Park, Juhyuk
Seoul National University · 工学
研究室紹介
Professor Park, Juhyuk's research lab specializes in the development of advanced materials and technologies for biological and physical systems, with a focus on hydrodynamic metamaterials, bio-integrated microdevices, and super-resolution tissue imaging. The lab pioneers innovative approaches in transformation optics for fluidic manipulation, such as hydrodynamic cloaking in viscous flows, while also advancing biomedical diagnostics through dermoscopy and micro-LEDs for optoelectronic applications. A central theme is the integration of physical principles with biological systems, exemplified by the creation of antigen-preserving tissue expansion platforms (eMAP) for nanoscale proteomic imaging. The lab bridges materials science, fluid dynamics, and life sciences to enable multiscale, high-precision analysis of complex biological architectures.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Metamaterials engineered based on transformation optics have facilitated inaccessible manipulation of various physical phenomena. However, such metamaterials have not been introduced for flowing viscous matter. Here we propose a hydrodynamic metamaterial cloak that can conceal an object in two-dimensional creeping flow by guiding viscous forces. Coordinate transformation of fluidic space is implemented to calculate a tensoric viscosity based on a form invariance of Navier-Stokes equations. The h
Skin scraping with dermoscopy is implicated as the diagnostic method of choice for scabies at the present time. Dermoscopy is especially useful in diagnosis of incognito scabies. In addition, the presence of visible burrows could be a reliable positive marker of scabies in the absence of dermoscopy or microscopy data.
Abstract The passivation effects of sulfur treatment and Al 2 O 3 passivation for AlGaInP/GaInP red micro-light-emitting-diodes (LEDs) were investigated in terms of the external quantum efficiency (EQE) and the current density showing the peak EQE ( J EQE, peak ). We systematically compared the electrical and optical characteristics of the micro-LEDs with and without passivation according to various sizes. Interestingly, our investigation indicated that simple electrical characteristics such as
Controlling the direction of fluid flow is challenging, since the flow direction follows the applied external forces. To this end, lately $h\phantom{\rule{0}{0ex}}y\phantom{\rule{0}{0ex}}d\phantom{\rule{0}{0ex}}r\phantom{\rule{0}{0ex}}o\phantom{\rule{0}{0ex}}d\phantom{\rule{0}{0ex}}y\phantom{\rule{0}{0ex}}n\phantom{\rule{0}{0ex}}a\phantom{\rule{0}{0ex}}m\phantom{\rule{0}{0ex}}i\phantom{\rule{0}{0ex}}c$ $m\phantom{\rule{0}{0ex}}e\phantom{\rule{0}{0ex}}t\phantom{\rule{0}{0ex}}a\phantom{\rule{0}{0e
Understanding cellular architectures and their connectivity is essential for interrogating system function and dysfunction. However, we lack technologies for mapping the multiscale details of individual cells and their connectivity in the human organ-scale system. We developed a platform that simultaneously extracts spatial, molecular, morphological, and connectivity information of individual cells from the same human brain. The platform includes three core elements: a vibrating microtome for ul
Synthetic tissue-hydrogel methods have enabled superresolution investigation of biological systems using diffraction-limited microscopy. However, chemical modification by fixatives can cause loss of antigenicity, limiting molecular interrogation of the tissue gel. Here, we present epitope-preserving magnified analysis of proteome (eMAP) that uses purely physical tissue-gel hybridization to minimize the loss of antigenicity while allowing permanent anchoring of biomolecules. We achieved success r
Abstract Smart polymeric composites have been engineered as advanced materials with superior physical properties while maintaining relatively low manufacturing cost, lightweight, and stimuli-responsive properties. We here report a unique smart composite with shape recoverability and celadon-like color. The samples were prepared by injection molding of in situ polymerized composite pellets, which consist of shape memory polyurethane (SMPU) and hybrid ceramic micro-particulates of silicon carbide
Abstract Efficient and satisfactory noise damping is essential for achieving a high quality of life. Therefore, the way of sound absorption is a very important technical issue in various industries such as automobiles, acoustics, naval architecture, and so on. In this paper, a unique sound absorber which could manipulate its geometry and resulting performance in an active fashion is demonstrated. The strategy is to adopt the reversible shape‐changing ability of a shape memory polymer foam. The m
This research proposes a unique antireflection (AR) strategy which is to infuse shape recovery ability into nanopattern arrays for obtaining high sustainability of the AR nanostructures.