Synthesis of Superconducting Boron-Doped Diamond in Carbon and Boron Solutions in Molten Gold and Copper

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Abstract

The Au–B–C and Cu–B–C growth systems, which do not form borides, have been used for the first time for the synthesis of boron-doped superconducting diamond. In these systems, the graphite-to-diamond transformation occurs at pressures from 8 to 9 GPa and temperatures from 1620 to 1770 K, suitable for commercial-scale production. The presence of boron in melts is assumed to be responsible for the decrease in synthesis temperature in molten copper and the diamond-forming ability of gold-based melts. The synthesized diamond exhibits metallic behavior of conductivity at ordinary temperatures and undergoes a superconducting transition between 4.5 and 2.5 K.

About the authors

E. A. Еkimov

Vereshchagin Institute for High Pressure Physics, Russian Academy of Sciences

Email: pleskov33@mail.ru
Moscow, 142190 Russia

V. A. Sidorov

Vereshchagin Institute for High Pressure Physics, Russian Academy of Sciences

Email: ekimov@hppi.troitsk.ru
108840, Troitsk, Moscow, Russia

R. A. Khmel’nitskii

Lebedev Institute of Physics, Russian Academy of Sciences

Email: ekimov@hppi.troitsk.ru
119991, Moscow, Russia

S. G. Lyapin

Vereshchagin Institute for High Pressure Physics, Russian Academy of Sciences

Author for correspondence.
Email: ekimov@hppi.troitsk.ru
108840, Troitsk, Moscow, Russia

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Copyright (c) 2023 Е.А. Екимов, В.А. Сидоров, Р.А. Хмельницкий, С.Г. Ляпин