Soyeon Kim
Seoul National University · Engineering
About the Lab
Professor Soyeon Kim's research lab specializes in the design and development of smart, stimuli-responsive hydrogels and polymer-based materials for biomedical and energy applications. Key research directions include engineering thermoresponsive and pH-sensitive hydrogels for tissue engineering and drug delivery, creating synthetic extracellular matrices with tunable mechanical and biochemical properties, and exploring electrically responsive interpenetrating polymer networks for controlled release and actuation. The lab also investigates functional materials for indoor photovoltaic energy harvesting, particularly for powering low-power IoT devices. These interdisciplinary efforts integrate polymer chemistry, biomaterials, and materials engineering to address challenges in regenerative medicine and sustainable energy.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Hydrogels composed of N-isopropylacrylamide (NIPAAm) and acrylic acid (AAc) were prepared by redox polymerization with peptide cross-linkers to create an artificial extracellular matrix (ECM) amenable for testing hypotheses regarding cell proliferation and migration in three dimensions. Peptide degradable cross-linkers were synthesized by the acrylation of the amine groups of glutamine and lysine residues within peptide sequences potentially cleavable by matrix metalloproteinases synthesized by
Thermo- and pH-sensitive polymers were prepared by graft polymerization or blending of chitosan and poly(N-isopropylacrylamide) (PNIPAAm). The graft copolymer and blend were characterized by Fourier transform-infrared, thermogravimetric analysis, X-ray diffraction measurements, and solubility test. The maximum grafting (%) of chitosan-g-(N-isopropylacrylamide) (NIPAAm) was obtained at the 0.5 M NIPAAm monomer concentration, 2 × 10−3 M of ceric ammonium nitrate initiator and 2 h of reaction time
Interpenetrating polymer networks (IPNs) composed of poly(vinyl alcohol) (PVA) and poly(acrylic acid) (PAAc) exhibited electrical-sensitive behavior. PAAc as an initial network was prepared inside a PVA solution using UV irradiation; then, PVA networks as a secondary network were formed by a repetitive freeze–thawing process. Their mechanical properties were influenced by the swelling ratio, crosslinking by UV radiation and a freeze–thawing process, and intermolecular force by hydrogen bonding.
The electrically modulated properties of interpenetrating polymer networks (IPN) composed of poly(vinyl alcohol) (PVA) and poly(acrylic acid) (PAAc) under electric field were investigated for drug delivery systems. PVA/PAAc IPNs with various compositions were synthesized by a sequential method, that is, ultraviolet polymerization of AAc in the mixture of PVA and aqueous AAc monomer solution, followed by a freeze-thawing process to prepare elastic hydrogels. The amount of loaded drug significantl
Thermoresponsive and injectable semi-interpenetrating polymer networks (sIPNs) containing a biospecific cell-adhesive signal and proteolytically degradable domains were developed as a synthetic equivalent of the extracellular matrix (ECM). The sIPNs synthesized define a modular hydrogel ECM where different properties of the matrix can be manipulated independently, thus creating a system where parametric analysis of the effect of hydrogel properties on cell proliferation and differentiation is po
Soft actuators have recently been widely studied due to their significant advantages including light weight, continuous deformability, high environment adaptability, and safe human-robot interactions. In this study, we designed electrically responsive poly(sodium 4-vinylbenzenesulfonate/2-hydroxyethylmethacrylate/acrylamide) (P(VBS/HEMA/AAm)) and poly(sodium 4-vinylbenzenesulfonate/2-hydroxyethyl methacrylate/acrylic acid) (P(VBS/HEMA/AAc)) hydrogels. A series of P(VBS/HEMA/AAm) and P(VBS/HEMA/A
Abstract Poly(propylene) (PP) membrane grafted with poly( N ‐isopropylacrylamide) (PNIPAAm), which is known to have a lower critical solution temperature (LCST) at around 32°C, was prepared by the plasma‐induced graft polymerization technique. Graft polymerization of PNIPAAm onto a PP membrane was confirmed by microscopic attenuated total reflection/Fourier transform IR spectroscopy. The grafting yield of PNIPAAm increased with the concentration of N ‐isopropylacrylamide monomer and the reaction
Research Areas
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