![]() ![]() | Lobet, M., Gillissen, F., De Moor, N., Dewalque, J., Colson, P., Cloots, R., Maho, A., & Henrard, L. (2025). Plasmonic Properties of Doped Metal Oxides Investigated through the Kubelka–Munk Formalism. ACS Applied Optical Materials. doi:10.1021/acsaom.4c00432 ![]() |
![]() ![]() | Gillissen, F., Lobet, M., Dewalque, J., Colson, P., Spronck, G., Gouttebaron, R., Duttine, M., Faceira, B., Rougier, A., Henrard, L., Cloots, R., & Maho, A. (2025). Mixed Molybdenum–Tungsten Oxide as Dual-Band, VIS–NIR Selective Electrochromic Material. Advanced Optical Materials. doi:10.1002/adom.202401995 ![]() |
Lobet, M., Gillissen, F., De Moor, N., Dewalque, J., Colson, P., Maho, A., Cloots, R., & Henrard, L. (03 October 2024). Doped metal oxides for plasmonic electrochromic applications [Paper presentation]. SPIE: Nanoscience+ Engineering: Plasmonics: Design, Materials, Fabrication, Characterization, and Applications XXII, San Diego, United States. doi:10.1117/12.3027429 ![]() |
![]() ![]() | Gillissen, F., Lobet, M., Dewalque, J., Colson, P., Spronck, G., Gouttebaron, R., Duttine, M., Faceira, B., Rougier, A., Henrard, L., Cloots, R., & Maho, A. (2024). Mixed Molybdenum-Tungsten Oxide as Dual-Band, VIS-NIR Selective Electrochromic Material. Chemrxiv. doi:10.26434/chemrxiv-2024-vhf83 |
![]() ![]() | Lobet, M.* , Gillissen, F.* , DeMoor, N., Dewalque, J., Colson, P., Cloots, R., Maho, A., & Henrard, L. (2024). Plasmonic properties of electrochromic doped metal oxides investigated through Kubelka Munk formalism. arXiv. * These authors have contributed equally to this work. |
Lobet, M., Mayer, A., Maho, A., Piron, P., Dewalque, J., Daem, N., Henrist, C., Deparis, O., & Loicq, J. (05 March 2021). Photonic structuring of perovskite solar cells using opal-like sub-units [Paper presentation]. SPIE: Physics and Simulation of Optoelectronic Devices XXIX. doi:10.1117/12.2578226 ![]() |
![]() ![]() | Lobet, M., Mayer, A., Maho, A., Piron, P., Dewalque, J., Henrist, C., Deparis, O., & Loicq, J. (26 August 2020). Benefits of photonic structuring on perovskite solar cells using opal-like layers [Poster presentation]. Optics+Photonics SPIE, San Diego, United States. doi:10.1117/12.2567611 |
![]() ![]() | Lobet, M., Mayer, A., Maho, A., Piron, P., Dewalque, J., Henrist, C., & Loicq, J. (2020). Opal-Like Photonic Structuring of Perovskite Solar Cells Using a Genetic Algorithm Approach. Applied Sciences. doi:10.3390/app10051783 ![]() |
![]() ![]() | Lobet, M., Piron, P., Dewalque, J., Maho, A., Deparis, O., Henrist, C., & Loicq, J. (21 October 2019). Efficiency enhancement of perovskite solar cells based on opal-like photonic crystals. Optics Express, 27. doi:10.1364/OE.27.032308 ![]() |
Lobet, M., Piron, P., Dewalque, J., Maho, A., Deparis, O., Henrist, C., & Loicq, J. (22 May 2019). Photonic management using opal-like crystals in perovskite solar cells [Paper presentation]. Belgian Physical Society Annual meeting, Bruxelles, Belgium. |
![]() ![]() | Dewalque, J., Daem, N., Spronck, G., Schrijnemakers, A., Maho, A., Colson, P., Lobet, M., Piron, P., Loicq, J., Henrist, C., & Cloots, R. (13 May 2019). Opal-like CH3NH3PbI3 perovskite solar cells : effect of the 3D structuration on the conversion efficiency [Poster presentation]. HOPV19, 11th International Conference on Hybrid and Organic Photovoltaics, Rome, Italy. |