The Spacetime Metric

Las fichas de la biblioteca están en inglés: reproducen las palabras de las fuentes originales. El resumen, lo que afirma cada una y la puerta al original se leen aquí tal como se publicaron.

STM-D-1149Paper2019Settled physics

Superconductivity at 250 K in lanthanum hydride under high pressures

A. P. Drozdov · P. P. Kong · V. S. Minkov · S. P. Besedin · M. A. Kuzovnikov · S. Mozaffari · L. Balicas · F. Balakirev · D. Graf · V. B. Prakapenka · E. Greenberg · D. A. Knyazev · M. Tkacz · M. I. Eremets

Summary and citation · read the original at the source · The arXiv record for 1812.01561 carries the arXiv non-exclusive distribution licence, which lets arXiv distribute the file and is not a licence to third parties to republish. No text of the paper is reproduced on this page.

En una página

Four years after the sulfur hydride result, the same Mainz group came back with fifty kelvin more. The prediction they were testing came from density-functional calculations: put a heavy atom at the centre of a cage of hydrogen — a clathrate — and the hydrogen lattice vibrates fast enough to superconduct near room temperature. Lanthanum hydride compressed to about 170 gigapascals does it at 250 kelvin, which is twenty-three degrees below the freezing point of water and warmer than a winter day in much of the world. They did not rest the claim on one measurement. Resistance goes to zero; swapping hydrogen for deuterium moves the transition down by the amount the phonon mechanism predicts; a magnetic field pushes it down, and extrapolating that gives an upper critical field of 120 tesla; and synchrotron X-ray diffraction identifies the phase that is doing it.

Por qué importa aquíChapter 11 can now say what the ceiling actually is, and who is pushing it. This is also the clearest live example on the site of theory naming a material before anyone made it — the calculation asked for a hydrogen cage, and the cage was built and measured.

Qué afirma

  1. 01Superconductivity is reported with a transition temperature of about 250 kelvin in the face-centred-cubic Fm-3m structure of lanthanum hydride at a pressure of about 170 gigapascals — a leap of roughly 50 kelvin above the previous record of 203 kelvin in H₃S.Abstract, final third; main text, the pressure-dependence paragraph

    Settled physics
  2. 02The transition temperature against pressure has a maximum: it rises with pressure to 250 to 252 kelvin at about 170 gigapascals and then falls abruptly at higher pressures.Main text, the paragraph describing Tc(P); Fig. 1

    Settled physics
  3. 03Three independent confirmations are offered for the transition: zero resistance, an isotope effect on substituting deuterium, and suppression of the transition by an external magnetic field.Abstract, sentence beginning 'We proved the existence of superconductivity'

    Settled physics
  4. 04Extrapolating the measured upper critical fields to zero temperature, by fitting the Ginzburg-Landau expression to data taken under the 90 per cent and 50 per cent resistance criteria, gives an upper critical field of about 120 tesla.Abstract; main text, the paragraph on the extrapolation of Hc2(T); Fig. 2b caption

    Published and peer-reviewed
  5. 05The phase responsible was identified rather than assumed: synchrotron X-ray powder diffraction on a sample showing a 249 kelvin transition at 150 gigapascals resolves a dominant face-centred cubic Fm-3m lattice with refined lattice constant 5.1019(5) ångström, and the refined volume gives the stoichiometry LaH₉·₆ rather than the ideal LaH₁₀.Main text, the crystallography paragraph; Extended Data Fig. ED2 and the X-ray diffraction figure caption

    Published and peer-reviewed
  6. 06What to watch: the authors name their own target in the abstract — room-temperature superconductivity, meaning 273 kelvin, in the near future at high pressures, and then conventional superconductivity at ambient pressure. The pressure is the open problem, not the temperature.Abstract, final sentence

    What to watch

La puerta de entrada

https://arxiv.org/abs/1812.01561WHAT WAS READ. The author preprint was downloaded from arXiv on 2026-09-12 and read in full as text — about 7,100 words including the methods, the extended-data captions and the author contributions; sha256 d0d09eb1b59ccb51be464971c8b04d517b3d51714f9221053543659a979faea8. Locators name sections and figure captions of that preprint. IDENTITY WAS CHECKED. The preprint's title page carries all fourteen authors with six affiliations — the Max-Planck-Institut für Chemie in Mainz, the National High Magnetic Field Laboratory at Florida State University, the NHMFL group at Los Alamos, the Center for Advanced Radiation Sources at the University of Chicago, the Institute of Physical Chemistry of the Polish Academy of Sciences, and the Institute of Solid State Physics in Chernogolovka — and the arXiv record gives the journal reference Nature 569, 528 (2019). The figures and the X-ray diffraction patterns are not reproduced.

Cómo citarlo

A. P. Drozdov, P. P. Kong, V. S. Minkov, S. P. Besedin, M. A. Kuzovnikov, S. Mozaffari, L. Balicas, F. Balakirev, D. Graf, V. B. Prakapenka, E. Greenberg, D. A. Knyazev, M. Tkacz, M. I. Eremets (2019) Superconductivity at 250 K in lanthanum hydride under high pressures. doi:10.1038/s41586-019-1201-8

Dónde encaja en el currículo

Control de la gravedad y superconductores

Procedencia: Recuperado 2026-09-12 · sha256 d0d09eb1b59c · Resumen de The Spacetime Metric editorial rail (AI draft from the source text, 2026-09-12)← La biblioteca (en inglés)