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Prof. dr. ir. H.B. (Ben) van Linden van den Heuvell
de Hond, J., Cisternas, N., Spreeuw, R. J. C., van Linden van den Heuvell, H. B., & van Druten, N. J. (2020). Interplay between van der Waals and dipole-dipole interactions among Rydberg atoms. Journal of Physics B: Atomic, Molecular and Optical Physics, 53(8), [084007]. https://doi.org/10.1088/1361-6455/ab752b[details]
La Rooij, A. L., Van Linden van Den Heuvell, H. B., & Spreeuw, R. J. C. (2019). Designs of magnetic atom-trap lattices for quantum simulation experiments. Physical Review A, 99(2), [022303]. https://doi.org/10.1103/PhysRevA.99.022303[details]
Peper, M., Deiglmayr, J., Merkt, F., Sanna, C., & Van Linden van den Heuvell, H. B. (2019). Magic Rydberg-Rydberg transitions in electric fields. Physical Review A, 100(3), [032512]. https://doi.org/10.1103/PhysRevA.100.032512[details]
Davtyan, D., Machluf, S., Soudijn, M. L., Naber, J. B., Van Druten, N. J., van Linden van den Heuvell, H. B., & Spreeuw, R. J. C. (2018). Controlling stray electric fields on an atom chip for experiments on Rydberg atoms. Physical Review A, 97(2), [023418]. https://doi.org/10.1103/PhysRevA.97.023418[details]
de Hond, J., van Bijnen, R., Kokkelmans, S. J. J. M. F., Spreeuw, R. J. C., van Linden van den Heuvell, H. B., & van Druten, N. J. (2018). From coherent collective excitation to Rydberg blockade on an atom chip. Physical Review A, 98(6), [062714]. https://doi.org/10.1103/PhysRevA.98.062714[details]
Cisternas, N., de Hond, J., Lochead, G., Spreeuw, R. J. C., van Linden van den Heuvell, H. B., & van Druten, N. J. (2017). Characterizing the local vectorial electric field near an atom chip using Rydberg-state spectroscopy. Physical Review A, 96(1), [013425]. https://doi.org/10.1103/PhysRevA.96.013425[details]
Naber, J. B., Tauschinsky, A., van Linden van den Heuvell, H. B., & Spreeuw, R. J. C. (2017). Electromagnetically induced transparency with Rydberg atoms across the Breit-Rabi regime. SciPost Physics, 2(2), [015]. https://doi.org/10.21468/SciPostPhys.2.2.015[details]
Naber, J., Machluf, S., Torralbo-Campo, L., Soudijn, M. L., van Druten, N. J., van Linden van den Heuvell, H. B., & Spreeuw, R. J. C. (2016). Adsorbate dynamics on a silica-coated gold surface measured by Rydberg Stark spectroscopy. Journal of Physics. B, Atomic, Molecular and Optical Physics, 49(9), [094005]. https://doi.org/10.1088/0953-4075/49/9/094005[details]
Price, P. L., Noordam, L. D., van Linden van den Heuvell, H. B., & Robicheaux, F. (2014). Hole burning and higher-order photon effects in attosecond light-atom interaction. Physical Review A, 89(3), 033414. https://doi.org/10.1103/PhysRevA.89.033414[details]
Tauschinsky, A., Newell, R., van Linden van den Heuvell, H. B., & Spreeuw, R. J. C. (2013). Measurement of 87Rb Rydberg-state hyperfine splitting in a room-temperature vapor cell. Physical Review A, 87(4), 042522. https://doi.org/10.1103/PhysRevA.87.042522[details]
Tauschinsky, A., Thijssen, R. M. T., Whitlock, S., van Linden van den Heuvell, H. B., & Spreeuw, R. J. C. (2010). Spatially resolved excitation of Rydberg atoms and surface effects on an atom chip. Physical Review A, 81(6), 063411. https://doi.org/10.1103/PhysRevA.81.063411[details]
van Ditzhuijzen, C. S. E., Tauschinsky, A., & van Linden van den Heuvell, H. B. (2009). Observation of Stückelberg oscillations in dipole-dipole interactions. Physical Review A, 80(6), 063407. https://doi.org/10.1103/PhysRevA.80.063407[details]
2008
Tauschinsky, A., van Ditzhuijzen, C. S. E., Noordam, L. D., & van Linden van den Heuvell, H. B. (2008). Radio-frequency-driven dipole-dipole interactions in spatially separated volumes. Physical Review A, 78(6), 063409. https://doi.org/10.1103/PhysRevA.78.063409[details]
van Ditzhuijzen, C. S. E., Koenderink, A. F., Hernández, J. V., Robicheaux, F., Noordam, L. D., & van Linden van den Heuvell, H. B. (2008). Spatially resolved observation of dipole-dipole interaction between Rydberg atoms. Physical Review Letters, 100(24), 243201. https://doi.org/10.1103/PhysRevLett.100.243201[details]
2017
La Rooij, A. L. (2017). Nanoscale magnetic atom chips for quantum simulation. [details]
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