO FETs: the off current significantly decreased, and noteworthy, field-effect mobility increased by a factor of 5. Temperature-dependent charge transport analysis revealed that the complementary dual-gate operation efficiently filled the localized trap states in the ZnO films, resulting in band-like transport. Thus, it is deduced that the complementary dual-gate operation enhanced channel modulation in the Al2O3-induced hydrogen- and aluminum-doped ZnO channel, resulting in high-performance ZnO FETs. |
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ISSN: | 0169-4332 1873-5584 |
DOI: | 10.1016/j.apsusc.2022.152662 |