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Effect of Cu substitution on the structure and reactivity of CuxCo3-xO4 spinel catalysts for direct NOx decomposition Roberts CA, Paidi VK, Shepit M, Peck TC, Masias KLS, van Lierop J, Reddy GK Catalysis Today, 360, 204, 2021 |
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Promoted decomposition of NOx in oxygen-rich exhaust by electrochemical double-cell plates Huang TJ, Wang BC, Lee CC, Mao CW Electrochimica Acta, 187, 442, 2016 |
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Effect of preparation of iron-infiltrated activated carbon catalysts on nitrogen oxide conversion at low temperature Busch M, Schmidt W, Migunov V, Beckel A, Notthoff C, Kompch A, Bergmann U, Winterer M, Atakan B Applied Catalysis B: Environmental, 160, 641, 2014 |
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Acid and redox activity of template-free Al-rich H-BEA* and Fe-BEA* zeolites Sazama P, Wichterlova B, Sklenak S, Parvulescu VI, Candu N, Sadovska G, Dedecek J, Klein P, Pashkova V, Stastny P Journal of Catalysis, 318, 22, 2014 |
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NOx emission control for automotive lean-burn engines by electro-catalytic honeycomb cells Huang TJ, Wu CY, Chiang DY, Yu CC Chemical Engineering Journal, 203, 193, 2012 |
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NOx removal by rhodium catalysts supported on carbon nanotubes: Evidence for the stoichiometric reduction of NO2 and NO by the carbon support Beyer H, Kohler K Applied Catalysis B: Environmental, 96(1-2), 110, 2010 |
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NOx removal from vehicle emissions by functionality surface of asphalt road Chen M, Liu YH Journal of Hazardous Materials, 174(1-3), 375, 2010 |
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NOx decomposition, storage and reduction over novel mixed oxide catalysts derived from hydrotalcite-like compounds Yu JJ, Cheng J, Ma CY, Wang HL, Li LD, Hao ZP, Xu ZP Journal of Colloid and Interface Science, 333(2), 423, 2009 |
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Analysis of the thermodynamic feasibility of NOx decomposition catalysis to meet next generation vehicle NOx emissions standards Goralski CT, Schneider WF Applied Catalysis B: Environmental, 37(4), 263, 2002 |
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Prominent redox feature of copper ion exchanged in ZSM-5-type zeolite Kuroda Y, Kumashiro R, Nagao M Applied Surface Science, 196(1-4), 408, 2002 |