최인석 교수
Choi, In-Suk
서울대학교 Department of Materials Science and Engineering · 공학
연구실 소개
최인석 교수의 연구실은 유연성과 내구성을 갖춘 나노구조 광전극 소재 개발에 초점을 맞추고 있으며, 특히 헤마티트 기반 광분해 수소 생산 및 플라스틱 기반 태양전지에서의 응용을 중심으로 연구를 진행하고 있습니다. 산화물 반도체의 내부 결함과 도핑 효과의 상호작용을 정량적으로 분석함으로써 고효율 광전기화학 반응을 실현하고자 하며, 나노섬유 기반 복합재료를 활용한 신소재 전기화학 소자 또한 개발하고 있습니다. 특히 유연한 전자소자에서의 기계적 피로와 전기적 안정성의 관계를 규명하여 실용화 가능한 장기 신뢰성 기술을 확보하고자 합니다.
연구 현황
연구 성과 추이
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주요 논문
15PSS are well preserved during the mechanical deformation.
The enhancement of the electrical conductivity by doping is important in hematite (α-Fe(2)O(3)) photoanodes for efficient solar water oxidation. However, in spite of many successful demonstrations using extrinsic dopants, such as Sn, Ti, and Si, the achieved photocurrent is still lower than the practical requirement. There is still lack of our understanding of how intrinsic oxygen defects can change the photocurrent and interact with the extrinsic dopants. In this study, we systematically invest
In this study, we developed a novel nanostructured polymer nanofiber/TiO2 nanoparticle composite photoelectrode with high bendability by a spray-assisted electrospinning method. The composite film is used as the photoelectrode in plastic dye-sensitized solar cells (DSCs). The polymer/TiO2 composite photoelectrode has a structure similar to that of a fiber-reinforced composite; the matrix of the composite photoelectrode contains TiO2 nanoparticles, and PVDF nanofibers are embedded in this matrix.
As the technology of flexible electronics has remarkably advanced, the long-term reliability of flexible devices has attracted much attention, as it is an important factor for such devices in reaching real commercial viability. To guarantee the bending fatigue lifetime, the exact evaluation of bending strain and the change in electrical resistance is required. In this study, we investigated the bending strains of Cu thin films on flexible polyimide substrates with different thicknesses using mon
Hematite (α-Fe2O3) has been attracting attention for photoelectrochemical water oxidation due to its visible light photon absorption capacity and high chemical stability, but the short-diffusion length of holes and the large overpotential are still challenging to overcome. Here, in an effort to address these challenges, we develop a hierarchically nanostructured photoanode composed of iron-oxides; Ti-doped hematite nanorods are decorated with an undoped hematite underlayer and β-FeOOH nano-branc
Organic neuromorphic computing/sensing platforms are a promising concept for local monitoring and processing of biological signals in real time. Neuromorphic devices and sensors with low conductance for low power consumption and high conductance for low-impedance sensing are desired. However, it has been a struggle to find materials and fabrication methods that satisfy both of these properties simultaneously in a single substrate. Here, nanofiber channels with a self-formed ion-blocking layer ar
Passivated and unpassivated Al single-crystal lines with (110), (133), and (111) planes parallel to the substrate have been fabricated and electromigration tests have been performed to study transgranular failure mechanisms. Both erosion voids and slitlike voids with {111} facets were observed in single-crystal lines. The slitlike voids lie along the in-plane direction, which leads to minimum-surface-area voids among the crystallographically possible directions for the {111}-faceted voids. Voids
Abstract It remains a fundamental challenge in the development of stretchable electronics to understand how mechanical strain changes the electrical properties of materials. Although the piezoresistive behavior of poly(3,4‐ethylene‐ dioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) has been observed, its intrinsic origin is not yet fully understood because there are many extrinsic contributing factors and an experimental platform with which to assess such behavior has not been established. Here
Cu acetate/PAN nanofibers were transformed into porous C nanofibers with doped N and Cu particles,<italic>via</italic>O<sub>2</sub>partial pressure-controlled calcination. N atoms next to Cu trigger the CO<sub>2</sub>RR by increasing the amount of CO* on the Cu, lowering the energy needed for CO dimerization.
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