Ki Ro Yoon
한양대학교 신소재공학부 · 공학
윤기로 교수 연구실은 리튬-산소 배터리와 수소 연료전지의 핵심 소재인 전기화학적 촉매 및 고분자 전해질 막의 설계 및 개발에 중점을 두고 있습니다. 특히, 산소 반응(ORR/OER)을 위한 고성능 이중기능 촉매, 내구성 있는 전해질 막의 표면 개질 기술, 그리고 나노복합재료를 활용한 에너지 변환 장치의 효율성 향상에 기여하고 있습니다. 연구는 나노소재 합성, 표면 기능화, 전기화학적 특성 제어를 기반으로 하여 실용화 가능한 청정 에너지 기술의 실현을 목표로 하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
To achieve a high reversibility and long cycle life for lithium-oxygen (Li-O<sub>2</sub>) batteries, the irreversible formation of Li<sub>2</sub>O<sub>2</sub>, inevitable side reactions, and poor charge transport at the cathode interfaces should be overcome. Here, we report a rational design of air cathode using a cobalt nitride (Co<sub>4</sub>N) functionalized carbon nanofiber (CNF) membrane as current collector-catalyst integrated air cathode. Brush-like Co<sub>4</sub>N nanorods are uniformly
Rational design and massive production of bifunctional catalysts with fast oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) kinetics are critical to the realization of highly efficient lithium-oxygen (Li-O2) batteries. Here, we first exploit two types of double-walled RuO2 and Mn2O3 composite fibers, i.e., (i) phase separated RuO2/Mn2O3 fiber-in-tube (RM-FIT) and (ii) multicomposite RuO2/Mn2O3 tube-in-tube (RM-TIT), by controlling ramping rate during electrospinning process. B
Abstract The physical and chemical degradations of a state‐of‐the‐art proton exchange membrane (PEM) composed of a perfluorinated sulfonic acid (PFSA) ionomer and polytetrafluoroethylene (PTFE) reinforcement are induced through the repeated expansion/shrinkage of the ionomer and free radical attacks. Such degradations essentially originate from the loose structure of the materials and the low interactive binding force among the PEM constituents. In this study, the need for simplified design prin
Oxygen-based electrocatalysis is an integral aspect of a clean and sustainable energy conversion/storage system. The development of economic bifunctional electrocatalysts with high activity and durability during reversible reactions remains a great challenge. The tailored porous structure and separately presented active sites for oxygen reduction and oxygen evolution reactions (ORR and OER) without mutual interference are most crucial for achieving desired bifunctional catalysts. Here, we report
The configuration of reinforced composite membrane (RCM), composed of porous polytetrafluoroethylene (PTFE) as a mechanical reinforcement and perfluorosulfonic acid (PFSA) as a proton conductive polymer, has gained a large interest due to its promisingly high performance for polymer electrolyte membrane (PEM) fuel cells. However, the inaccessible polymeric nanocomposites in preparing RCMs are still faced with critical challenges associated with immiscible interactions between hydrophilic sulfona
Electrochemical hydrogen peroxide (H<sub>2</sub>O<sub>2</sub>) production by the direct two-electron (2e<sup>-</sup>) oxygen reduction reaction (ORR) has received much attention as a promising alternative to the industrially developed anthraquinone fabrication process. Transition metal (M) and nitrogen doped carbon (M-N-C, M = Fe or Co) catalysts are known to be active for four electron ORR pathways via two + two electron transfer, where the former is for the ORR and the latter for the peroxide
Synthesis of a co-catalyst functionalized photocatalyst: Ni@NiO-loaded W:BiVO<sub>4</sub> nanofibers (Ni@NiO/W:BiVO<sub>4</sub> NFs) are successfully synthesized as efficient photocatalysts. Ni@NiO/W:BiVO<sub>4</sub> NFs exhibit an excellent photocatalytic water oxidation performance due to a bi-functional co-catalytic effect of Ni@NiO.
Gel polymer electrolyte (GPE) based flexible zinc-air batteries (ZABs) are considered promising power sources for next-generation wearable devices because of their high specific energy density, low cost, high safety, and environmental friendliness. However, the liquid component in GPE is susceptible to evaporation through the air cathode, drastically reducing the cell performance and lifetime. Poly(vinyl alcohol) (PVA) is the most widely adopted ion conductive polymer, but its poor water retenti
The development of efficient bifunctional catalysts for the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) is a key issue pertaining high performance Li-O2 batteries. Here, we propose a heterogeneous electrocatalyst consisting of LaMnO3 nanofibers (NFs) functionalized with RuO2 nanoparticles (NPs) and non-oxidized graphene nanoflakes (GNFs). The Li-O2 cell employing the tailored catalysts delivers an excellent electrochemical performance, affording significantly reduced disc
Air filtration technology for mitigating pollution due to harmful mixtures of particulate matter (PMs) and yellow dust has been continuously improved. However, significantly small-sized airborne contaminants, such as PM2.5, and toxic gases, including volatile organic compounds (VOCs), remain in the atmosphere and critically affect the human health. Therefore, the development of an integrated filtration system with fast detection and high removal efficiency toward various airborne pollutants with
Abstract Lithium–oxygen (Li–O 2 ) batteries are considered as the most promising candidates owing to their higher theoretical energy density than other energy storage devices. However, the unfavorable structure of the air cathode has become a major cause of low performance for Li–O 2 batteries, limiting their use in practical applications. To deal with this issue, the rational construction of porous air electrodes, where crucial reactions take place, is in high demand. Among the various dimensio
The application of nanofiber (NF) and porous metal-organic framework (MOF) has increasingly attracted attention for the protection of public health. This composite platform provides the physical sieving of particulate matters (PMs) and capturing gases, serving as an outstanding filtering medium with lightweight and multifunctionality. Herein, process design and optimization are performed to produce a multifunctional membrane comprised NFs and MOF particles. Electrospinning/electrospray technique