EunAe Cho
Korea Advanced Institute of Science and Technology · Engineering
About the Lab
Professor EunAe Cho's research lab focuses on advancing sustainable energy technologies and plant biotechnology. Key research directions include improving the durability and performance of proton exchange membrane fuel cells (PEMFCs) through material optimization and operational strategy development, such as controlling humidity and using dummy loads during startup–shutdown cycles. The lab also specializes in designing advanced electrocatalysts, particularly Pd–Au nanoparticles, for efficient electrochemical reactions like formic acid oxidation. Additionally, the lab applies genetic engineering to enhance the nutritional quality of crops, exemplified by metabolic engineering of tocopherol biosynthesis in lettuce. These interdisciplinary efforts span materials science, electrochemistry, and plant molecular biology, with a strong emphasis on practical applications in clean energy and human health.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15This work investigated the effect of cathode inlet relative humidity (RH) on the durability of proton exchange membrane fuel cells (PEMFCs) during startup–shutdown cycling via single-cell experiments. Electrochemical techniques, including measurements of polarization curves, electrochemical impedance spectroscopy (EIS), cyclic voltammetry (CV), and linear sweep voltammetry, were performed to examine the effect of cathode inlet RH on the degradation of PEMFCs. The performance was better for PEMFC
Carbon-supported Pd 3 Au nanoparticle catalysts were synthesized via chemical reduction. Surface segregation of Pd in Pd 3 Au catalyst was achieved via heat treatment under air, Ar, CO–Ar, and CO atmospheres, in order to obtain a surface with changed structures and composition. The surface composition was analyzed by electrochemical methods, and the Pd surface composition was observed to increase from 67.2% (air (asp) sample) to 80.6% (CO sample) after heat treatment under a CO atmosphere. The C
A cDNA encoding γ-tocopherol methyltransferase (γ- TMT) from Arabidopsis thaliana was overexpressed in lettuce (Latuca sativa L.) to improve the tocopherol composition. Seven lines of lettuce (T0) containing the γ-TMT transgene were produced by Agrobacterium-mediated transformation. The inheritance and expression of the transgene were confirmed by DNA and RNA gel blot analyses as well as quantification of tocopherols and γ-TMT activities. The ratio of α-/γ- tocopherol content (TR) varied from 0.
Various polymer electrolyte membrane fuel cell (PEMFC) startup procedures were tested to explore possible techniques for reducing performance decay and improving durability during repeated startup–shutdown cycles. The effects of applying a dummy load, which prevents cell reversal by consuming the air at the cathode, on the degradation of a membrane electrode assembly were investigated via single-cell experiments. Electrochemical techniques, including measurement of polarization curves, electroch
Research Areas
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