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Polymerization mechanisms of hexamethyldisiloxane in low-pressure plasmas involving complex geometries
Navascués, P., Buchtelová, M., Zajícková, L., Rupper, P., & Hegemann, D. (2024). Polymerization mechanisms of hexamethyldisiloxane in low-pressure plasmas involving complex geometries. Applied Surface Science, 645, 158824 (9 pp.). https://doi.org/10.1016/j.apsusc.2023.158824
Ambient catalytic spinning of polyethylene nanofibers
Wu, R., Lenz, T. M., Alfayez, F. A. S., Zhao, R., Rupper, P., Perret, E., … Heuberger, M. (2024). Ambient catalytic spinning of polyethylene nanofibers. Angewandte Chemie International Edition, 63(10), e202315326 (7 pp.). https://doi.org/10.1002/anie.202315326
Controlling polyethylene branching via surface confinement of Ni complexes
Wu, R., Lenz, T. M., Stieglitz, L., Galois, R., Zhao, R., Rupper, P., … Heuberger, M. (2023). Controlling polyethylene branching via surface confinement of Ni complexes. Journal of Catalysis, 426, 270-282. https://doi.org/10.1016/j.jcat.2023.07.019
Surface modification of recycled polymers in comparison to virgin polymers using Ar/O<sub>2</sub> plasma etching
Amberg, M., Höhener, M., Rupper, P., Hanselmann, B., Hufenus, R., Lehner, S., … Hegemann, D. (2022). Surface modification of recycled polymers in comparison to virgin polymers using Ar/O2 plasma etching. Plasma Processes and Polymers, 19(12), 2200068 (14 pp.). https://doi.org/10.1002/ppap.202200068
Plasma-deposited AgOx-doped TiO<em>x</em> coatings enable rapid antibacterial activity based on ROS generation
Hegemann, D., Hanselmann, B., Zuber, F., Pan, F., Gaiser, S., Rupper, P., … Ren, Q. (2022). Plasma-deposited AgOx-doped TiOx coatings enable rapid antibacterial activity based on ROS generation. Plasma Processes and Polymers, 19(7), e2100246 (17 pp.). https://doi.org/10.1002/ppap.202100246
Metal‐modified montmorillonite as plasmonic microstructure for direct protein detection
Giovannini, G., Garoli, D., Rupper, P., Neels, A., Rossi, R. M., & Boesel, L. F. (2021). Metal‐modified montmorillonite as plasmonic microstructure for direct protein detection. Sensors, 21(8), 2655 (16 pp.). https://doi.org/10.3390/s21082655
Alkyl sulfone bridged phosphorus flame-retardants for polypropylene
Nazir, R., Gooneie, A., Lehner, S., Jovic, M., Rupper, P., Ott, N., … Gaan, S. (2021). Alkyl sulfone bridged phosphorus flame-retardants for polypropylene. Materials and Design, 200, 109459 (12 pp.). https://doi.org/10.1016/j.matdes.2021.109459
In-situ phosphine oxide physical networks: a facile strategy to achieve durable flame retardant and antimicrobial treatments of cellulose
Nazir, R., Parida, D., Borgstädt, J., Lehner, S., Jovic, M., Rentsch, D., … Gaan, S. (2021). In-situ phosphine oxide physical networks: a facile strategy to achieve durable flame retardant and antimicrobial treatments of cellulose. Chemical Engineering Journal, 417, 128028 (14 pp.). https://doi.org/10.1016/j.cej.2020.128028
Melanized-cationic cellulose nanofiber foams for bioinspired removal of cationic dyes
Tran-Ly, A. N., De France, K. J., Rupper, P., Schwarze, F. W. M. R., Reyes, C., Nyström, G., … Ribera, J. (2021). Melanized-cationic cellulose nanofiber foams for bioinspired removal of cationic dyes. Biomacromolecules, 22(11), 4681-4690. https://doi.org/10.1021/acs.biomac.1c00942
Plasma processing of low vapor pressure liquids to generate functional surfaces
Gaiser, S., Schütz, U., Rupper, P., & Hegemann, D. (2020). Plasma processing of low vapor pressure liquids to generate functional surfaces. Molecules, 25(24), 6024 (23 pp.). https://doi.org/10.3390/molecules25246024
