A. Fernandez-pacheco, Three-dimensional nanomagnetism, Nat. Commun, vol.8, p.15756, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01536109

S. S. Parkin, M. Hayashi, and L. Thomas, Magnetic domain-wall racetrack memory, Science, vol.320, pp.190-194, 2008.

D. Karnaushenko, Self-assembled on-chip-integrated giant magnetoimpedance sensorics, Adv. Mater, vol.27, pp.6582-6589, 2015.

A. Hoffmann and S. D. Bader, Opportunities at the frontiers of spintronics, Phys. Rev. Appl, vol.4, p.47001, 2015.

O. Fruchart, Bloch-point-mediated topological transformations of magnetic domain walls in cylindrical nanowires, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01825020

N. Biziere, Imaging the fine structure of a magnetic domain wall in a ni nanocylinder, Nano Lett, vol.13, pp.2053-2057, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01143150

A. N. Bogdanov and D. A. Yablonskii, Thermodynamically stable "vortices" in magnetically ordered crystals. the mixed state of magnets, Zh. Eksp. Teor. Fiz, vol.95, pp.178-182, 1989.

F. N. Rybakov, A. B. Borisov, and A. N. Bogdanov, Three-dimensional skyrmion states in thin films of cubic helimagnets, Phys. Rev. B Condens. Matter Mater. Phys, vol.87, p.94424, 2013.

F. N. Rybakov, A. B. Borisov, S. Blügel, and N. S. Kiselev, New spiral state and skyrmion lattice in 3D model of chiral magnets, New J. Phys, vol.18, p.45002, 2016.

F. Zheng, Experimental observation of chiral magnetic bobbers in b20-type fege, Nat. Nanotechnol, vol.13, pp.451-455, 2018.

V. P. Kravchuk, Multiplet of skyrmion states on a curvilinear defect: Reconfigurable skyrmion lattices, Phys. Rev. Lett, vol.120, p.67201, 2018.

C. Nisoli, R. Moessner, P. Schiffer, and . Colloquium, Artificial spin ice: Designing and imaging magnetic frustration, Rev. Mod. Phys, vol.85, pp.1473-1490, 2013.

R. Streubel, Retrieving spin textures on curved magnetic thin films with full-field soft x-ray microscopies, Nat. Commun, vol.6, p.7612, 2015.

M. Suzuki, Three-dimensional visualization of magnetic domain structure with strong uniaxial anisotropy via scanning hard X-ray microtomography, Appl. Phys. Express, vol.11, p.36601, 2018.

C. Donnelly, Tomographic reconstruction of a three-dimensional magnetization vector field, New J. Phys, vol.20, p.83009, 2018.

G. Lai, Three-dimensional reconstruction of of magnetic vector fields using electron-holographic interferometry, J. Appl. Phys, vol.75, pp.4593-4598, 1994.

A. Lubk, Nanoscale three-dimensional reconstruction of electric and magnetic stray fields around nanowires, Appl. Phys. Lett, vol.105, p.173110, 2014.

D. Wolf, 3d magnetic induction maps of nanoscale materials revealed by electron holographic tomography, Chem. Mater, vol.27, pp.6771-6778, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01707386

P. Simon, Synthesis and three-dimensional magnetic field mapping of co2fega heusler nanowires at 5 nm resolution, Nano Lett, vol.16, pp.114-120, 2016.

H. Lichte, Performance limits of electron holography, Ultramicroscopy, vol.108, pp.256-262, 2008.

F. Röder, A. Lubk, D. Wolf, and T. Niermann, Noise estimation for off-axis electron holography, Ultramicroscopy, vol.144, pp.32-42, 2014.

C. Phatak, A. K. Petford-long, and M. De-graef, Three-dimensional study of the vector potential of magnetic structures, Phys. Rev. Lett, vol.104, p.253901, 2010.

T. Tanigaki, Three-dimensional observation of magnetic vortex cores in stacked ferromagnetic discs, Nano Lett, vol.15, pp.1309-1314, 2015.

