Yonsei University · Engineering
Professor Taeyoon Lee's research lab specializes in advanced functional materials and flexible electronics, with a focus on stretchable conductive fibers, wearable sensors, and bioinspired surface engineering. The lab develops next-generation electronic textiles and interconnects by integrating nanomaterials such as silver nanowires and graphene into elastomeric matrices, enabling high conductivity, mechanical robustness, and long-term reliability under deformation. Key research directions include the design of capacitive pressure sensors inspired by natural porous structures, ultrathin graphene diffusion barriers for copper interconnects, and energy-harvesting textiles for sustainable wearable applications.
Figures are computed from collected data and may differ slightly.
Stretchable conductive fibers have received significant attention due to their possibility of being utilized in wearable and foldable electronics. Here, highly stretchable conductive fiber composed of silver nanowires (AgNWs) and silver nanoparticles (AgNPs) embedded in a styrene–butadiene–styrene (SBS) elastomeric matrix is fabricated. An AgNW‐embedded SBS fiber is fabricated by a simple wet spinning method. Then, the AgNPs are formed on both the surface and inner region of the AgNW‐embedded fi
A flexible pressure sensor with high performances is one of the promising candidates for achieving electronic skins (E‐skin) related to various applications such as wearable devices, health monitoring systems, and artificial robot arms. The sensitive response for external mechanical stimulation is fundamentally required to develop the E‐skin which imitates the function of human skin. The performance of capacitive pressure sensors can be improved using morphologies and structures occurring in nat
Biological creatures with unique surface wettability have long served as a source of inspiration for scientists and engineers. More specifically, materials exhibiting extreme wetting properties, such as superhydrophilic and superhydrophobic surfaces, have attracted considerable attention because of their potential use in various applications, such as self-cleaning fabrics, anti-fog windows, anti-corrosive coatings, drag-reduction systems, and efficient water transportation. In particular, the en
The evolution of copper-based interconnects requires the realization of an ultrathin diffusion barrier layer between the Cu interconnect and insulating layers. The present work reports the use of atomically thin layer graphene as a diffusion barrier to Cu metallization. The diffusion barrier performance is investigated by varying the grain size and thickness of the graphene layer; single-layer graphene of average grain size 2 ± 1 μm (denoted small-grain SLG), single-layer graphene of average gra
Textile-based electronic components have gained interest in the fields of science and technology. Recent developments in nanotechnology have enabled the integration of electronic components into textiles while retaining desirable characteristics such as flexibility, strength, and conductivity. Various materials were investigated in detail to obtain current conductive textile technology, and the integration of electronic components into these textiles shows great promise for common everyday appli
Abstract Stretchable interconnects with invariable conductivity and complete elasticity, which return to their original shape without morphological hysteresis, are attractive for the development of stretchable electronics. In this study, a polydimethylsiloxane‐coated multifilament polyurethane‐based helical conductive fiber is developed. The stretchable helical fibers exhibit remarkable electrical performance under stretching, negligible electrical and mechanical hysteresis, and high electrical
The elastic constants ${c}_{11}$ and ${c}_{44}$ of single-crystal NaCl-structure $\ensuremath{\delta}\text{\ensuremath{-}}\mathrm{Ti}{\mathrm{N}}_{x}(001)$ layers, with $x$ ranging from 0.67 to 1.0, were determined using sound velocity measurements. Picosecond ultrasonic optical pump/probe techniques were employed to generate and detect longitudinal sound waves and surface acoustic waves (SAW) in order to obtain ${c}_{11}(x)$ and ${c}_{44}(x)$, respectively. SAW generation was achieved by deposi
A switchable water-adhesive, super-hydrophobic nanowire surface is developed for the formation of functional stem cell spheroids. The sizes of hADSC spheroids are readily controllable on the surface. Our surface increases cell-cell and cell-matrix interaction, which improves viability and paracrine secretion of the spheroids. Accordingly, the hADSC spheroids produced on the surface exhibit significantly enhanced angiogenic efficacy.
Abstract There is currently a high demand for smart wearable and flexible electronics for high‐sensitivity strain sensors with good transparency, stretchability, and water‐repellent characteristics. The demand for such devices, especially those that demonstrate superhydrophobicity, is constantly increasing because of their prospective wearable applications. A stretchable, superhydrophobic, and transparent polydimethylsiloxane/carbon nanotube strain sensor is fabricated by directly spraying a car
A gas-driven ultrafast adhesion switching of water droplets on palladium-coated Si nanowire arrays is demonstrated. By regulating the gas-ambient between the atmosphere and H2 , the super-hydrophobic adhesion is repeatedly switched between water-repellent and water-adhesive. The capability of modulating the super-hydrophobic adhesion on a super-hydrophobic surface with a non-contact mode could be applicable to novel functional lab-on-a-chip platforms.
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