Works matching DE "HIGH temperature superconductivity"
Results: 498
Striking gold in the 1990s: The discovery of...
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- Science, Technology & Human Values, 1992, v. 17, n. 4, p. 506, doi. 10.1177/016224399201700405
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Epitaxial Oxides on Semiconductors: From Fundamentals to New Devices.
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- Advanced Functional Materials, 2020, v. 30, n. 18, p. 1, doi. 10.1002/adfm.201901597
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Thin‐Film‐Based Integrated High‐Transition‐Temperature Superconductor Devices.
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- Advanced Functional Materials, 2020, v. 30, n. 18, p. 1, doi. 10.1002/adfm.201807379
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The future of academic integrity in the age of artificial intelligence.
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- Graefe's Archive of Clinical & Experimental Ophthalmology, 2024, v. 262, n. 5, p. 1375, doi. 10.1007/s00417-024-06385-1
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Inhomogeneity of charge-density-wave order and quenched disorder in a high-T<sub>c</sub> superconductor.
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- Nature, 2015, v. 525, n. 7569, p. 359, doi. 10.1038/nature14987
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From quantum matter to high-temperature superconductivity in copper oxides.
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- Nature, 2015, v. 518, n. 7538, p. 179, doi. 10.1038/nature14165
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High-temperature superconductivity: Electron mirages in an iron salt.
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- Nature, 2014, v. 515, n. 7526, p. 205, doi. 10.1038/515205a
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Normal-state nodal electronic structure in underdoped high-T<sub>c</sub> copper oxides.
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- Nature, 2014, v. 511, n. 7507, p. 61, doi. 10.1038/nature13326
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Magnetic-field-induced charge-stripe order in the high-temperature superconductor YBa<sub>2</sub>Cu<sub>3</sub>O<sub>y</sub>.
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- Nature, 2011, v. 477, n. 7363, p. 191, doi. 10.1038/nature10345
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High-temperature superconductivity at 25: Still in suspense.
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- Nature, 2011, v. 475, n. 7356, p. 280, doi. 10.1038/475280a
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Superconductor-insulator transition in La<sub>2 − x</sub>Sr<sub>x</sub>CuO<sub>4</sub> at the pair quantum resistance.
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- Nature, 2011, v. 472, n. 7344, p. 458, doi. 10.1038/nature09998
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Pressure‐Dependent "Insulator–Metal–Insulator" Behavior in Sr‐Doped La<sub>3</sub>Ni<sub>2</sub>O<sub>7</sub>.
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- Advanced Electronic Materials, 2024, v. 10, n. 9, p. 1, doi. 10.1002/aelm.202400078
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Graphene Superconductivity at Room‐Temperature of a Wide Range and Standard Atmosphere, Based on Vacuum Channels and White‐Light Interferometry.
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- Advanced Electronic Materials, 2022, v. 8, n. 1, p. 1, doi. 10.1002/aelm.202100595
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Pressure‐Induced Superconductivity in Topological Semimetal Candidate TaTe<sub>4</sub>.
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- Advanced Electronic Materials, 2020, v. 6, n. 3, p. 1, doi. 10.1002/aelm.201901260
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Formation of gas folds during pressing of Y[sub 1]Ba[sub 2]Cu[sub 3]O[sub 7-δ] powder.
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- Technical Physics Letters, 1999, v. 25, n. 8, p. 624, doi. 10.1134/1.1262577
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Characteristics of series-connected chains of YBaCuO Josephson junctions on a bicrystal substrate.
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- Technical Physics Letters, 1998, v. 24, n. 12, p. 983, doi. 10.1134/1.1262342
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Model of high-T[sub c] superconductivity in low-coordination semiconductors and polymers.
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- Technical Physics Letters, 1998, v. 24, n. 4, p. 265, doi. 10.1134/1.1262077
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A universal expression for the propagation rate of the normal phase over a high-temperature superconducting film with a transport current.
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- Technical Physics Letters, 1998, v. 24, n. 1, p. 51, doi. 10.1134/1.1261990
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Unusual metallic state in superconducting A15-type La4H23.
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- National Science Review, 2024, v. 11, n. 12, p. 1, doi. 10.1093/nsr/nwae149
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The current status and future development of high-temperature conventional superconductivity.
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- National Science Review, 2024, v. 11, n. 7, p. 1, doi. 10.1093/nsr/nwae047
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Pressure-induced hydrogen-dominant high-temperature superconductors.
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- National Science Review, 2024, v. 11, n. 7, p. 1, doi. 10.1093/nsr/nwae004
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Ternary superhydrides for high-temperature superconductivity at low pressures.
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- National Science Review, 2024, v. 11, n. 7, p. 1, doi. 10.1093/nsr/nwae003
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Origin of the near-room temperature resistance transition in lutetium with H2/N2 gas mixture under high pressure.
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- National Science Review, 2024, v. 11, n. 7, p. 1, doi. 10.1093/nsr/nwad337
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Clathrate metal superhydrides under high-pressure conditions: enroute to room-temperature superconductivity.
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- National Science Review, 2024, v. 11, n. 7, p. 1, doi. 10.1093/nsr/nwad270
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Are hydrides under high-pressure–high-temperature superconductors?
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- National Science Review, 2024, v. 11, n. 7, p. 1, doi. 10.1093/nsr/nwad174
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Manipulating high-temperature superconductivity by oxygen doping in Bi2Sr2CaCu2O8+δ thin flakes.
