Duck-Kyu Oh
Kier Group
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Publication
Featured researches published by Duck-Kyu Oh.
Scientific Reports | 2016
Min Ho Jin; Duck-Kyu Oh; Ju Hyoung Park; Chun Boo Lee; Sung Wook Lee; Jong Soo Park; Kwan Young Lee; Dong Wook Lee
For the application of formic acid as a liquid organic hydrogen carrier, development of efficient catalysts for dehydrogenation of formic acid is a challenging topic, and most studies have so far focused on the composition of metals and supports, the size effect of metal nanoparticles, and surface chemistry of supports. Another influential factor is highly desired to overcome the current limitation of heterogeneous catalysis for formic acid decomposition. Here, we first investigated the effect of support pore structure on formic acid decomposition performance at room temperature by using mesoporous silica materials with different pore structures such as KIE-6, MCM-41, and SBA-15, and achieved the excellent catalytic activity (TOF: 593 h−1) by only controlling the pore structure of mesoporous silica supports. In addition, we demonstrated that 3D interconnected pore structure of mesoporous silica supports is more favorable to the mass transfer than 2D cylindrical mesopore structure, and the better mass transfer provides higher catalytic activity in formic acid decomposition. If the pore morphology of catalytic supports such as 3D wormhole or 2D cylinder is identical, large pore size combined with high pore volume is a crucial factor to achieve high catalytic performance.
Scientific Reports | 2015
Dongwook Lee; Min-Ho Jin; Ji Chan Park; Chun-Boo Lee; Duck-Kyu Oh; Sung-Wook Lee; Jin-Woo Park; Jong Soo Park
The development of easier, cheaper, and more ecofriendly synthetic methods for mesoporous materials remains a challenging topic to commercialize them, and the transformation of waste glycerol, as a biodiesel byproduct, into something useful and salable is one of the pending issues to be resolved. Here we first report that mesoporous silica (KIE-6) and carbon (KIE-7) can be simultaneously synthesized by using cheap and ecofriendly crude-waste-glycerol of biodiesel with or without glycerol purification, and we demonstrated the excellent performance of the mesoporous material as a catalyst support for formic acid decomposition. As a result, Pd-MnOx catalysts supported on NH2-functionalized KIE-6 showed the highest catalytic activity (TOF: 540.6 h−1) ever reported for room-temperature formic acid decomposition without additives. Moreover, we conducted life-cycle assessment (LCA) from biomass cultivation through biodiesel production to KIE-6 and KIE-7 preparation, and it was confirmed that CO2 emission during synthesis of KIE-6 and KIE-7 could be reduced by 87.1% and 85.7%, respectively. We believe that our study suggested more ecofriendly and industry-friendly approaches for preparation of mesoporous materials, and utilization of waste glycerol.
Journal of Membrane Science | 2014
Shin-Kun Ryi; Sung-Wook Lee; Duck-Kyu Oh; Beom-Seok Seo; Jin-Woo Park; Jong-Soo Park; Dong-Wook Lee; Sung Su Kim
Catalysis Today | 2014
Shin-Kun Ryi; Sung-Wook Lee; Jin-Woo Park; Duck-Kyu Oh; Jong-Soo Park; Sung Su Kim
Nanoscale | 2014
Dong-Wook Lee; Min-Ho Jin; Chun-Boo Lee; Duck-Kyu Oh; Shin-Kun Ryi; Jong-Soo Park; Jong-Soo Bae; Young-Joo Lee; Se-Joon Park; Young-Chan Choi
Energy | 2015
Kyung-Ran Hwang; Jin-Woo Park; Sung-Wook Lee; Sungkook Hong; Chun-Boo Lee; Duck-Kyu Oh; Min-Ho Jin; Dongwook Lee; Jong Soo Park
ACS Sustainable Chemistry & Engineering | 2017
Dongwook Lee; Min-Ho Jin; Duck-Kyu Oh; Sung-Wook Lee; Jong Soo Park
Chemistry of Materials | 2015
Dongwook Lee; Min-Ho Jin; Chun-Boo Lee; Sung-Wook Lee; Jin-Woo Park; Duck-Kyu Oh; Ji Chan Park; Jong Soo Park
International Journal of Hydrogen Energy | 2016
Kyung-Ran Hwang; Jong-Soo Park; Sung-Wook Lee; Duck-Kyu Oh; Chun-Boo Lee; Kyung-Min Kim; Dong-Won Kim
International Journal of Hydrogen Energy | 2018
Min Ho Jin; Ju Hyoung Park; Duck-Kyu Oh; Sung Wook Lee; Jong-Soo Park; Kwan Young Lee; Dong Wook Lee