이원영 교수
Wonyoung Lee
성균관대학교 기계공학과 · 재료과학
연구실 소개
이원영 교수의 연구실은 고온에서의 효율적 에너지 변환을 실현하기 위한 프로톤 전도성 세라믹 연료전지(PCFCs) 및 전기화학적 세포 기반의 청정 에너지 기술을 핵심으로 연구하고 있습니다. 특히, 저온에서의 안정적 작동을 위한 이종계면 구조 설계, 나노구조 전극의 최적화, 그리고 내구성 높은 촉매 시스템 개발을 통해 전기화학적 성능을 극대화하는 데 초점을 맞추고 있습니다. 또한, 메탄 직접 연소와 수소 생산을 동시에 구현할 수 있는 복합 기능성 전기화학 장치의 개발도 진행 중입니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Proton conducting electrochemical cells, especially protonic ceramic fuel cells (PCFCs), are expected to be a breakthrough technology in next-generation energy conversion systems, primarily because of their high proton conductivity and low activation energy below 600 °C.
Cation segregation, particularly Sr segregation, toward a perovskite surface has a significant effect on the performance degradation of a solid oxide cell (solid oxide electrolysis/fuel cell). Among the number of key reasons generating the instability of perovskite oxide, surface-accumulated positively charged defects (oxygen vacancy, Vo··) have been considered as the most crucial drivers in strongly attracting negatively charged defects (SrA – site′) toward the surface. Herein, we demonstrate t
Abstract Direct methane protonic ceramic fuel cells are promising electrochemical devices that address the technical and economic challenges of conventional ceramic fuel cells. However, Ni, a catalyst of protonic ceramic fuel cells exhibits sluggish reaction kinetics for CH 4 conversion and a low tolerance against carbon-coking, limiting its wider applications. Herein, we introduce a self-assembled Ni-Rh bimetallic catalyst that exhibits a significantly high CH 4 conversion and carbon-coking tol
Abstract The low‐temperature (<500 °C) operation of reversible protonic ceramic electrochemical cells (PCECs) is desirable in achieving efficient and sustainable electricity generation, as well as green hydrogen production. However, significant interfacial resistance, which contributes to both ohmic and polarization resistance, remains a hurdle in lowering the operating temperature. In this study, PrBa 0.5 Sr 0.5 Co 1.5 Fe 0.5 O 5+δ (PBSCF) and BaZr 0.4 Ce 0.4 Y 0.1 Yb 0.1 O 3‐δ (BZCYYb) mono
Nano-structured composite electrodes, from a carefully conducted infiltration process, are one of the most promising electrode structures for intermediate temperature solid oxide fuel cells (IT-SOFCs), due to their ability to promote the oxygen reduction reaction (ORR) and enlarge triple phase boundaries (TPBs).
Graphene oxide (GO), which is the oxidized form of graphene, has holes and functional groups on the surface and thus has high potential to be used as an electrochemical transport channel material. In this study, differently modified GO membranes are applied as electrolytes of proton exchange membrane fuel cells (PEMFCs) with controlled carbon/oxygen ratios. The critical and desired properties of the electrolyte, such as electron conductivity, proton conductivity, interfacial reactivity, and cell
A novel thin-film coating technique using a gelatin-based GDC precursor solution was developed for dense and smooth 2D layers achieving excellent chemical stability.
Engineering the defect chemistry at the interface between the electrolyte and the electrode is crucial to facilitate oxygen reduction reaction, thereby improve the electrochemical performance of intermediate temperature solid oxide fuel cells.
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