KAIST · Engineering
Shin-Hyun Kim 교수의 연구실은 마이크로유체학 기반의 정밀한 입자 및 액적 제조 기술을 바탕으로 다중 에멀션, 조절 가능한 표면 특성을 가진 마이크로입자, 그리고 광학적·전기적 기능을 통합한 나노구조체를 개발하고 있습니다. 특히 초미세 두께의 다층 구조를 가진 다중 에멀션 드롭렛을 이용한 마이크로캡슐, 광학적 색소성, 전기적 제어 기능을 갖춘 광학적 Janus 입자 등 응용 가능성이 높은 기능성 마이크로소재를 연구하고 있습니다. 이는 약물 전달, 센서, 스마트 코팅 등 다양한 분야에 기여할 잠재력을 지닙니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Janus-Mikrokügelchen mit einer superhydrophoben und einer hydrophilen Oberflächenhälfte wurden auf photochemischem Weg aus Pickering-Emulsionströpfchen erhalten. An einer Luft-Wasser-Grenzfläche bilden diese Kügelchen eine undurchdringliche und flexible superhydrophobe Barriere. Potenzielle Anwendungen finden sich in größenabhängigen semipermeablen Membranen, schwimmenden Mikromaschinen und superhydrophoben Beschichtungen.
We introduce an emulsification technique that creates monodisperse double-emulsion drops with a core-shell geometry having an ultra-thin wall as a middle layer. We create a biphasic flow in a microfluidic capillary device by forming a sheath flow consisting of a thin layer of a fluid with high affinity to the capillary wall flowing along the inner wall of the capillary, surrounding the innermost fluid. This creates double-emulsion drops, using a single-step emulsification, having a very thin flu
Recent advances in microfluidics have enabled the controlled production of multiple-emulsion drops with onion-like topology. The multiple-emulsion drops possess an intrinsic core-shell geometry, which makes them useful as templates to create microcapsules with a solid membrane. High flexibility in the selection of materials and hierarchical order, achieved by microfluidic technologies, has provided versatility in the membrane properties and microcapsule functions. The microcapsules are now desig
Long-term storage and controlled release of multiple components while avoiding cross-contamination have potentially important applications for pharmaceuticals and cosmetics. Polymersomes are very promising delivery vehicles but cannot be used to encapsulate multiple independent components and release them in a controlled manner. Here, we report a microfluidic approach to produce multiple polymersomes, or polymersomes-in-polymersome by design, enabling encapsulation and programmed release of mult
Electroresponsive photonic Janus balls with optical and electrical anisotropy were prepared using a high-throughput optofluidic device, which produced monodisperse emulsion drops. Self-organized colloidal crystals in emulsion droplets displayed isotropic structural colors in their own respective domains. Electrical anisotropy induced by the presence of carbon black enabled alignment of the balls under the AC electric field.
Monodisperse aqueous emulsion droplets encapsulating colloidal particles were produced in the oil phase, and controlled microwave irradiation of the aqueous drop phase created spherical colloidal crystals by so-called evaporation-induced self-organization of the colloidal particles. Unlike usual colloidal crystals, colloidal crystals in spherical symmetry (or photonic balls) possessed photonic band gaps for the normal incident light independent of the position all over the spherical surface. Whi
Various structural motifs of colloidal crystals are prepared by UV-induced consolidation over fast time scales. Our strategy with a high-throughput optofluidic technique allows unprecedented control over the 3D organization of the colloids, as well as the combination of different materials over multiple length scales, thus expanding the potential for specific applications such as e-papers and light emission modulators.
We use a microfluidic device to prepare monodisperse amphiphilic particles in the shape of a crescent-moon and use these particles to stabilize oil droplets in water. The microfluidic device is comprised of a tapered capillary in a theta (θ) shape that injects two oil phases into water in a single receiving capillary. One oil is a fluorocarbon, while the second is a photocurable monomer, which partially wets the first oil drop; silica colloids in the monomer migrate and adsorb to the interface w
Janus microspheres composed of superhydrophobic and hydrophilic hemispherical surfaces were prepared using photocurable Pickering emulsion droplets. Upon placement at an air–water interface, an impregnable superhydrophobic barrier with high flexibility is formed. These microspheres have great potential in size-dependent semipermeable membranes, floating micromachines, and superhydrophobic coatings.
Double emulsion droplets encapsulating crystalline colloidal arrays (CCAs) with a narrow size distribution were produced using an optofluidic device. The shell phase of the double emulsion was a photocurable resin that was photopolymerized downstream of the fluidic channel within 1 s after drop generation. The present optofluidic synthesis scheme was very effective for fabricating highly monodisperse spherical CCAs that were made structurally stable by in situ photopolymerization of the encapsul
Polymeric onions: A facile method to produce monodisperse multiple emulsion drops of high order is developed using a capillary microfluidic device. Coaxial multiphase flows are stabilized by confinement in microcapillary and emulsified to multiple emulsion drops. The breakup of coaxial interfaces, triggered by the core-drop, facilitates the making of multiple emulsion drops of onionlike configuration. Detailed facts of importance to specialist readers are published as ”Supporting Information”. S
Pixelated inverse opals with red, green, and blue colors were prepared by hybridizing convective assembly of colloidal particles and photolithography techniques. The brilliant structural colors, high mechanical stability, and small feature size of the pixels were simultaneously accomplished, thereby providing color reflectors potentially useful for display devices. Moreover, this hybridized method provides a general means to create multi-colored photonic crystals.
Structural color graphics with any design and color combination can be directly printed with high precision.