Search results
Results: 87
Number of items: 87
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Hendrikse, H. C., van der Weijden, A., Ronda-Lloret, M., Yang, T., Bliem, R., Shiju, N. R., van Hecke, M., Li, L., & Noorduin, W. L. (2020). Shape-Preserving Chemical Conversion of Architected Nanocomposites. Advanced materials, 32(52), Article 2003999. https://doi.org/10.1002/adma.202003999
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Devid, E., Ronda-Lloret, M., Huang, Q., Rothenberg, G., Shiju, N. R., & Kleyn, A. (2020). Conversion of CO2 by non-thermal inductively-coupled plasma catalysis. Chinese Journal of Chemical Physics, 33(2), 243-251. https://doi.org/10.1063/1674-0068/cjcp2004040 -
Slot, T. K., Riley, N., Shiju, N. R., Medlin, J. W., & Rothenberg, G. (2020). An experimental approach for controlling confinement effects at catalyst interfaces. Chemical Science, 11(40), 11024-11029. https://doi.org/10.1039/d0sc04118a -
Devid, E., Zhang, D., Wang, D., Ronda-Lloret, M., Huang, Q., Rothenberg, G., Shiju, N. R., & Kleyn, A. W. (2020). Dry Reforming of Methane under Mild Conditions Using Radio Frequency Plasma. Energy Technology, 8(5), Article 1900886. https://doi.org/10.1002/ente.201900886 -
Zhang, W., Oulego, P., Sharma, S. K., Yang, X.-L., Li, L.-J., Rothenberg, G., & Shiju, N. R. (2020). Self-Exfoliated Synthesis of Transition Metal Phosphate Nanolayers for Selective Aerobic Oxidation of Ethyl Lactate to Ethyl Pyruvate. ACS Catalysis, 10(7), 3958-3967. https://doi.org/10.1021/acscatal.9b04452 -
Panda, A. K., Alotaibi, A., Kozhevnikov, I. V., & Shiju, N. R. (2020). Pyrolysis of Plastics to Liquid Fuel Using Sulphated Zirconium Hydroxide Catalyst. Waste and Biomass Valorization, 11(11), 6337–6345. https://doi.org/10.1007/s12649-019-00841-4 -
Ronda-Lloret, M., Marakatti, V. S., Sloof, W. G., Delgado, J. J., Sepúlveda-Escribano, A., Ramos-Fernandez, E. V., Rothenberg, G., & Shiju, N. R. (2020). Butane Dry Reforming Catalyzed by Cobalt Oxide Supported on Ti2AlC MAX Phase. ChemSusChem, 13(23), 6401-6408. https://doi.org/10.1002/cssc.202001633 -
Zhang, L.-H., Shi, Y., Wang, Y., & Shiju, N. R. (2020). Nanocarbon Catalysts: Recent Understanding Regarding the Active Sites. Advanced Science, 7(5), Article 1902126. https://doi.org/10.1002/advs.201902126 -
Ronda-Lloret, M., Wang, Y., Oulego, P., Rothenberg, G., Tu, X., & Shiju, N. R. (2020). CO2Hydrogenation at Atmospheric Pressure and Low Temperature Using Plasma-Enhanced Catalysis over Supported Cobalt Oxide Catalysts. ACS Sustainable Chemistry and Engineering, 8(47), 17397-17407. https://doi.org/10.1021/acssuschemeng.0c05565 -
Gnanakumar, E. S., Chandran, N., Kozhevnikov, I. V., Grau-Atienza, A., Ramos Fernández, E. V., Sepulveda-Escribano, A., & Shiju, N. R. (2019). Highly efficient nickel-niobia composite catalysts for hydrogenation of CO2 to methane. Chemical Engineering Science, 194, 2-9. https://doi.org/10.1016/j.ces.2018.08.038
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