Seoul National University · 材料科学
Professor Yoon Ho Lee's research lab specializes in the design, fabrication, and application of advanced functional nanomaterials for next-generation optoelectronic and energy conversion devices. The lab focuses on developing flexible and high-performance sensors, thin-film solid oxide fuel cells, perovskite-based photodetectors, and chiral plasmonic nanostructures through innovative nanofabrication techniques such as sputtering, block-copolymer lithography, and mechanical force-induced patterning. Key research directions include enhancing device efficiency via nanostructure engineering, band structure modulation, and scalable thin-film processing for real-world applications in health monitoring and renewable energy.
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This review describes the development status of organic sensors for health-monitoring systems and the strategies to enhance their performance.
Thin film solid oxide fuel cells (TF-SOFCs) are attracting attention due to their ability to operate at comparatively lower temperatures (400-650 °C) that are unattainable for conventional anode-supported SOFCs (650-800 °C). However, limited cathode performance and cell scalability remain persistent issues. Here, we report a new approach of fabricating yttria-stabilized zirconia (YSZ)-based TF-SOFCs via a scalable magnetron sputtering process. Notable is the development and deposition of a porou
Control over the morphology and crystallinity of metal halide perovskite materials is of key importance to enable high-performance optoelectronics. Here, a simple yet effective template-free self-assembly synthesis of perovskite granular wires with ultrahigh photodetectivity (3.17 × 10<sup>15</sup> Jones) is reported. The 1D self-assembly of perovskite grains is driven by differences in the surface interaction energies of the granular facets. The superb photodetecting performance originates from
Chiral metamaterials have received significant attention due to their strong chiroptical interactions with electromagnetic waves of incident light. However, the fabrication of large-area, hierarchically manufactured chiral plasmonic structures with high dissymmetry factors (g-factors) over a wide spectral range remains the key barrier to practical applications. Here we report a facile yet efficient method to fabricate hierarchical chiral nanostructures over a large area (>11.7 × 11.7 cm<sup>2</s
Reduction malarplasty for making an oval facial shape is popular in Asia. Surgeons generally prefer the intraoral approach to minimize the surgical incision and reduce the operation time between 2 approaches--intraoral and bicoronal approaches. However, fixation can be incomplete because of the narrow operation field, which can result in zygomatic nonunion on the fixation site through the action of the masseter muscle. In the past 5 years, 6 zygomatic nonunion patients who received reduction mal
Multiple-patterned nanostructures prepared by synergistically combining block-copolymer lithography with nano-imprinting lithography have been used as back reflectors for enhancing light absorption in organic optoelectronic devices. The multiple-patterned electrodes have significantly boosted the performance of organic photovoltaics and photo-transistors, owed to the highly effective light scattering and plasmonic effects, extending the range of their practical applications.
Abstract Hybrid materials in optoelectronic devices can provide synergistic effects that complementarily enhance the properties of each component. Here, flexible high-performance graphene hybrid photodetectors (PDs) are developed by introducing gold nanostars (GNSs) and perovskites for strong light trapping with hot electron transfer and efficient light harvesting characteristics, respectively. While pristine graphene PDs do not exhibit discernible photodetection properties due to the very low p
Two-dimensional perovskite crystals have attracted significant attention for their diverse optoelectronic characteristics, owing to their superior semiconducting properties. However, the majority of studies to date have focused on single crystals, which pose challenges for integration into device arrays due to their incompatibility with selective growth or conventional lithography techniques. Here, a facile one-step solution process for synthesizing 2D perovskite crystal arrays is proposed throu
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