TiN-NbN-TiN and Permalloy Nanostructures for Applications in Transmission Electron Microscopy
暂无分享,去创建一个
[1] M. I. Faley,et al. TiN nanobridge Josephson junctions and nanoSQUIDs on SiN-buffered Si , 2022, Superconductor Science and Technology.
[2] A. Ehiasarian,et al. TiN/NbN Nanoscale Multilayer Coatings Deposited by High Power Impulse Magnetron Sputtering to Protect Medical-Grade CoCrMo Alloys , 2021, Coatings.
[3] Yuchen Liu,et al. Titanium Nitride as a New Prospective Material for NanoSQUIDs and Superconducting Nanobridge Electronics , 2021, Nanomaterials.
[4] R. Dunin‐Borkowski,et al. Bulk nanomachining of cantilevers with Nb nanoSQUIDs based on nanobridge Josephson junctions , 2021 .
[5] R. Dunin-Borkowski,et al. NanoSQUIDs based on Nb nanobridges , 2020, Journal of Physics: Conference Series.
[6] L. Frunzio,et al. Free-standing silicon shadow masks for transmon qubit fabrication , 2019, 1911.05924.
[7] Y. Ivry,et al. On-chip integrable planar NbN nanoSQUID with broad temperature and magnetic-field operation range , 2019, AIP Advances.
[8] D. Muller,et al. Epitaxial integration and properties of SrRuO3 on silicon , 2018, APL Materials.
[9] R. Cristiano,et al. NanoSQUIDs based on niobium nitride films , 2017 .
[10] M. Cantoni,et al. Quantitative imaging of flux vortices in the type-II superconductor MgB2 using cryo-Lorentz transmission electron microscopy , 2013, 1401.4062.
[11] L. You,et al. Improvement of the superconducting properties of NbN thin film on single-crystal silicon substrate by using a TiN buffer layer , 2013 .
[12] P. Grütter,et al. Effect of using stencil masks made by focused ion beam milling on permalloy (Ni81Fe19) nanostructures , 2013, Nanotechnology.
[13] J. C. Loudon,et al. Imaging flux vortices in type II superconductors with a commercial transmission electron microscope. , 2008, Ultramicroscopy.
[14] D. Mailly,et al. High resolution magnetic imaging: MicroSQUID Force Microscopy , 2008 .
[15] L. Houben,et al. Atomic-precision determination of the reconstruction of a 90 degree tilt boundary in YBa2Cu3O7-delta by aberration corrected HRTEM. , 2006, Ultramicroscopy.
[16] Y. Hahn,et al. Inductively coupled plasma etching of Ta, Co, Fe, NiFe, NiFeCo, and MnNi with Cl2/Ar discharges , 2004 .
[17] H. Barshilia,et al. Corrosion behavior of nanolayered TiN/NbN multilayer coatings prepared by reactive direct current magnetron sputtering process , 2004 .
[18] K. Harada,et al. Observation of structures of chain vortices inside anisotropic high- Tc superconductors. , 2002, Physical review letters.
[19] C. Musil,et al. Direct growth of nanostructures by deposition through an Si3N4 shadow mask , 1999 .
[20] Thomas Haase,et al. CMOS-compatible integration of thin ferromagnetic films , 1994 .
[21] K. Harada,et al. Real-time observation of vortex lattices in a superconductor by electron microscopy , 1992, Nature.
[22] Yamada,et al. Evidence for Aharonov-Bohm effect with magnetic field completely shielded from electron wave. , 1986, Physical review letters.
[23] Michael Tinkham,et al. Self‐heating hotspots in superconducting thin‐film microbridges , 1974 .
[24] R. S. Smith,et al. Structural and Magnetic Properties of Permalloy Films , 1959 .
[25] H. D. Arnold,et al. Permalloy, an alloy of remarkable magnetic properties , 1923 .
[26] R. Cowburn,et al. Edge roughness and coercivity in magnetic nanostructures , 2005 .
[27] Konstantin K. Likharev,et al. Superconducting weak links , 1979 .
[28] A. Larkin,et al. JOSEPHSON EFFECT IN SUPERCONDUCTING POINT CONTACTS. , 1969 .