J. Caron, Model-based reconstruction of magnetisation distributions in nanostructures from electron optical phase images, of Key Technologies (Forschungszentrum Jülich GmbH Zentralbibliothek, vol.177, 2018.

K. A. Mohan, P. Kc, C. Phatak, M. De-graef, and C. A. Bouman, Model-based iterative reconstruction of magnetization using vector field electron tomography, IEEE Trans. Comput. Imaging, vol.4, pp.432-446, 2018.

Y. Aharonov and D. Bohm, Significance of electromagnetic potentials in the quantum theory, Phys. Rev, vol.115, pp.485-491, 1959.

M. Teague, Deterministic phase retrieval: a Green's function solution, J. Opt. Soc. Am, vol.73, pp.1434-1441, 1983.

A. Lubk, Holography and tomography with electrons: From Quantum States to Three-Dimensional Fields and Back, Advances in Imaging and Electron Physics, vol.206, pp.1-14, 2018.

T. Kasama, R. Dunin-borkowski, and M. Beleggia, Electron Holography of Magnetic Materials, 2011.

P. A. Midgley and M. Weyland, 3d electron microscopy in the physical sciences: the development of z-contrast and eftem tomography, Ultramicroscopy, vol.96, pp.413-431, 2003.

D. Reyes, N. Biziere, B. Warot-fonrose, T. Wade, and C. Gatel, Magnetic configurations in co/cu multilayered nanowires: Evidence of structural and magnetic interplay, Nano Lett, vol.16, pp.1230-1236, 2016.
URL : https://hal.archives-ouvertes.fr/cea-01400872

M. Van-heel and M. Schatz, Fourier shell correlation threshold criteria, J. Struct. Biol, vol.151, pp.250-262, 2005.

P. Ogrodnik, Field-and temperature-modulated spin diode effect in a GMR nanowire with dipolar coupling, J. Phys. D Appl. Phys, vol.52, p.65002, 2019.

C. Gatel, J. Dupuy, F. Houdellier, and M. J. Hytch, Unlimited acquisition time in electron holography by automated feedback control of transmission electron microscope, Appl. Phys. Lett, vol.113, p.133102, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01884057

K. Harada, A. Tonomura, Y. Togawa, T. Akashi, and T. Matsuda, Doublebiprism electron interferometry, Appl. Phys. Lett, vol.84, pp.3229-3231, 2004.

D. Wolf, A. Lubk, H. Lichte, and H. Friedrich, Towards automated electron holographic tomography for 3d mapping of electrostatic potentials, Ultramicroscopy, vol.110, pp.390-399, 2010.

M. Lehmann and H. Lichte, Tutorial on off-axis electron holography, Microsc. Micro, vol.8, pp.447-466, 2002.

D. C. Ghiglia, M. D. Pritt, and . Two, Dimensional Phase Unwrapping: Theory, Algorithms and Software, 1998.

A. Lubk, Nanometer-scale tomographic reconstruction of threedimensional electrostatic potentials in gaas/algaas core-shell nanowires, Phys. Rev. B, vol.90, p.125404, 2014.

P. A. Penczek, J. Zhu, and J. Frank, A common-lines based method for determining orientations for n > 3 particle projections simultaneously, Ultramicroscopy, vol.63, pp.205-218, 1996.

A. S. Frangakis and R. Hegerl, Noise reduction in electron tomographic reconstructions using nonlinear anisotropic diffusion, J. Struct. Biol, vol.135, pp.239-250, 2001.

D. Wolf, A. Lubk, and H. Lichte, Weighted simultaneous iterative reconstruction technique for single-axis tomography, Ultramicroscopy, vol.136, pp.15-25, 2014.

D. Wolf, Three-dimensional composition and electric potential mapping of iii-v core-multishell nanowires by correlative stem and holographic tomography, Nano Lett, vol.18, pp.4777-4784, 2018.

C. Phatak, M. Beleggia, and M. De-graef, Vector field electron tomography of magnetic materials: theoretic development, Ultramicroscopy, vol.108, pp.503-513, 2008.

D. G. Donahue, M. J. Porter, and . Oommf, User's Guide Version 1.0, Interagency Report NISTIR 6376, 1999.