Stabilizing effects of novel phosphorus flame retardant on PET for high-temperature applications
Gooneie, A., Simonetti, P., Rupper, P., Nazir, R., Jovic, M., Gaan, S., … Hufenus, R. (2020). Stabilizing effects of novel phosphorus flame retardant on PET for high-temperature applications. Materials Letters, 276, 128225 (10 pp.). https://doi.org/10.1016/j.matlet.2020.128225
Release of graphene-related materials from epoxy-based composites: characterization, quantification and hazard assessment &lt;em&gt;in vitro&lt;/em&gt;
Netkueakul, W., Korejwo, D., Hammer, T., Chortarea, S., Rupper, P., Braun, O., … Wang, J. (2020). Release of graphene-related materials from epoxy-based composites: characterization, quantification and hazard assessment in vitro. Nanoscale, 12(19), 10703-10722. https://doi.org/10.1039/c9nr10245k
Optimization of mica surface hydroxylation in water vapor plasma monitored by optical emission spectroscopy
Rupper, P., Amberg, M., Hegemann, D., & Heuberger, M. (2020). Optimization of mica surface hydroxylation in water vapor plasma monitored by optical emission spectroscopy. Applied Surface Science, 509, 145362 (12 pp.). https://doi.org/10.1016/j.apsusc.2020.145362
Extending the range of controlling protein adsorption via subsurface architecture
Bülbül, E., Rupper, P., Geue, T., Bernard, L., Heuberger, M. P., & Hegemann, D. (2019). Extending the range of controlling protein adsorption via subsurface architecture. ACS Applied Materials and Interfaces, 11(45), 42760-42772. https://doi.org/10.1021/acsami.9b14584
Scalable biosynthesis of melanin by the basidiomycete <i>armillaria cepistipes</i>
Ribera, J., Panzarasa, G., Stobbe, A., Osypova, A., Rupper, P., Klose, D., & Schwarze, F. W. M. R. (2019). Scalable biosynthesis of melanin by the basidiomycete armillaria cepistipes. Journal of Agricultural and Food Chemistry, 67(1), 132-139. https://doi.org/10.1021/acs.jafc.8b05071
Plasma polymer film designs through the eyes of ToF-SIMS
Bernard, L., Rupper, P., Faccio, G., Hegemann, D., Scholder, O., Heuberger, M., … Vandenbossche, M. (2018). Plasma polymer film designs through the eyes of ToF-SIMS. Biointerphases: A Journal of Biomaterials and Biological Interfaces, 13(3), 03B417 (11 pp.). https://doi.org/10.1116/1.5016046
Extraction of biofilms from ureteral stents for quantification and cultivation-dependent and -independent analyses
Buhmann, M. T., Abt, D., Altenried, S., Rupper, P., Betschart, P., Zumstein, V., … Ren, Q. (2018). Extraction of biofilms from ureteral stents for quantification and cultivation-dependent and -independent analyses. Frontiers in Microbiology, 9, 1470 (9 pp.). https://doi.org/10.3389/fmicb.2018.01470
Structure and stability of C:H:O plasma polymer films co-polymerized using dimethyl carbonate
Drabik, M., Lohmann, D., Hanus, J., Shelemin, A., Rupper, P., Biederman, H., & Hegemann, D. (2018). Structure and stability of C:H:O plasma polymer films co-polymerized using dimethyl carbonate. Plasma, 1(1), 156-176. https://doi.org/10.3390/plasma1010015
Interfacial interactions in bicomponent polymer fibers
Leal, A. A., Neururer, O. A., Bian, A., Gooneie, A., Rupper, P., Masania, K., … Hufenus, R. (2018). Interfacial interactions in bicomponent polymer fibers. Polymer, 142, 375-386. https://doi.org/10.1016/j.polymer.2018.03.055
Structural development of nanosilver on metal oxide nanofibrous membrane by plasma enhanced chemical vapor deposition (PECVD)
Subjalearndee, N., Hegemann, D., Amberg, M., Hanselmann, B., Rupper, P., & Intasanta, V. (2018). Structural development of nanosilver on metal oxide nanofibrous membrane by plasma enhanced chemical vapor deposition (PECVD). Applied Surface Science, 452, 306-313. https://doi.org/10.1016/j.apsusc.2018.04.215