Publications

2025

Deterministic switching of antiferromagnetic spin textures by nonlinear magnons

Chen, J., Xu, M., Wang, J., Wagner, K., Sheng, L., Jia, H., Wei, W., Zhang, H., Zhang, Y., Wang, H., Yuan, R., Hamdi, M., Liu, S., Chen, T., Maletinsky, P., Ansermet, J.-P., Yu, D., Grundler, D., & Yu, H. (2025). Nature Communications, 16(1), 5794. 

https://doi.org/10.1038/s41467-025-60883-2

Homogeneous Free-Standing Nanostructures from Bulk Diamond over Millimeter Scales for Quantum Technologies

Corazza, A., Ruffieux, S., Zhu, Y., Jaramillo Concha, C. A., Fontana, Y., Galland, C., Warburton, R. J., & Maletinsky, P. (2025). Nano Letters, 25(40), 14526–14533. 

https://doi.org/10.1021/acs.nanolett.5c03083

Investigating skyrmion stability and core polarity reversal in NdMn2Ge2.

Treves, S. K., Ukleev, V., Apseros, A., Massey, J. R., Wagner, K., Lehmann, P., Kitaori, A., Kanazawa, N., Brock, J. A., Finizio, S., Reuteler, J., Tokura, Y., Maletinsky, P., & Scagnoli, V. (2025). Scientific Reports, 15(1), 461. 

https://doi.org/10.1038/s41598-024-82114-2

Lateral Exchange Bias for Néel-Vector Control in Atomically Thin Antiferromagnets

Pellet-Mary, C., Dutta, D., Tschudin, M. A., Siegwolf, P., Gross, B., Broadway, D. A., Cox, J., Schrader, C., Happacher, J., Chica, D. G., Dean, C. R., Roy, X., & Maletinsky, P. (2025). (No. arXiv:2503.04922). 

https://doi.org/10.48550/arXiv.2503.04922

Photocatalytic Control of Diamond Color Center Charge States via Surface Oxidation

Li, M., Zuber, J. A., Obramenko, M., Tognina, P., Corazza, A., Batzer, M., Puigibert, M. li G., Happacher, J., & Maletinsky, P. (2025). (No. arXiv:2506.20714). 

https://doi.org/10.48550/arXiv.2506.20714

2024

Cavity-assisted resonance fluorescence from a nitrogen-vacancy center in diamond

Yurgens, V., Fontana, Y., Corazza, A., Shields, B. J., Maletinsky, P., & Warburton, R. J. (2024). Npj Quantum Information, 10(1), 112. 

https://doi.org/10.1038/s41534-024-00915-9

Imaging nanomagnetism and magnetic phase transitions in atomically thin CrSBr

Tschudin, M. A., Broadway, D. A., Siegwolf, P., Schrader, C., Telford, E. J., Gross, B., Cox, J., Dubois, A. E. E., Chica, D. G., Rama-Eiroa, R., J. G. Santos, E., Poggio, M., Ziebel, M. E., Dean, C. R., Roy, X., & Maletinsky, P. (2024). Nature Communications, 15(1), 6005. 

https://doi.org/10.1038/s41467-024-49717-9

Identifying the Origin of Thermal Modulation of Exchange Bias in MnPS3 /Fe3 GeTe2 van der Waals Heterostructures

Puthirath Balan, A., Kumar, A., Reiser, P., Vimal Vas, J., Denneulin, T., Lee, K. D., Saunderson, T. G., Tschudin, M., Pellet‐Mary, C., Dutta, D., Schrader, C., Scholz, T., Geuchies, J., Fu, S., Wang, H., Bonanni, A., Lotsch, B. V., Nowak, U., Jakob, G., … Kläui, M. (2024). Advanced Materials, 36(35), 2403685. 

https://doi.org/10.1002/adma.202403685

Integration of a near-field coupling device with scanning probes for Nitrogen-Vacancy magnetometry.

