황성우 교수
Sung Woo Hwang
서울대학교 · 공학
연구실 소개
황성우 교수의 연구실은 나노소재 및 저차원 물질을 기반으로 한 고성능 전자 및 광전소자에 대한 핵심 기초 연구를 수행하고 있습니다. 특히 열전소재의 효율 향상, 이중원자층 반도체의 표면 특성 제어, 그래핀 기반 광검출기 개발 등에서 독창적인 기여를 하고 있으며, 나노결정핵을 이용한 단일결정 반도체 나노와이어 합성 기술도 확립했습니다. 이들의 연구는 에너지 효율성 향상과 차세대 반도체 소자 실현에 기여하고 있습니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Organic transistors with elastic conductors and dielectrics can be stretched up to 250% strain while maintaining the transistor characteristics. Strain-independent properties can be achieved after an initial “programming” cycle that causes the formation of microcracks in the semiconductor. The change in mobility with strain follows the same trend in different stretching directions. Liberating electronic devices from the confines of traditional rigid substrates can improve mechanical robustness a
Rapid progress in two-dimensional (2D) crystalline materials has recently enabled a range of device possibilities. These possibilities may be further expanded through the development of advanced 2D glass materials. Zachariasen carbon monolayer, a novel amorphous 2D carbon allotrope, was successfully synthesized on germanium surface. The one-atom-thick continuous amorphous layer, in which the in-plane carbon network was fully <i>sp</i><sup>2</sup>-hybridized, was achieved at high temperatures (>9
Two-dimensional (2D) transition metal dichalcogenides (TMDs) have received great attentions because of diverse quantum electronic states such as topological insulating (TI), Weyl semimetallic (WSM) and superconducting states. Recently, the superconducting states emerged in pressurized semimetallic TMDs such as MoTe2 and WTe2 have become one of the central issues due to their predicted WSM states. However, the difficulty in synthetic control of chalcogen vacancies and the ambiguous magneto transp
We herein report the significantly improved thermoelectric performance of n-type Bi<sub>2</sub>Te<sub>2.7</sub>Se<sub>0.3</sub> polycrystalline bulks through band structure engineering achieved by Au-doping.
Vertically aligned ZnO nanorod arrays were directly grown on flexible and transparent oxidized bi-layer graphene electrodes by seedless electrochemical deposition. Oxidized defects on the graphene surface induce epitaxial growth of highly dense single crystal ZnO nanorods. The diameter, length as well as morphology of the nanorods can be effectively controlled by adjusting reaction conditions.
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