Sung Min Kim
Korea Advanced Institute of Science and Technology · 工学
研究室紹介
Professor Sung Min Kim's research lab specializes in advanced functional materials and devices for next-generation electronics, energy, and biomedical applications. The lab focuses on developing 2D heterostructures, nanomaterials, and hybrid systems for high-performance sensors, energy conversion, and flexible or transparent electronics. Key research directions include transparent and ultrathin gas sensors based on 2D electron gas, bifunctional electrocatalysts for water splitting, and 3D tissue engineering using cell sheet technology. The lab also explores novel imaging and display technologies for extended reality (XR) systems, integrating smart materials and nanofabrication techniques.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Abstract Remarkable technological developments for efficient image recognition (i.e., image acquisition and image data processing) have been reported in the past decade. Such advances in imaging and image processing technologies have driven significant progress in mobile electronics and machine vision applications. In particular, for image acquisition devices, two types of natural eyes (i.e., chambered and compound eyes) have inspired the development of novel multifunctional imaging devices with
Two‐dimensional metal dichalcogenides have been evidenced as potential electrocatalysts for hydrogen evolution reaction (HER); however, their application is limited by a poor oxygen evolution reaction (OER) activity due to insufficient number/types of multi‐integrated active sites. In this study, we report a novel bifunctional catalyst developed by simultaneous engineering of single nickel atoms (Ni SA ) and nickel phosphate clusters (Ni Pi ) to synergistically trigger surface‐functionalized MoS
We present a novel approach for assembling 3D tissue by layer-by-layer stacking of cell sheets formed on aligned nanofiber mesh. A rigid frame was used to repeatedly collect aligned electrospun PCL (polycaprolactone) nanofiber to form a mesh structure with average distance between fibers 6.4 µm. When human umbilical vein endothelial cells (HUVECs), human foreskin dermal fibroblasts, and skeletal muscle cells (C2C12) were cultured on the nanofiber mesh, they formed confluent monolayers and could
Lewis acid-catalyzed ring expansion reaction of chiral aziridine-2-carboxylate proceeds regio- and stereospecifically to yield enantiomerically pure 4-functionalized imidazolidin-2-ones in high yields.
Activities in the digital economy driven by information technology have rapidly increased in scope and speed in the aftermath of COVID-19. Meanwhile, social isolation accelerated by quarantine measures has increased concerns about individuals' mental health. However, little is known about the specific consequences of online interactions, especially when applied in online fan community-based relationships. Therefore, we examined the impact of loneliness in the context of COVID-19 on online intera
We investigated the influence of glycerol doping to poly(3,4-ethylenedioxy-thiophene):poly(styrene sulfonate) (PEDOT:PSS) on the power conversion efficiency (PCE) of the bulk heterojunction photovoltaic cells using poly(3-hexylthiophene) and phenyl-C61-butyric acid methyl ester. In particular, a correlation between PCE and changes in the conductivity, surface morphology, contact properties, and work function of glycerol-doped PEDOT:PSS(G-PEDOT:PSS) was investigated as a function of an added glyc
The prediction of hygroscopic swelling of flexible polymer substrates is crucial in various fields from smart structures to flexible electronics. In this study, the prediction method for time-dependent hygroscopic deformation is presented by employing the finite element method (FEM). In order to precisely consider the strain gradients inside the substrate, moisture distribution depending on time is quantitatively investigated by a moisture absorption analysis and sequentially combined with a mec
Methods to improve the performance and survivability of state-of-the-art military aircrafts have been widely researched as their missions are complex and diverse. The load-bearing antenna approach takes advantage of a combination of structural and electrical functions. Their integrated, multi-functional smart skin structure is responsible for simultaneously supporting external loads and communicating data in operational conditions. This study presents a conformal load-bearing structure for array
In situ X-ray characterization and DFT calculations reveal that Ni configuration and N-coordination modulate the binding energies of *COOH and *H intermediates, with their difference being key to predicting CO 2 RR activity on Ni single atomic sites.