 Happacher, J., Bocquel, J., Shields, B., & Maletinsky, P. (2024). 2024, S52.009. 

https://ui.adsabs.harvard.edu/abs/2024APS..MARS52009H

Resonance fluorescence from a diamond nitrogen-vacancy center in a cavity

Fontana, Y., Yurgens, V., Corazza, A., Shields, B. J., Maletinsky, P., & Warburton, R. J. (2024). Quantum 2.0 Conference and Exhibition (2024), Paper QW4B.9, QW4B.9. 

https://doi.org/10.1364/QUANTUM.2024.QW4B.9

Spin-dependent photodynamics of boron-vacancy centers in hexagonal boron nitride

Clua-Provost, T., Mu, Z., Durand, A., Schrader, C., Happacher, J., Bocquel, J., Maletinsky, P., Fraunié, J., Marie, X., Robert, C., Seine, G., Janzen, E., Edgar, J. H., Gil, B., Cassabois, G., & Jacques, V. (2024). Physical Review B, 110(1), 014104. 

https://doi.org/10.1103/PhysRevB.110.014104

2023

All optical detection of electric fields using single NV centers in diamond at cryogenic temperatures

Bocquel, J., Happacher, J., Broadway, D., & Maletinsky, P. (2023). 2023, B71.009. 

https://ui.adsabs.harvard.edu/abs/2023APS..MARB71009B

All-optical nuclear quantum sensing using nitrogen-vacancy centers in diamond

Bürgler, B., Sjolander, T. F., Brinza, O., Tallaire, A., Achard, J., & Maletinsky, P. (2023). Npj Quantum Information, 9(1), 56. 

https://doi.org/10.1038/s41534-023-00724-6

Interaction of Domain Walls with Grain Boundaries in Uniaxial Insulating Antiferromagnets.

Pylypovskyi, O. V., Hedrich, N., Tomilo, A. V., Kosub, T., Wagner, K., Hübner, R., Shields, B., Sheka, D. D., Fassbender, J., Maletinsky, P., & Makarov, D. (2023). Physical Review Applied, 20(1), 014020. 

https://doi.org/10.1103/PhysRevApplied.20.014020

Low temperature photo-physics of single NV centers in diamond

Happacher, J., Bocquel, J., Broadway, D., Dinani, H., Maze, J., & Maletinsky, P. (2023). 2023, B71.008. 

https://ui.adsabs.harvard.edu/abs/2023APS..MARB71008H

On-demand generation of neutral silicon vacancy centers in diamond

Zhang, Z., Zuber, J., Rodgers, L., Gui, X., Stevenson, P., Li, M., Batzer, M., Grimau, M. L., Shields, B., & Edmonds, A. (2023). APS March Meeting Abstracts, 2023, D70-015. 

https://ui.adsabs.harvard.edu/abs/2023APS..MARD70015Z/abstract

Photophysics of single NV centers in diamond and its application to electric field detection at cryogenic temperatures

Happacher, J., Bocquel, J., & Maletinsky, P. (2023). In Joint Annual Meeting of the Swiss Physical Society and the Austrian Physical Society (pp. 403–403). 

https://inis.iaea.org/records/vxaqh-c6x52

Shallow Silicon Vacancy Centers with Lifetime-Limited Optical Linewidths in Diamond Nanostructures

Zuber, J. A., Li, M., Grimau Puigibert, Marcel. li, Happacher, J., Reiser, P., Shields, B. J., & Maletinsky, P. (2023). Nano Letters, 23(23), 10901–10907. 

https://doi.org/10.1021/acs.nanolett.3c03145

Silicon Vacancy Centers in Diamond for Quantum Sensing

Li, M., Zuber, J., Zhang, Z.-H., Batzer, M., Grimau, Marcel. L., Happacher, J., Shields, B., de Leon, N., & Maletinsky, P. (2023). 2023, T72.007. 

https://ui.adsabs.harvard.edu/abs/2023APS..MART72007L

Temperature-Dependent Photophysics of Single NV Centers in Diamond

Happacher, J., Bocquel, J., Dinani, H. T., Tschudin, M. A., Reiser, P., Broadway, D. A., Maze, J. R., & Maletinsky, P. (2023). Physical Review Letters, 131(8), 086904. 