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- National Science Review, 2022, v. 9, n. 10, p. 1, doi. 10.1093/nsr/nwac089
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Direct observation of nodeless superconductivity and phonon modes in electron-doped copper oxide Sr1−xNdxCuO2.
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- National Science Review, 2022, v. 9, n. 4, p. 1, doi. 10.1093/nsr/nwab225
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Effect of solution treatment under load on microstructure and fabrication of porous NiTi shape memory alloy by self-propagating high temperature synthesis.
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- Powder Metallurgy, 2009, v. 52, n. 1, p. 36, doi. 10.1179/174329008X315557
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A Simple and Fast Computation Equivalent Circuit Model to Investigate the Effect of Tape Twisting on the AC Loss of HTS Cables.
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- Engineering, Technology & Applied Science Research, 2022, v. 12, n. 1, p. 8168, doi. 10.48084/etasr.4382
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THE PERSPECTIVE OF HIGH-TEMPERATURE SUPERCONDUCTIVITY ELTCTRICAL EQUIPMENT APPLICATION FOR TRACTION POWER SUPPLY AND THE PROBLEMS OF ELECTROMAGNETIC COMPATIBILITY.
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- Journal of Information Technology & Applications, 2015, v. 5, n. 1, p. 33, doi. 10.7251/JIT1501033B
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Emergence of Superconductivity in Indium Triphosphate via Pressure‐Tuned Interlayer Bond Formation.
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- Physica Status Solidi - Rapid Research Letters, 2025, v. 19, n. 1, p. 1, doi. 10.1002/pssr.202400206
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Confinement‐Enhanced Rashba Spin–Orbit Coupling at the LaAlO<sub>3</sub>/KTaO<sub>3</sub> Interface via LaAlO<sub>3</sub> Thickness Control.
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- Physica Status Solidi - Rapid Research Letters, 2023, v. 17, n. 6, p. 1, doi. 10.1002/pssr.202200441
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SIR VAUGHAN FREDERICK RANDAL JONES 31 DECEMBER, 1952 -- 6 SEPTEMBER, 2020.
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- New Zealand Journal of Mathematics, 2021, v. 52, p. i, doi. 10.53733/173
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Enhanced Conductivity of Multilayer Copper–Carbon Nanofilms via Plasma Immersion Deposition.
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- Nano-Micro Letters, 2025, v. 17, n. 1, p. 1, doi. 10.1007/s40820-024-01628-6
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FROM BCS TO THE LHC.
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- International Journal of Modern Physics A: Particles & Fields; Gravitation; Cosmology; Nuclear Physics, 2008, v. 23, n. 11, p. 1627, doi. 10.1142/S0217751X0804038X
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Differential renormalization-group approach to the layered sine-Gordon model.
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- Philosophical Magazine, 2006, v. 86, n. 13/14, p. 2033, doi. 10.1080/14786430500080049
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Ultracold atoms in optical lattices: tunable quantum many-body systems.
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- Philosophical Magazine, 2006, v. 86, n. 13/14, p. 1891, doi. 10.1080/14786430500228770
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Why are cuprates the only high-temperature superconductors?
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- Philosophical Magazine, 2005, v. 85, n. 9, p. 931, doi. 10.1080/14786430412331314645
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Thallium based high temperature superconductors for microwave device applications.
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- Materials Science & Technology, 2003, v. 19, n. 3, p. 269, doi. 10.1179/026708303225009724
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Use of SEM/FIB and Machine Learning to Characterize REBCO Conductors.
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- Microscopy & Microanalysis, 2024, v. 30, p. 1, doi. 10.1093/mam/ozae044.217
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Determination of the refrigerating capacity of cryogenic gas machines for cooling current leads containing high-temperature superconductors.
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- Journal of Engineering Physics & Thermophysics, 2011, v. 84, n. 3, p. 678, doi. 10.1007/s10891-011-0521-9
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Impedance analysis and high temperature conduction mechanism of flux grown Pb(Zn<sub>1/3</sub>Nb<sub>2/3</sub>)<sub>0.91</sub>Ti<sub>0.09</sub>O<sub>3</sub> single crystal.
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- Crystal Research & Technology, 2010, v. 45, n. 10, p. 1003, doi. 10.1002/crat.201000287
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Degenerate plaquette physics as key ingredient of high-temperature superconductivity in cuprates.
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- NPJ Quantum Materials, 2022, v. 7, n. 1, p. 1, doi. 10.1038/s41535-022-00454-6
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High-temperature phase chemistry of the system Gd-Pd-O.
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- Science & Technology of Advanced Materials, 2002, v. 3, n. 2, p. 75, doi. 10.1016/S1468-6996(01)00152-8
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Dilute carbon in H<sub>3</sub>S under pressure.
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- NPJ Computational Materials, 2022, v. 8, n. 1, p. 1, doi. 10.1038/s41524-022-00769-9
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Interpretation of high pressure experimental data in MgB 2 : a challenge to current theories.
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- High Pressure Research, 2004, v. 24, n. 4, p. 525, doi. 10.1080/08957950412331332078
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A Survey and Analysis of the Effect of TC-FLSFCL on Reliability Improvement.
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- Caspian Journal of Applied Sciences Research, 2014, v. 3, n. 6, p. 9
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High-temperature superconductivity--ten years on.
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- Contemporary Physics, 1997, v. 38, n. 1, p. 63, doi. 10.1080/001075197182568
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High Temperature Superconductivity (Book Review).
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- 1991
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- Book Review
High temperature superconductivity; the spin polaron theory.
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- Contemporary Physics, 1990, v. 31, n. 6, p. 373, doi. 10.1080/00107519008213788
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