포항공과대학교 · Engineering
Jong-Lam Lee 교수의 연구실은 광전기화학적 CO₂ 변환, 유기 광전소자, 반도체 접합 및 나노구조 촉매의 전자적 특성 제어를 핵심으로 하는 나노에너지 및 나노전자 소재 연구를 수행하고 있습니다. 특히, 실생활 산업가스에서의 CO₂ 전환, 고효율 유기 태양전지의 투명 전극 설계, 그리고 금속-반도체 인터페이스에서의 전자구조 제어를 통해 에너지 전환 및 저장 기술의 혁신을 추구하고 있습니다. 나노구조의 조합과 표면 처리 기법을 기반으로 한 고성능 소재의 합성과 기계적 유연성까지 고려한 통합적 접근이 특징입니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Hybrid materials consisting of semiconductors and cocatalysts have been widely used for photoelectrochemical (PEC) conversion of CO<sub>2</sub> gas to value-added chemicals such as formic acid (HCOOH). To date, however, the rational design of catalytic architecture enabling the reduction of <i>real</i> CO<sub>2</sub> gas to chemical has remained a grand challenge. Here, we report a unique photocathode consisting of CuS-decorated GaN nanowires (NWs) integrated on planar silicon (Si) for the conve
Thermally evaporable BCP/Ag/MoO3 is demonstrated as a transparent cathode for flexible OPVs. The optical transmittance of Ag film is enhanced by refractive index-matching layers. BCP/Ag/MoO3 can fulfill the optimum zero-reflection condition, resulting in high transmittance (75.5%) and low sheet resistance (8.6 ohm/sq). BCP/Ag/MoO3 cathodes could be applicable as general transparent cathodes for flexible organic optoelectronic devices.
The change of the Fermi energy level at the interface of Pd/p-type GaN by surface treatment was investigated using positron annihilation spectroscopy, and the results were used to provide interpretation of the electrical properties of the contact. Changes in the positron parameters at the interface in the aqua regia-treated GaN are more pronounced than that in the HCl-treated one. This provides evidence that the surface treatment with aqua regia prior to Pd metal deposition removes surface oxide
Electrochemical reduction of carbon dioxide (CO2) is a promising method toward carbon recycling. Highly selective bimetallic catalysts have been extensively demonstrated, while efforts to understand the compositional and geometrical effects have been limited. Here, we studied the relationship between the catalytic activity of bimetallic Cu–Sn catalysts with their composition and geometry through the fabrication of three-dimensional hierarchical (3D-h) Cu nanostructure and the solution-based coat
The light out-coupling efficiency of OLEDs is enhanced by the use of a refractive index modulation layer (RIML) with MgO nanofacet structure (see figure) that can be formed without an additional lithographic or patterning processes. Increases in luminance and power efficiency of up to 19% and 34.7%, respectively, are demonstrated. Low out-coupling efficiency is one of the main limitations to highly efficient OLEDs, so overcoming it would allow substantial improvements.
In this study, the role of anions in Au complexes was investigated as a dopant for graphene. Au(OH)3, Au2S, AuBr3, and AuCl3 were used as dopants. The average sheet resistance of the graphene decreased from 950 Ω sq−1 to 820, 600, 530, and 300 Ω sq−1 and the work function increased from 4.3 eV to 4.6, 4.8, 5.0 and 4.9 eV with Au(OH)3, Au2S, AuBr3, and AuCl3 dopants, respectively. However, thermal annealing of graphene increased the sheet resistance and decreased the work function. Furthermore, t
The electrochemical CO<sub>2</sub> reduction in aqueous media is a promising method for both the mitigation of climate changes and the generation of value-added fuels. Although many researchers have demonstrated selective and stable catalysts for electrochemical reduction of pure CO<sub>2</sub> gas, the conversion of industrial CO<sub>2</sub> gas has been limited. Here, we fabricated the copper sulfide catalysts (CuS<sub><i>x</i></sub>), which were spontaneously formed by dipping a Cu foil into
We investigated the relationship between grain boundary (GB) oxidation of Cu-Ag thin-film catalysts and selectivity of the (photo)electrochemical CO<sub>2</sub> reduction reaction (CO<sub>2</sub> RR). The change in the thickness of the Cu thin film accompanies the variation of GB density, and the Ag layer (3 nm) has an island-like morphology on the Cu thin film. Therefore, oxygen from ambient air penetrates into the Cu thin film through the GB of Cu and binds with it because the uncoordinated Cu