https://doi.org/10.1103/PhysRevLett.131.086904

Visualizing Magnetic Phase Transitions in 2D van der Waals Materials

Tschudin, M., Broadway, D., Reiser, P., Schrader, C., & Maletinsky, P. (2023). 2023, A44.010. 

https://ui.adsabs.harvard.edu/abs/2023APS..MARA44010T

2022

A diamond-confined open microcavity featuring a high quality-factor and a small mode-volume

Flågan, S., Riedel, D., Javadi, A., Jakubczyk, T., Maletinsky, P., & Warburton, R. J. (2022). Journal of Applied Physics, 131(11), 113102. 

https://doi.org/10.1063/5.0081577

Creation of low-charge-noise nitrogen-vacancy centers in diamond with solid-immersion lens-assisted laser writing

Yurgens, V., Zuber, J. A., Flagan, S., Luca, M. D., Shields, B., Zardo, I., Maletinsky, P., Warburton, R. J., & Jakubczyk, T. (2022). Quantum Technologies 2022, PC12133, PC121330N. 

https://doi.org/10.1117/12.2622388

Low-Temperature Photophysics of Single Nitrogen-Vacancy Centers in Diamond

Happacher, J. (2022). Physical Review Letters, 128(17). 

https://doi.org/10.1103/PhysRevLett.128.177401

Microcavity platform for widely tunable optical double resonance

Flågan, S., Maletinsky, P., Warburton, R. J., & Riedel, D. (2022). Optica, 9(10), 1197–1209. 

https://doi.org/10.1364/OPTICA.466003

Spectrally stable nitrogen-vacancy centers in diamond formed by carbon implantation into thin microstructures

Yurgens, V., Corazza, A., Zuber, J. A., Gruet, M., Kasperczyk, M., Shields, B. J., Warburton, R. J., Fontana, Y., & Maletinsky, P. (2022). Applied Physics Letters, 121(23), 234001. 

https://doi.org/10.1063/5.0126669

Untrained Physically Informed Neural Network for Image Reconstruction of Magnetic Field Sources

Dubois, A. E. E. (2022). Physical Review Applied, 18(6). 

https://doi.org/10.1103/PhysRevApplied.18.064076

Widely tunable, doubly resonant, visible diamond Raman scattering in an open microcavity

Riedel, D., Flagan, S., Maletinsky, P., & Warburton, R. (2022). Laser Resonators, Microresonators, and Beam Control XXIV, PC11987, PC1198707. 

https://doi.org/10.1117/12.2610413

2021

Cavity-Enhanced Raman Scattering for In Situ Alignment and Characterization of Solid-State Microcavities

Riedel, D., Flågan, S., Maletinsky, P., & Warburton, R. (2020). Physical Review Applied, 13.

https://doi.org/10.1103/PhysRevApplied.13.014036

High quality-factor diamond-confined open microcavity

Flågan, S., Riedel, D., Javadi, A., Jakubczyk, T., Maletinsky, P., & Warburton, R. J. (2022). Journal of Applied Physics, 131(11), 113102. 

https://doi.org/10.1063/5.0081577

Laser writing with a solid immersion lens: Towards optically coherent nitrogen-vacancy centers in microstructured diamond

Yurgens, V., Zuber, J., Flågan, S., de Luca, M., Shields, B., Jakubczyk, T., Zardo, I., Maletinsky, P., & Warburton, R. (2021). 2021, S51.003. 

https://ui.adsabs.harvard.edu/abs/2021APS..MARS51003Y

Low-Charge-Noise Nitrogen-Vacancy Centers in Diamond Created Using Laser Writing with a Solid-Immersion Lens

Yurgens, V., Zuber, J. A., Flågan, S., De Luca, M., Shields, B. J., Zardo, I., Maletinsky, P., Warburton, R. J., & Jakubczyk, T. (2021). ACS Photonics, 8(6), 1726–1734. 

https://doi.org/10.1021/acsphotonics.1c00274

Nanoscale mechanics of antiferromagnetic domain walls

Hedrich, N., Wagner, K., Pylypovskyi, O. V., Shields, B. J., Kosub, T., Sheka, D. D., Makarov, D., & Maletinsky, P. (2021). Nature Physics, 17(5), 574–577. 

