Bongjun Yeom
Hanyang University · Materials Science
About the Lab
Professor Bongjun Yeom's research lab specializes in the design and fabrication of advanced functional nanomaterials with applications in energy, electronics, and biomedicine. Key research directions include the development of 3D chiral plasmonic nanostructures for enhanced chiroptical responses, elastomeric conductive materials for wearable electronics, and ultrathin, high-performance energy-harvesting devices using layer-by-layer assembly. The lab also focuses on innovative separator materials for lithium-metal batteries and bio-inspired nanostructured thin films with controlled morphology and functionality.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Chirality of plasmonic films can be strongly enhanced by three-dimensional (3D) out-of-plane geometries. The complexity of lithographic methods currently used to produce such structures and other methods utilizing chiral templates impose limitations on spectral windows of chiroptical effects, the size of substrates, and hence, further research on chiral plasmonics. Here we demonstrate 3D chiral plasmonic nanostructures (CPNs) with high optical activity in the visible spectral range based on init
Abstract For the development of wearable electronics, the replacement of rigid, metallic components with fully elastomeric materials is crucial. However, current elastomeric electrodes suffer from low electrical conductivity and poor electrical stability. Herein, a metal‐like conductive elastomer with exceptional electrical performance and stability is presented, which is used to fabricate fully elastomeric electronics. The key feature of this material is its wrinkled structure, which is induced
Energy-harvesting devices such as piezoelectric and triboelectric nanogenerators (NGs), which can convert mechanical energy into electricity, are under development to be combined with various electronics. In particular, the rapid progress in microscale electronics such as nanorobotics or microelectromechanical devices has strongly increased the demand for ultrathin film devices. Therefore, the thickness, highly uniform structure, chemical composition, interfacial adhesion/interactions, and elect
Abstract The growth of lithium (Li) dendrites reduces the lifespan of Li‐metal batteries and causes safety issues. Herein, hierarchically porous aramid nanofiber separators capable of effectively suppressing the Li dendrite growth while maintaining highly stable cycle performances at high charge/discharge rates are reported. A two‐step solvent exchange process combined with reprotonation‐mediated self‐assembly is utilized to control the bimodal porous structure of the separators. In particular,
Artificial chiral materials at the nano- and microscales have unique optical properties, known as optical activities, that correspond to preferential interactions with circularly polarized light. Unlike the chiroptical responses of biomaterials, nano- and microscale materials with artificial chirality can present intense and tunable chiroptical responses in a broad range of frequencies from the ultraviolet to terahertz regimes. These particular properties of artificial chiral materials have been
Nanostructured CaCO 3 (NCC) thin films with honeycomb-shaped nanopores were obtained at the surface of urease-embedded multilayers prepared by the layer-by-layer deposition. Amorphous CaCO 3 (ACC) droplets were initially nucleated from the multilayer surface, because of the enzymatic reaction of ureases to produce CO 2, particularly when the saturation index of CaCO 3 in the crystal-forming solution is above 1.89 based on the calcite saturation. Once ACC droplets successfully covered the entire
Abstract Chiral metamaterials comprise a promising platform for advanced optoelectronic and biomedical applications. However, conventional fabrication via lithography is limited by its complexity and high cost. Herein, the lithography‐free fabrication of terahertz chiral metamaterials and their enhancement for sensing the chirality of biocrystal enantiomers is presented. Chiral Au microstrip patterns (CHAMs) in a saw‐tooth shape are fabricated by combining two‐step buckling processes and glancin
Abstract Nano‐ and microsized chiral materials are receiving significant attention because of their unique characteristics, which include chiroptical activities and enantioselective interactions with living materials. However, the realization of chiral morphologies in such small‐scale materials has been an issue because of the complicated fabrication methods and limited material selection. In this study, a facile and reproducible method is developed for fabricating 3D chiral microwrinkles with t
Research on the chiral magneto-optical properties of inorganic nanomaterials has enabled novel applications in advanced optical and electronic devices. However, the corresponding chiral magneto-optical responses have only been studied under strong magnetic fields of ≥1 T, which limits the wider application of these novel materials. In this paper, we report on the enhanced chiral magneto-optical activity of supra-assembled Fe<sub>3</sub>O<sub>4</sub> magnetite nanoparticles in the visible range a
Chiral-structured nanoscale materials exhibit chiroptical properties with preferential absorptions of circularly polarized light. The distinctive optical responses of chiral materials have great potential for advanced optical and biomedical applications. However, the fabrication of three-dimensional structures with mirrored nanoscale geometry is still challenging. This study introduces chiral plasmonic nanopatterns in wavy shapes based on the unidirectional alignment of block copolymer thin film
Research Areas
Dive deeper into Bongjun Yeom's research on Nubint
Open this lab's papers in the app to read with AI, summarize, and cite in your writing.