Publikationen

  • Probst, T., Schall, F., Heuft, S., Schindler, J. J., Lindner, L., Mägdefessel, S., Quay, R., Reineck, P., Zaitsev, A. M., Ohshima, T., Weidemüller, M., & Jeske, J. (2026). Characterizing the nitrogen-vacancy center singlet transition and its phonon sideband for absorption-based room-temperature magnetometry. arXiv. https://doi.org/10.48550/arXiv.2608.02060
  • Zhang, J., Cheung, C. K., Kübler, M., Benke, M., Brossaud, M., Wang, Y., Denisenko, A., Peng, R., Anders, J., Corcione, E., Tarín Sauer, C., Edmonds, A. M., Markham, M., Nakamura, K., Sumiya, H., Onoda, S., Isoya, J., Zhang, C., & Wrachtrup, J. (2026). Unraveling quantum dephasing of nitrogen-vacancy center ensembles in diamond. npj Quantum Materials. https://doi.org/10.1038/s41535-026-00869-5 
  • Schall, F., Lindner, L., Rottstaedt, Y., Rattunde, M., Reiter, F., Quay, R., Bek, R., Zaitsev, A. M., Ohshima, T., Greentree, A. D., & Jeske, J. (2026). Laser-enhanced quantum sensing boosts sensitivity and dynamic range. arXivhttps://arxiv.org/abs/2509.05204 
  • Shao Qi Lim, A. A. Wood, B. C. Johnson, Q. Sun, J. Jeske, H. Abe, T. Ohshima, D. J. Ottaway, H. Ebendorff-Heidepriem, R. E. Scholten, A. D. Greentree, & B. C. Gibson. (2026). A robust laser cavity platform for NV-diamond singlet infrared absorption magnetometry. arXiv. https://doi.org/10.48550/arXiv.2604.18937
  • Jeske, J., Schall, F., Rottstaedt, Y., Lindner, L., Schindler, J., Probst, T., Rattunde, M., Quay, R., Zaitsev, A., Ohshima, T., Bek, R., Reineck, P., Gibson, B. C., & Greentree, A. D. (2026). Laser threshold magnetometry with nitrogen-vacancy centres in diamond. In Proceedings of SPIE - Quantum Sensing, Imaging, and Precision Metrology IV (PC139200O). https://doi.org/10.1117/12.3079855
  • Hirlinger-Alexander, J., Scharwaechter, M., Bader, F., Steck, J., Seibold, M., Werner, M., Bek, R., & Kahle, H. (2025). Semiconductor membrane microchip laser. Optics Express, 33(25), 53216. https://doi.org/10.1364/oe.574856 
  • Lindner, L., Rottstaedt, Y., Schall, F., Hahl, F. A., Luo, T., Dogan, C., Nava Antonio, G., Vidal, X., Sacher, J., Zaitsev, A., Ohshima, T., Capelli, M., Gibson, B. C., Greentree, A. D., Rattunde, M., Jeske, J., & Quay, R. (2025). Combining MECSEL with intra-cavity quantum emitters/absorbers for laser threshold magnetometry. In Proceedings of SPIE - Quantum Sensing, Imaging, and Precision Metrology III (1339209). https://doi.org/10.1117/12.3042797
  • Schall, F., Hahl, F. A., Lindner, L., Vidal, X., Luo, T., Zaitsev, A. M., Ohshima, T., Jeske, J., & Quay, R. (2025). High-contrast absorption magnetometry in the visible to near-infrared range with nitrogen-vacancy ensembles. Optics Express, 33, 10899–10910. https://doi.org/10.1364/OE.550716
  • Hirlinger-Alexander, J., Scharwaechter, M., Bader, F., Steck, J., Seibold, M., Werner, M., Bek, R., & Kahle, H. (2025). A Semiconductor Membrane External-Cavity Surface-Emitting Laser (MECSEL) in a Microchip Configuration. 2025 Conference on Lasers and Electro-Optics Europe & European Quantum Electronics Conference (CLEO/Europe-EQEC), Munich, Germany, 2025, pp. 1-1 https://doi.org/10.1109/cleo/europe-eqec65582.2025.11109665 
  • Rottstaedt, Y., Lindner, L., Schall, F., Hahl, F. A., Luo, T., Reiter, F., Ohshima, T., Zaitsev, A. M., Bek, R., Rattunde, M., Jeske, J., & Quay, R. (2025). Two-media laser threshold magnetometry: A magnetic-field-dependent laser threshold. APL Photonics, 10(8). https://doi.org/10.1063/5.0275216
  • Nair, S. R., Hahl, F. A., Greentree, A. D., Jeske, J., & Volz, T. (2025). Diamond laser threshold magnetometer. In M. Agio & S. Castelletto (Eds.), Nanophotonics with diamond and silicon carbide for quantum technologies (pp. 219–228). Elsevier. https://doi.org/10.1016/B978-0-443-13717-4.00012-8
  • Jing, J., Sun, F., Wang, Z., Ma, L., Luo, Y., Du, Z., Zhang, T., Wang, Y., Xu, F., Zhang, T., Chen, C., Ma, X., He, Y., Zhu, Y., Sun, H., Wang, X., Zhou, Y., Tsoi, J. K. H., Wrachtrup, J., Wong, N., Li, C., Ki, D.-K., Wang, Q., Li, K. H., Lin, Y., & Chu, Z. (2024). Scalable production of ultraflat and ultraflexible diamond membranes. Nature, 636(8043), 627–634. https://doi.org/10.1038/s41586-024-08218-x
  • Lindner, L., et al. (2024). Dual-media laser system: Nitrogen vacancy diamond and red semiconductor laser. Science Advances, 10, eadj3933. https://doi.org/10.1126/sciadv.adj3933
  • Du, Z., Gupta, M., Xu, F., Zhang, K., Zhang, J., Zhou, Y., Liu, Y., Wang, Z., Wrachtrup, J., Wong, N., Li, C., & Chu, Z. (2024). Widefield diamond quantum sensing with neuromorphic vision sensors. Advanced Science, 11(2), Article 2304355. https://doi.org/10.1002/advs.202304355
  • Benke, M., Zhang, J., Kübler, M., & Anders, J. (2024). Optimising quantum sensor components. In 2024 IEEE 37th International Conference on Micro Electro Mechanical Systems (MEMS) (pp. 273–275). https://doi.org/10.1109/MEMS58180.2024.10439317
  • Schweizer, M., Zhang, J., Kübler, M., Benke, M., & Wrachtrup, J. (2023). Miniaturized quantum sensors. In 2023 22nd International Conference on Solid-State Sensors, Actuators and Microsystems (Transducers) (pp. 164–166).
  • Geng, J., Shalomayeva, T., Gryzlova, M., Mukherjee, A., Santonocito, S., Dzhavadzade, D., Dasari, D. B. R., Kato, H., Stöhr, R., Denisenko, A., Mizuochi, N., & Wrachtrup, J. (2023). Dopant-assisted stabilization of negatively charged single nitrogen-vacancy centers in phosphorus-doped diamond at low temperatures. npj Quantum Information, 9(1), Article 110. https://doi.org/10.1038/s41534-023-00777-7
  • Zhang, C., Zhang, J., Widmann, M., Benke, M., Kübler, M., Dasari, D., Klotz, T., Gizzi, L., Röhrle, O., Brenner, P., & Wrachtrup, J. (2023). Optimizing NV magnetometry for magnetoneurography and magnetomyography applications. Frontiers in Neuroscience, 16, Article 1034391. https://doi.org/10.3389/fnins.2022.1034391