https://doi.org/10.1038/s41567-020-01157-0

Widely-tunable, doubly-resonant Raman scattering on diamond in an open microcavity

Flågan, S., Maletinsky, P., Warburton, R. J., & Riedel, D. (2022). Optica, 9(10), 1197. 

https://doi.org/10.1364/OPTICA.466003

2020

Investigation of Domain Walls in Single Crystal Cr2O3 Using Nitrogen Vacancy Scanning Magnetometry

(n.d.). Bulletin of the American Physical Society, Volume 65, Number 1. Retrieved November 18, 2025, from 

https://meetings.aps.org/Meeting/MAR20/Session/P42.5

Cavity-Enhanced Raman Scattering for In Situ Alignment and Characterization of Solid-State Microcavities.

Riedel, D., Flågan, S., Maletinsky, P., & Warburton, R. J. (2020). Physical Review Applied, 13(1), 014036. 

https://doi.org/10.1103/PhysRevApplied.13.014036

Laser-written coherent nitrogen-vacancy centers as building block for efficient quantum photonic devices (Conference Presentation).

 Yurgens, V., Zuber, J. A., Flagan, S., Luca, M. D., Shields, B., Jakubczyk, T., Zardo, I., Maletinsky, P., & Warburton, R. J. (2020). Advanced Optical Techniques for Quantum Information, Sensing, and Metrology, 11295, 112950P.

 https://doi.org/10.1117/12.2559472

Parabolic Diamond Scanning Probes for Single-Spin Magnetic Field Imaging

Hedrich, N., Rohner, D., Batzer, M., Maletinsky, P., & Shields, B. J. (2020). Physical Review Applied, 14(6), 064007. 

https://doi.org/10.1103/PhysRevApplied.14.064007

Single crystal diamond pyramids for applications in nanoscale quantum sensing

Batzer, M., Shields, B., Neu, E., Widmann, C., Giese, C., Nebel, C., & Maletinsky, P. (2020). Optical Materials Express, 10(2), 492–500. 

https://doi.org/10.1364/OME.380362

Statistically modeling optical linewidths of nitrogen vacancy centers in microstructures.

 Kasperczyk, M., Zuber, J. A., Barfuss, A., Kölbl, J., Yurgens, V., Flågan, S., Jakubczyk, T., Shields, B., Warburton, R. J., & Maletinsky, P. (2020). Physical Review B, 102(7), 075312. 

https://doi.org/10.1103/PhysRevB.102.075312

2019

(111)-oriented, single crystal diamond tips for nanoscale scanning probe imaging of out-of-plane magnetic fields

Rohner, D., Happacher, J., Reiser, P., Tschudin, M. A., Tallaire, A., Achard, J., Shields, B. J., & Maletinsky, P. (2019). Applied Physics Letters, 115(19), 192401. 

https://doi.org/10.1063/1.5127101

A tunable Fabry-Pérot cavity for diamond-based photonics

Flågan, S., Riedel, D., Shields, B. J., Jakubczyk, T., Maletinsky, P., & Warburton, R. J. (2019). Symposium Latsis 2019 on Diamond Photonics - Physics, Technologies and Applications (2019), Paper 49, 49. 

https://doi.org/10.1364/DP.2019.49

Color Centers in Diamond as Novel Probes of Superconductivity

Acosta, V. M., Bouchard, L. S., Budker, D., Folman, R., Lenz, T., Maletinsky, P., Rohner, D., Schlussel, Y., & Thiel, L. (2019). Journal of Superconductivity and Novel Magnetism, 32(1), 85–95. 

https://doi.org/10.1007/s10948-018-4877-3

Determination of intrinsic effective fields and microwave polarizations by high-resolution spectroscopy of single nitrogen-vacancy center spins

Kölbl, J., Kasperczyk, M., Bürgler, B., Barfuss, A., & Maletinsky, P. (2019). New Journal of Physics, 21(11), 113039. 

