강지형 교수
Ji Hyung Kang
서울대학교 · 공학
연구실 소개
강지형 교수의 연구실은 고성능 에너지 장치와 생체적합성 소재의 핵심 기반 기술을 개발하고 있습니다. 리튬 메탈 이차전지의 안정성 향상을 위한 이온 액체 기반 보호층 설계, 생체재료와 유사한 물성을 지닌 다기능 수소겔 섬유의 열가공 제조 기술, 그리고 자가치유 기능을 갖춘 연성 전자소재의 설계를 중심으로 연구를 진행하고 있습니다. 특히, 나노구조적 설계와 동적 결합을 통한 기계적 내구성 향상 기술이 핵심입니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
9Abstract Modulating lithium metal deposition is vital for the realization of stable and energy‐dense Li–metal batteries. Ionic liquid (IL) has been regarded as a promising electrolyte additive for a uniform Li deposition because its cation moiety forms a lithiophobic protective layer on Li protuberant tips. Despite recent advances in ILs for Li metal batteries, rational designs for IL additives are still in their infancy, and further improvement is required. Here, a new class of self‐assembled p
ABSTRACT Supramolecular assembly of biological materials into fibrous structures often provides exceptional functionalities. In the case of synthetic polymers, however, it is challenging to construct fibrous structures in the condensed matrix, primarily due to limited ordering and chain mobility for supramolecular assembly. We present a design strategy of using hydrogen bonding units to facilitate supramolecular assembly in self‐healing PDMS‐based polymer films, exploring how subtle changes in a
Soft electronic devices require durability to endure their inherent exposure to diverse mechanical deformations, including scratches, punctures, and repeated bending. Without intrinsic damage recovery mechanisms, such deformations inevitably compromise mechanical integrity and limit device lifetime. To address this issue, the strategic incorporation of reversible dynamic bonds enables autonomous self-healing while simultaneously achieving high mechanical toughness through energy dissipation duri
CRISPR-Cas9 ribonucleoproteins (RNPs) represent a promising class of biopharmaceuticals for treating genetic and complex diseases. However, their clinical translation is limited by instability during storage and delivery. Lyophilization offers a potential solution, though conventional approaches often compromise structural integrity and bioactivity under non-cryogenic conditions. Here, we have developed a nanostructured delivery platform, designated Nano Banker & Blowball (NB<sup>2</sup>), which
Abstract Ultrathin, skin-conformal electrodes provide a secure, comfortable fit and enable continuous electrophysiological monitoring in daily lives. However, friction-induced damage from contact with skin or clothing made daily use difficult. Here, we demonstrate a facile fabrication of ultrathin on-skin electrodes robust against repeated mechanical friction. We identified that the mechanical toughness and skin-comformability are the key to realizing the high abrasion resistance to accommodate
Multifunctional All-Hydrogel Fibers Hydrogels possess both mechanical and chemical similarity to neural tissues. Although diverse hydrogels have been synthesized for biomedical applications, integrating multiple hydrogels into compact multimaterial architectures remains challenging. In their Research Article (DOI: 10.1002/adma.202511634), Seongjun Park and co-workers identify a class of thermoplastic hydrogels and introduce the hydrogel thermal drawing process (HG-TDP), a fabrication platform th
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