Young‐Woong Suh
Hanyang University · 工学
研究室紹介
Professor Young-Woong Suh's research lab specializes in the development of advanced catalysts for sustainable energy applications, with a primary focus on liquid organic hydrogen carriers (LOHCs) and biomass conversion. The lab investigates noble and non-noble metal catalysts—particularly Pd, Pt, and Ni—supported on mesoporous materials for efficient hydrogenation and dehydrogenation reactions under mild conditions. A key research direction involves designing high-surface-area, stable catalyst supports through innovative synthesis methods such as solvent-deficient precipitation to enhance metal dispersion and resistance to sintering and coking. The lab also explores the role of metal-support interactions and heteroatom effects in tuning catalytic activity and selectivity for clean energy technologies.
Research Overview
Research Output Trend
Figures are computed from collected data and may differ slightly.
Selected Papers
15Abstract The liquid organic hydrogen carrier (LOHC) 2‐( N ‐methylbenzyl)pyridine (MBP) shows good potential for H 2 storage based on reversible hydrogenation and dehydrogenation, with an H 2 storage density of 6.15 wt %. This material and the corresponding perhydro product (H 12 ‐MBP) are liquids at room temperature. Remarkably, H 2 release is much faster from H 12 ‐MBP over Pd/C than from the benchmark perhydro benzyltoluene over Pt/C at lower temperatures than 270 °C, owing to the addition of
Abstract Liquid organic hydrogen carriers (LOHC) are interesting hydrogen vectors which can exploit existing infrastructure. Specifically, N-heterocyclic compounds are attractive due to lower dehydrogenation enthalpy than homocyclic ones and demand a viable palladium catalyst to guarantee high dehydrogenation activity at low temperatures and stability in recycle runs. Here, we employ one-pot solvent deficient precipitation yielding a mesoporous palladium-alumina. The prepared catalyst system off
Abstract Liquid organic hydrogen carrier (LOHC) systems have recently gained great importance as a means for hydrogen storage and transportation. Since fast hydrogen storage into H2-lean organic molecules under mild conditions is an urgent issue in LOHC systems, the present review highlights recent advances in hydrogenation catalysts for aromatic and heteroaromatic LOHC compounds. The activity results of supported noble metal (mainly, Ru and Pt) and transition metal (typically, Ni) catalysts are
Decalin is more easily dehydrogenated on Pt catalyst than Pd while the dehydrogenation of tetralin is more facile on Pd than Pt.
Research Areas
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