https://doi.org/10.1088/1367-2630/ab54a8

Initialization of Single Spin Dressed States using Shortcuts to Adiabaticity

Kölbl, J., Barfuss, A., Kasperczyk, M. S., Thiel, L., Clerk, A. A., Ribeiro, H., & Maletinsky, P. (2019). Physical Review Letters, 122(9), 090502. 

https://doi.org/10.1103/PhysRevLett.122.090502

Nanomagnetism of Cr2O3 investigated using parabolic diamond pillars

Hedrich, N., Appel, P., Shields, B., Kosub, T., Makarov, D., & Maletinsky, P. (2019). Symposium Latsis 2019 on Diamond Photonics - Physics, Technologies and Applications (2019), Paper 43, 43. 

https://doi.org/10.1364/DP.2019.43

Nanoscale Magnetometry with Single Spins in Diamond at Low Temperature

Rohner, D., Thiel, L., Wang, Z., Tschudin, M. A., Morpurgo, A. F., & Maletinsky, P. (2019). Symposium Latsis 2019 on Diamond Photonics - Physics, Technologies and Applications (2019), Paper 68, 68. 

https://doi.org/10.1364/DP.2019.68

Probing magnetism in 2D materials at the nanoscale with single-spin microscopy

Thiel, L., Wang, Z., Tschudin, M. A., Rohner, D., Gutiérrez-Lezama, I., Ubrig, N., Gibertini, M., Giannini, E., Morpurgo, A. F., & Maletinsky, P. (2019). Science, 364(6444), 973–976. 

https://doi.org/10.1126/science.aav6926

Spin-stress and spin-strain coupling in diamond-based hybrid spin oscillator systems

Barfuss, A., Kasperczyk, M., Kölbl, J., & Maletinsky, P. (2019). Physical Review B, 99(17), 174102. 

https://doi.org/10.1103/PhysRevB.99.174102

Toward Novel Coherence Protection and Sensing Techniques: Closed Counter Interaction Using a Single Spin

Kasperczyk, M., Kölbl, J., Barfuss, A., & Maletinsky, P. (2019). 2019 Conference on Lasers and Electro-Optics (CLEO), 1–2. 

https://doi.org/10.1364/CLEO_AT.2019.JW3A.1

2018

Advanced Fabrication of Single-crystal Diamond Membranes for Quantum Technologies 

(No. arXiv:1802.08971). Challier, M., Sonusen, S., Barfuss, A., Rohner, D., Riedel, D., Koelbl, J., Ganzhorn, M., Appel, P., Maletinsky, P., & Neu, E. (2018). arXiv. 

https://doi.org/10.48550/arXiv.1802.08971

Microwave Device Characterization Using a Widefield Diamond Microscope.

Horsley, A., Appel, P., Wolters, J., Achard, J., Tallaire, A., Maletinsky, P., & Treutlein, P. (2018). Physical Review Applied, 10(4), 044039. 

https://doi.org/10.1103/PhysRevApplied.10.044039

Phase-controlled coherent dynamics of a single spin under closed-contour interaction

Barfuss, A., Kölbl, J., Thiel, L., Teissier, J., Kasperczyk, M., & Maletinsky, P. (2018). Nature Physics, 14(11), 1087–1091. 

https://doi.org/10.1038/s41567-018-0231-8

Real-Space Probing of the Local Magnetic Response of Thin-Film Superconductors Using Single Spin Magnetometry

Rohner, D., Thiel, L., Müller, B., Kasperczyk, M., Kleiner, R., Koelle, D., & Maletinsky, P. (2018). Sensors, 18(11), 3790.

https://doi.org/10.3390/s18113790

Skyrmion morphology in ultrathin magnetic films

Gross, I., Akhtar, W., Hrabec, A., Sampaio, J., Martinez, L. J., Chouaieb, S., Shields, B. J., Maletinsky, P., Thiaville, A., Rohart, S., & Jacques, V. (2018). Physical Review Materials, 2(2), 024406. 

https://doi.org/10.1103/PhysRevMaterials.2.024406

Wide-Field Imaging of Superconductor Vortices with Electron Spins in Diamond

Schlussel, Y., Lenz, T., Rohner, D., Bar-Haim, Y., Bougas, L., Groswasser, D., Kieschnick, M., Rozenberg, E., Thiel, L., Waxman, A., Meijer, J., Maletinsky, P., Budker, D., & Folman, R. (2018). Physical Review Applied, 10(3), 034032. 

