경희대학교 · Engineering
김정호 교수의 연구실은 전도성 고분자, 초전도체, 나노광학 소재를 중심으로 한 첨단 소재 연구를 수행하고 있습니다. 특히 마그네슘 디보라이드(MgB₂)의 고성능화를 위한 탄소 도핑 메커니즘 규명과 함께, 생체 모방 구조를 응용한 방수·방-fogging 소재 개발에도 주력하고 있습니다. 또한 고굴절률 입자를 이용한 전기장 조절 가능한 광결정 구조를 통해 고화질 반사형 디스플레이의 실현 가능성을 탐색하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
This review summarizes the synthesis of conductive polymers with different chemical structures in various ways and also addresses their widespread recent development for energy storage system applications.
Fly-eye bio-inspired inorganic nanostructures are synthesized via a two-step self-assembly approach, which have low contact angle hysteresis and excellent anti-fogging properties, and are promising candidates for anti-freezing/fogging materials to be applied in extreme and hazardous environments.
The effect of carbohydrate doping on lattice parameters, microstructure, Tc, Jc, Hirr, and Hc2 of MgB2 has been studied. In this work the authors used malic acid as an example of carbohydrates as an additive to MgB2. The advantages of carbohydrate doping include homogeneous mixing of precursor powders, avoidance of expansive nanoadditives, production of highly reactive C, and significant enhancement in Jc, Hirr, and Hc2 of MgB2, compared to undoped samples. The Jc for MgB2+30wt% C4H6O5 sample wa
Increasing dissipation-free supercurrent has been the primary issue for practical application of superconducting wires. For magnesium diboride, MgB2, carbon is known to be the most effective dopant to enhance high-field properties. However, the critical role of carbon remains elusive, and also low-field critical current density has not been improved. Here, we have undertaken malic acid doping of MgB2 and find that the microscopic origin for the enhancement of high-field properties is due to boro
An electrically tunable photonic crystal is developed utilizing crystalline colloidal arrays of high refractive index particles. Through modulation of the refractive index of the particle, and the applied electric field, both the bandwidth and position of the photonic bandgap could be tuned. Full color modulation with high optical quality is achieved, which paves a way to develop a novel reflective display.