Jinkee Hong
연세대학교 화공생명공학과 · 공학
Jinkee Hong 교수의 연구실은 주로 레이어별 축적(LbL) 기반의 나노구조막을 활용해 다기능성 박막 및 캡슐을 개발하고 있습니다. 특히 그래핀 옥사이드 및 환원 그래핀 옥사이드를 활용한 약물 방출 시스템, 생체 적합성 있는 생분해성 필름, 전도성 나노소재를 통합한 전기적 제어 가능한 나노디바이스 등에 초점을 맞추고 있습니다. 이는 의료용 표면 코ating, 약물 전달, 레이더 흡수 소재 등 응용 분야로 이어지는 융복합 연구입니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
The ability to control the timing and order of release of different therapeutic drugs will play a pivotal role in improving patient care and simplifying treatment regimes in the clinic. The controlled sequential release of a broad range of small and macromolecules from thin film coatings offers a simple way to provide complex localized dosing in vivo. Here we show that it is possible to take advantage of the structure of certain nanomaterials to control release regimes from a scale of hours to m
We introduce a novel and versatile approach for preparing hollow multilayer capsules of graphene oxide nanosheets. Positively charged reduced graphene oxide (rGO-NH3+) and negatively charged reduced graphene oxide (rGO-COO−) were used as building blocks for the layer-by-layer assembly of graphene multilayer films onto polystyrene (PS) colloids. After removing the PS colloids with THF treatment, hollow graphene capsules with necessary physical and chemical stabilities were prepared successfully.
Over the past years, the layer-by-layer (LbL) assembly has been widely developed as one of the most powerful techniques to prepare multifunctional films with desired functions, structures and morphologies because of its versatility in the process steps in both material and substrate choices. Among various functional nanoscale objects, carbon-based nanomaterials, such as carbon nanotubes and graphene sheets, are promising candidates for emerging science and technology with their unique physical,
Recent research has highlighted degradable multilayer films that enable the programmed release of different therapeutics. Multilayers constructed by the layer-by-layer (LbL) deposition that can undergo disassembly have been demonstrated to be of considerable interest, particularly for biomedical surface coatings due to their versatility and mild aqueous processing conditions, enabling the inclusion of biologic drugs with high activity. In this study, we examine the controlled release of a protei
A method to control activation of a DNA nanodevice by supplying a complementary DNA (cDNA) strand from an electro-responsive nanoplatform is reported. To develop functional nanoplatform, hexalayer nanofilm is precisely designed by layer-by-layer assembly technique based on electrostatic interaction with four kinds of materials: Hydrolyzed poly(β-amino ester) can help cDNA release from the film. A cDNA is used as a key building block to activate DNA nanodevice. Reduced graphene oxides (rGOs) and