이재영 교수
Jaeyoung Lee
포항공과대학교 첨단원자력공학부 · 공학
연구실 소개
이재영 교수의 연구실은 전기화학적 이산화탄소 환원 반응을 중심으로, 구리 기반 촉매와 은, 할로겐 원소 도핑을 통한 고가치 다탄소 유기화합물(예: 에탄올, 프로파논 등)의 선택적 합성을 목표로 하고 있습니다. 특히, 이산화탄소를 연료로 전환하는 고효율 촉매 설계와 전기화학적 반응 메커니즘의 기초 원리를 규명하는 데 중점을 두고 있으며, 직접 포름산 연료전지 응용을 위한 안정성과 효율성을 동시에 확보하는 전극 및 촉매 시스템 개발도 진행 중입니다. 연구는 실용화 가능한 저비용 촉매 제작 기법과 전기화학적 환경 최적화를 기반으로 진행됩니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15In recent years, electrochemical reduction of carbon dioxide (CO 2 ) has received a great deal of attention due to the potential that this process can mitigate the atmospheric CO 2 concentration and produce valuable organic compounds. In particular, Cu and Cu-based catalysts have exhibited the capability of converting CO 2 into multicarbon fuels and chemicals in significant quantities. Here, we report a facile and cheap fabrication method for the development of an Ag-incorporated cuprous oxide (
Electrocatalytic conversion of carbon dioxide (CO2) has recently received considerable attention as one of the most feasible CO2 utilization techniques. In particular, copper and copper-derived catalysts have exhibited the ability to produce a number of organic molecules from CO2. Herein, we report a chloride (Cl)-induced bi-phasic cuprous oxide (Cu2O) and metallic copper (Cu) electrode (Cu2OCl) as an efficient catalyst for the formation of high-carbon organic molecules by CO2 conversion, and id
The first method for achieving Hiyama couplings of unactivated alkyl bromides and iodides is reported. The desired carbon-carbon bond formation proceeds under mild conditions (room temperature) with good functional-group tolerance.
A basic understanding of electrode structure and the characteristics of its components can be powerfully utilized in fuel cell applications such as direct formic acid fuel cell (DFAFC) system integration and HCOOH concentration controlled systems. There have been, thus, tremendous efforts made to elucidate theoretical aspects of electrochemical processes involving new anode catalysts and put them into practical effect on formic acid fuel cells. Herein, we highlight recent studies for better unde
Abstract Electrocatalytic conversion of carbon dioxide (CO 2 ) has recently received considerable attention as one of the most feasible CO 2 utilization techniques. In particular, copper and copper‐derived catalysts have exhibited the ability to produce a number of organic molecules from CO 2 . Herein, we report a chloride (Cl)‐induced bi‐phasic cuprous oxide (Cu 2 O) and metallic copper (Cu) electrode (Cu 2 O Cl ) as an efficient catalyst for the formation of high‐carbon organic molecules by CO
Electrolyte pH is an important parameter in determining the equilibrium concentrations of the carbon dioxide–bicarbonate–carbonate system as well as in mapping out the thermodynamically stable phases of tin dioxide (SnO 2 ) in an aqueous electrochemical system. Thus, we explored an optimized region in the combined potential–pH ( E –pH) diagram of the two systems where there is a simultaneously high catalytic activity for carbon dioxide (CO 2 ) electrolysis and good phase stability for the SnO 2
Here, we first report an octahedral Co2+-rich Co oxide with inactive Sb5+ ion as an oxygen evolution reaction (OER) electrocatalyst for efficient H2 production by lowering the cell voltage in anion exchange membrane water splitting (AEMS). To enhance the OER activity of Co-based oxides, it is crucial to increase the amount of Co4+ at OER potential, known as the fast OER active site. Using in situ X-ray absorption spectroscopy, we observed most of the octahedral Co2+ in trirutile CoSb2O6 oxidized
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