1 |
Catalytic reduction of NO by CO with Cu-based and Mn-based catalysts Pan KL, Young CW, Pan GT, Chang MB Catalysis Today, 348, 15, 2020 |
2 |
CO-assisted ex-situ chemical activation of Pt-Cu/C oxygen reduction reaction electrocatalyst Gatalo M, Moriau L, Petek U, Ruiz-Zepeda F, Sala M, Grom M, Galun T, Jovanovic P, Pavlisic A, Bele M, Hodnik N, Gaberscek M Electrochimica Acta, 306, 377, 2019 |
3 |
Intake air strategy for low HC and CO emissions in dual-fuel (CNG-diesel) premixed charge compression ignition engine Shim E, Park H, Bae C Applied Energy, 225, 1068, 2018 |
4 |
Co-culture-based biological carbon monoxide conversion by Citrobacter amalonaticus Y19 and Sporomusa ovata via a reducing-equivalent transfer mediator Lee CR, Kim C, Song YE, Im H, Oh YK, Park S, Kim JR Bioresource Technology, 259, 128, 2018 |
5 |
Transcriptomic profiling and its implications for the H-2 production of a non-methanogen deficient in the frhAGB-encoding hydrogenase Lee SH, Kim MS, Kim YJ, Kim TW, Kang SG, Lee HS Applied Microbiology and Biotechnology, 101(12), 5081, 2017 |
6 |
Low-temperature carbon monoxide oxidation over zirconia-supported CuO-CeO2 catalysts: Effect of zirconia support properties Moretti E, Molina AI, Sponchia G, Talon A, Frattini R, Rodriguez-Castellon E, Storaro L Applied Surface Science, 403, 612, 2017 |
7 |
Emissions of NO and CO from counterflow combustion of CH4 under MILD and oxyfuel conditions Cheong KP, Li PF, Wang FF, Mi JC Energy, 124, 652, 2017 |
8 |
Time-resolved carbon monoxide measurements during the low- to intermediate-temperature oxidation of n-heptane, n-decane, and n-dodecane Tekawade A, Kosiba G, Oehlschlaeger MA Combustion and Flame, 173, 402, 2016 |
9 |
Modeling mass transfer in solid oxide fuel cell anode: II. H-2/CO co-oxidation and surface diffusion in synthesis-gas operation Bao C, Jiang ZY, Zhang XX Journal of Power Sources, 324, 261, 2016 |
10 |
Linze-Donawitz 가스로부터 일산화탄소(CO) 분리를 위한 흡수 및 흡착공정에 대한 기술경제성 비교 임영일, 최진순, 문흥만, 김국희 Korean Chemical Engineering Research, 54(3), 320, 2016 |