https://doi.org/10.1103/PhysRevApplied.10.034032

2017

Deterministic Enhancement of Coherent Photon Generation from a Nitrogen-Vacancy Center in Ultrapure Diamond

Riedel, D., Söllner, I., Shields, B. J., Starosielec, S., Appel, P., Neu, E., Maletinsky, P., & Warburton, R. J. (2017). Physical Review X, 7(3), 031040. 

https://doi.org/10.1103/PhysRevX.7.031040

Hybrid continuous dynamical decoupling: A photon-phonon doubly dressed spin

Teissier, J., Barfuss, A., & Maletinsky, P. (2017). Journal of Optics, 19(4), 044003. 

https://doi.org/10.1088/2040-8986/aa5f62

Purely antiferromagnetic magnetoelectric random access memory

Kosub, T., Kopte, M., Hühne, R., Appel, P., Shields, B., Maletinsky, P., Hübner, R., Liedke, M. O., Fassbender, J., Schmidt, O. G., & Makarov, D. (2017). Nature Communications, 8(1), 13985. 

https://doi.org/10.1038/ncomms13985

Real-space imaging of non-collinear antiferromagnetic order with a single-spin magnetometer

Gross, I., Akhtar, W., Garcia, V., Martínez, L. J., Chouaieb, S., Garcia, K., Carrétéro, C., Barthélémy, A., Appel, P., Maletinsky, P., Kim, J.-V., Chauleau, J. Y., Jaouen, N., Viret, M., Bibes, M., Fusil, S., & Jacques, V. (2017). Nature, 549(7671), 252–256. 

https://doi.org/10.1038/nature23656

Widefield Microwave Imaging using NV Centres

Horsley, A., Wolters, J., Appel, P., Wood, J., Achard, J., Tallaire, A., Maletinsky, P., & Treutlein, P. (2017). 2017 European Conference on Lasers and Electro-Optics and European Quantum Electronics Conference (2017), Paper EA_11_3, EA_11_3.

https://opg.optica.org/abstract.cfm?uri=EQEC-2017-EA_11_3

2016

Fabrication of all diamond scanning probes for nanoscale magnetometry

Appel, P., Neu, E., Ganzhorn, M., Barfuss, A., Batzer, M., Gratz, M., Tschöpe, A., & Maletinsky, P. (2016). Review of Scientific Instruments, 87(6), 063703. 

https://doi.org/10.1063/1.4952953

Quantitative nanoscale vortex imaging using a cryogenic quantum magnetometer

Thiel, L., Rohner, D., Ganzhorn, M., Appel, P., Neu, E., Müller, B., Kleiner, R., Koelle, D., & Maletinsky, P. (2016). Nature Nanotechnology, 11(8), 677–681. 

https://doi.org/10.1038/nnano.2016.63

Site selective growth of heteroepitaxial diamond nanoislands containing single SiV centers

Arend, C., Appel, P., Becker, J. N., Schmidt, M., Fischer, M., Gsell, S., Schreck, M., Becher, C., Maletinsky, P., & Neu, E. (2016). Applied Physics Letters, 108(6), 063111. 

https://doi.org/10.1063/1.4941804

2015

Decoherence imaging of spin ensembles using a scanning single-electron spin in diamond

Luan, L., Grinolds, M. S., Hong, S., Maletinsky, P., Walsworth, R. L., & Yacoby, A. (2015). Scientific Reports, 5(1), 8119. 

https://doi.org/10.1038/srep08119

High-efficiency resonant amplification of weak magnetic fields for single spin magnetometry at room temperature

Trifunovic, L., Pedrocchi, F. L., Hoffman, S., Maletinsky, P., Yacoby, A., & Loss, D. (2015). Nature Nanotechnology, 10(6), 541–546.

https://doi.org/10.1038/nnano.2015.74

Low-Loss Broadband Antenna for Efficient Photon Collection from a Coherent Spin in Diamond

