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Single-mode emission in InP microdisks on Si using Au antenna
Tiwari, P., Fischer, A., Scherrer, M., Caimi, D., Schmid, H., & Moselund, K. E. (2022). Single-mode emission in InP microdisks on Si using Au antenna. ACS Photonics, 9(4), 1218-1225. https://doi.org/10.1021/acsphotonics.1c01677
Steady state lasing in strained germanium microbridges as fundamental measure for the crossover to direct band gap
Armand Pilon, F. T., Niquet, Y. M., Chretien, J., Pauc, N., Reboud, V., Calvo, V., … Sigg, H. (2021). Steady state lasing in strained germanium microbridges as fundamental measure for the crossover to direct band gap. In 2021 IEEE 17th international conference on group IV photonics (GFP) (p. 176467 (2 pp.). https://doi.org/10.1109/GFP51802.2021.9673870
Facile fabrication of hybrid carbon nanotube sensors by laser direct transfer
Bonciu, A. F., Filipescu, M., Voicu, S. I., Lippert, T., & Palla-Papavlu, A. (2021). Facile fabrication of hybrid carbon nanotube sensors by laser direct transfer. Nanomaterials, 11(10), 2604 (12 pp.). https://doi.org/10.3390/nano11102604
Correlation between strain and maximum lasing temperature in GeSn microbridges
Chretien, J., Pauc, N., Thai, Q. M., Armand Pilon, F., Casiez, L., Frauenrath, M., … Calvo, V. (2020). Correlation between strain and maximum lasing temperature in GeSn microbridges. In IEEE photonics conference (IPC): Vol. 2020. 2020 IEEE photonics conference (IPC). Proceedings (p. 9252430 (2 pp.). https://doi.org/10.1109/IPC47351.2020.9252430
Laser repair and clean of extreme ultraviolet lithography photomasks
Robinson, T., LeClaire, J., Mochi, I., Nebling, R. M., Ekinci, Y., & Kazazis, D. (2020). Laser repair and clean of extreme ultraviolet lithography photomasks. In M. E. Preil (Ed.), Proceedings of SPIE: Vol. 11518. Photomask technology 2020 (p. 1151809 (15 pp.). https://doi.org/10.1117/12.2573084
GeSn lasers with uniaxial tensile strain in the gain medium
Chretien, J., Pauc, N., Pilon, F. A., Bertrand, M., Thai, Q. M., Casiez, L., … Calvo, V. (2019). GeSn lasers with uniaxial tensile strain in the gain medium. In 2019 IEEE 16th international conference on group IV photonics (GFP) (p. 8926113 (2 pp.). https://doi.org/10.1109/GROUP4.2019.8926113
Challenges in simulating beam dynamics of dielectric laser acceleration
Niedermayer, U., Adelmann, A., Bettoni, S., Calvi, M., Dehler, M., Ferrari, E., … Simakov, E. (2019). Challenges in simulating beam dynamics of dielectric laser acceleration. International Journal of Modern Physics A, 34(36), 1942031 (15 pp.). https://doi.org/10.1142/S0217751X19420314
Group IV direct band gap photonics: methods, challenges, and opportunities
Geiger, R., Zabel, T., & Sigg, H. (2015). Group IV direct band gap photonics: methods, challenges, and opportunities. Frontiers in Materials, 2, 52 (18 pp.). https://doi.org/10.3389/fmats.2015.00052
Status of the Accelerator Physics Test Facility FLUTE
Nasse, M. J., Bernhard, A., Birkel, I., Böhm, A., Borysenko, A., Hillenbrand, S., … Stingelin, L. (2015). Status of the Accelerator Physics Test Facility FLUTE. In S. Henderson, E. Akers, T. Satogata, & V. R. W. Schaa (Eds.), International particle accelerator conference: Vol. 6. IPAC'15 (pp. 1506-1508). https://doi.org/10.18429/JACoW-IPAC2015-TUPWA042
Nanostructuring of GdFeCo thin films for laser induced magnetization switching
Le Guyader, L., El Moussaoui, S., Mengotti, E., Heyderman, L., Nolting, F., Tsukamoto, A., … Kimel, A. V. (2012). Nanostructuring of GdFeCo thin films for laser induced magnetization switching. Journal of the Magnetics Society of Japan, 36(1-2), 21-23. https://doi.org/10.3379/msjmag.1108M005