Seung Goo Lee
Pohang University of Science and Technology · 工学
研究室紹介
Professor Seung Goo Lee's research lab specializes in advanced functional materials and flexible electronics, with a focus on smart surfaces, wearable sensors, and electronic skin (e-skin) technologies. The lab develops stimuli-responsive materials—such as elastomeric smart windows, tunable wettability surfaces, and transparent superhydrophobic coatings—through innovative fabrication techniques like replica molding, surface wrinkling, and layer-by-layer assembly. A central theme is the integration of mechanical tunability, optical control, and multifunctionality (e.g., self-cleaning, antireflection, thermochromism) for next-generation wearable and interactive devices. The lab also pioneers stretchable, multimodal e-skin systems capable of sensing touch, texture, and material properties with human-like sensitivity.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Elastomeric smart windows with switchable optical transparency and wetting properties (see Fig.) are fabricated through the combination of replica molding and surface wrinkling. The resulting smart windows, with a surface topography that is tunable via mechanical strain, exhibit not only significant changes in optical transmittance and wetting properties, but also the additional functions of self-cleaning and antireflection. Detailed facts of importance to specialist readers are published as ”Su
Abstract Rice leaves can directionally shed water droplets along the longitudinal direction of the leaf. Inspired by the hierarchical structures of rice leaf surfaces, synthetic rice leaf‐like wavy surfaces are fabricated that display a tunable anisotropic wettability by using electrostatic layer‐by‐layer assembly on anisotropic microwrinkled substrates. The nanoscale roughness of the rice leaf‐like surfaces is controlled to yield tunable anisotropic wettability and hydrophobic properties that t
Recent advances in nanolithography, miniaturization, and material science, along with developments in wearable electronics, are pushing the frontiers of sensor technology into the large-scale fabrication of highly sensitive, flexible, stretchable, and multimodal detection systems. Various strategies, including surface engineering, have been developed to control the electrical and mechanical characteristics of sensors. In particular, surface wrinkling provides an effective alternative for improvi
This paper describes a simple approach to prepare a transparent superhydrophobic coating and a translucent superamphiphobic coating via spraying silica-fluoropolymer hybrid nanoparticles (SFNs) without any pre- or post-treatment of substrates; these nanoparticles create both microscale and nanoscale roughness, and fluoropolymer acts as a low surface energy binder. We also demonstrate the effects of varying the concentration of the SFN sol on the water and hexadecane repellency and on the transpa
Human skin plays a critical role in a person communicating with his or her environment through diverse activities such as touching or deforming an object. Various electronic skin (E-skin) devices have been developed that show functional or geometrical superiority to human skin. However, research into stretchable E-skin that can simultaneously distinguish materials and textures has not been established yet. Here, the first approach to achieving a stretchable multimodal device is reported, that op
Soft piezoresistive pressure sensors play an underpinning role in enabling a plethora of future Internet of Things (IoT) applications such as human–robot interaction (HRI) technologies, wearable devices, and metaverse ecosystems. Despite significant attempts to enhance the performance of these sensors, existing sensors still fall short of achieving high strain tolerance and linearity simultaneously. Herein, we present a low-cost, facile, and scalable approach to fabricating a highly strain-toler
User-interactive electronic skin (e-skin) with a distinguishable output has enormous potential for human-machine interfaces and healthcare applications. Despite advances in user-interactive e-skins, advances in visual user-interactive therapeutic e-skins remain rare. Here, a user-interactive thermotherapeutic device is reported that is fabricated by combining thermochromic composites and stretchable strain sensors consisting of strain-responsive silver nanowire networks on surface energy-pattern
Electrocatalytic water splitting is a promising approach for the massive production of hydrogen as an environmentally compatible and renewable energy alternative to fossil fuels. The development of an active, stable, low-cost, and bifunctional electrocatalyst , in this regard, is a big challenge to achieve the desired electrocatalytic hydrogen/oxygen production via water splitting. MXene (Ti 3 C 2 T x ) has recently been explored as an excellent candidate for electrocatalytic water splitting. Ho
The evaporation-induced self-alignment of semiconductor nanowires is achieved using wrinkled elastomeric templates. The wrinkled templates, which have a surface topography that can be tuned via changes in the mechanical strain, are used as both a template to align the nanowires and as a stamp to transfer the aligned nanowires to target substrates.
Stretchable pressure sensors are important components of multimodal electronic skin needed for potentializing numerous Internet of Things applications. In particular, to use pressure sensors in various wearable/skin-attachable electronics, both high deformability and strain-independent sensitivity must be realized. However, previously reported stretchable pressure sensors cannot meet these standards because they exhibit limited stretchability and nonuniform sensitivity under deformation. Herein,
Micromodels with simplified porous microfluidic systems are widely used to mimic the underground oil‐reservoir environment for multiphase flow studies, enhanced oil recovery, and reservoir network mapping. However, previous micromodels cannot replicate the length scales and geochemistry of carbonate because of their material limitations. Here a simple method is introduced to create calcium carbonate (CaCO 3 ) micromodels composed of in situ grown CaCO 3 . CaCO 3 nanoparticles/polymer composite m
Abstract This paper proposes a novel intercalation approach to address the challenges of surface triboelectric charge dissipation and self‐restacking of MXene layers in triboelectric nanogenerators (TENGs). The proposed strategy significantly improves the performance of TENGs, as it prevents the loss of surface charges and enhances the structural stability of MXene. First, the modified silica nanospheres (MSNs) of specific dimensions are synthesized, followed by their intercalation between MXene