Riedel, D., Rohner, D., Ganzhorn, M., Kaldewey, T., Appel, P., Neu, E., Warburton, R. J., & Maletinsky, P. (2014). Physical Review Applied, 2(6), 064011. 

https://doi.org/10.1103/PhysRevApplied.2.064011

Nanoscale microwave imaging with a single electron spin in diamond

Appel, P., Ganzhorn, M., Neu, E., & Maletinsky, P. (2015). New Journal of Physics, 17(11), 112001. 

https://doi.org/10.1088/1367-2630/17/11/112001

Stokes and anti-Stokes Raman spectra of the high-energy C–C stretching modes in graphene and diamond

Jorio, A., Kasperczyk, M., Clark, N., Neu, E., Maletinsky, P., Vijayaraghavan, A., & Novotny, L. (2015). Physica Status Solidi (b), 252(11), 2380–2384. 

https://doi.org/10.1002/pssb.201552224

Stokes–anti-Stokes correlations in diamond

Kasperczyk, M., Jorio, A., Neu, E., Maletinsky, P., & Novotny, L. (2015). Optics Letters, 40(10), 2393–2396. 

https://doi.org/10.1364/OL.40.002393

Strong mechanical driving of a single electron spin

Barfuss, A., Teissier, J., Neu, E., Nunnenkamp, A., & Maletinsky, P. (2015). Nature Physics, 11(10), 820–824. 

https://doi.org/10.1038/nphys3411

2014

Coherent Optical Transitions in Implanted Nitrogen Vacancy Centers

Chu, Y., de Leon, N. P., Shields, B. J., Hausmann, B., Evans, R., Togan, E., Burek, M. J., Markham, M., Stacey, A., Zibrov, A. S., Yacoby, A., Twitchen, D. J., Loncar, M., Park, H., Maletinsky, P., & Lukin, M. D. (2014). Nano Letters, 14(4), 1982–1986. 

https://doi.org/10.1021/nl404836p

Low-Loss Broadband Antenna for Efficient Photon Collection from a Coherent Spin in Diamond

Riedel, D., Rohner, D., Ganzhorn, M., Kaldewey, T., Appel, P., Neu, E., Warburton, R. J., & Maletinsky, P. (2014). Physical Review Applied, 2(6), 064011. 

https://doi.org/10.1103/PhysRevApplied.2.064011

Magnetometry with nitrogen-vacancy defects in diamond

Rondin, L., Tetienne, J.-P., Hingant, T., Roch, J.-F., Maletinsky, P., & Jacques, V. (2014). Reports on Progress in Physics, 77(5), 056503. 

https://doi.org/10.1088/0034-4885/77/5/056503

Optical-Phonon Resonances with Saddle-Point Excitons in Twisted-Bilayer Graphene

Jorio, A., Kasperczyk, M., Clark, N., Neu, E., Maletinsky, P., Vijayaraghavan, A., & Novotny, L. (2014). Nano Letters, 14(10), 5687–5692. 

https://doi.org/10.1021/nl502412g

Photonic nano-structures on (111)-oriented diamond

Neu, E., Appel, P., Ganzhorn, M., Miguel-Sánchez, J., Lesik, M., Mille, V., Jacques, V., Tallaire, A., Achard, J., & Maletinsky, P. (2014). Applied Physics Letters, 104(15), 153108.

https://doi.org/10.1063/1.4871580

Strain Coupling of a Nitrogen-Vacancy Center Spin to a Diamond Mechanical Oscillator

Teissier, J., Barfuss, A., Appel, P., Neu, E., & Maletinsky, P. (2014). Physical Review Letters, 113(2), 020503. 

https://doi.org/10.1103/PhysRevLett.113.020503

Subnanometre resolution in three-dimensional magnetic resonance imaging of individual dark spins

Grinolds, M. S., Warner, M., De Greve, K., Dovzhenko, Y., Thiel, L., Walsworth, R. L., Hong, S., Maletinsky, P., & Yacoby, A. (2014). Nature Nanotechnology, 9(4), 279–284. 

https://doi.org/10.1038/nnano.2014.30

2013

Nanoscale magnetic imaging of a single electron spin under ambient conditions. 

Grinolds, M. S., Hong, S., Maletinsky, P., Luan, L., Lukin, M. D., Walsworth, R. L., & Yacoby, A. (2013). Nature Physics, 9(4), 215–219. 

https://doi.org/10.1038/nphys2543

Nuclear spin physics in quantum dots: An optical investigation.

Urbaszek, B., Marie, X., Amand, T., Krebs, O., Voisin, P., Maletinsky, P., Högele, A., & Imamoglu, A. (2013). Reviews of Modern Physics, 85(1), 79–133. 

https://doi.org/10.1103/RevModPhys.85.79

2012

A robust scanning diamond sensor for nanoscale imaging with single nitrogen-vacancy centres

Maletinsky, P., Hong, S., Grinolds, M. S., Hausmann, B., Lukin, M. D., Walsworth, R. L., Loncar, M., & Yacoby, A. (2012). Nature Nanotechnology, 7(5), 320–324. 

https://doi.org/10.1038/nnano.2012.50

Coherent, Mechanical Control of a Single Electronic Spin

Hong, S., Grinolds, M. S., Maletinsky, P., Walsworth, R. L., Lukin, M. D., & Yacoby, A. (2012). Nano Letters, 12(8), 3920–3924. 

https://doi.org/10.1021/nl300775c

Integrated Diamond Networks for Quantum Nanophotonics

Hausmann, B. J. M., Shields, B., Quan, Q., Maletinsky, P., McCutcheon, M., Choy, J. T., Babinec, T. M., Kubanek, A., Yacoby, A., Lukin, M. D., & Lonc̆ar, M. (2012). Nano Letters, 12(3), 1578–1582. 

https://doi.org/10.1021/nl204449n

2011

Enhanced single-photon emission from a diamond–silver aperture

Choy, J. T., Hausmann, B. J. M., Babinec, T. M., Bulu, I., Khan, M., Maletinsky, P., Yacoby, A., & Lončar, M. (2011). Nature Photonics, 5(12), 738–743. 

https://doi.org/10.1038/nphoton.2011.249

High-resolution spectroscopy on trapped molecular ions in rotating electric fields: A new approach for measuring the electron electric dipole moment

Leanhardt, A. E., Bohn, J. L., Loh, H., Maletinsky, P., Meyer, E. R., Sinclair, L. C., Stutz, R. P., & Cornell, E. A. (2011). Journal of Molecular Spectroscopy, 270(1), 1–25. 

https://doi.org/10.1016/j.jms.2011.06.007

Quantum control of proximal spins using nanoscale magnetic resonance imaging

Grinolds, M. S., Maletinsky, P., Hong, S., Lukin, M. D., Walsworth, R. L., & Yacoby, A. (2011). Nature Physics, 7(9), 687–692. 

https://doi.org/10.1038/nphys1999

Before 2011

  • O. Krebs, P. Maletinsky, T. Amand, B. Urbaszek, A. Lematre, P. Voisin, X. Marie, A. Imamoglu “Anomalous Hanle Effect due to Optically Created Transverse Overhauser Field in Single InAs/GaAs Quantum Dots”
    Phys. Rev. Lett. 104, 056603 (2010)
  • C. Latta, A. Högele, Y. Zhao, A. N. Vamivakas, P. Maletinsky, M. Kroner, J. Dreiser, I. Carusotto, A. Badolato, D. Schuh, W. Wegscheider, M. Atature, A. Imamoglu
    “Confluence of resonant laser excitation and bi-directional quantum dot nuclear spin polarization”
    Nature Physics 5, 758 (2009)
  • P. Maletinsky, M. Kroner and A. Imamoglu,
    “Breakdown of the nuclear-spin-temperature approach in quantum-dot demagnetization experiments”
    Nature Physics 5, 407 (2009)

 

 

Book contributions:

 

 

Monographs:

  • P. Maletinsky,
    “Polarization and manipulation of a mesoscopic nuclear spin ensemble using a single confined electron spin ”,
    Ph.D. Thesis, ETH Zürich, 2008 (and SVH-Verlag, Saarbrücken, 2008)

 

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