Materials Map

Discover the materials research landscape. Find experts, partners, networks.

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Moskovskikh, Dmitry

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in Cooperation with on an Cooperation-Score of 37%

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Publications (5/5 displayed)

  • 2024Self-propagating high-temperature synthesis and spark plasma sintering of high-entropy (Hf,Ta,Nb)(C,N) carbonitridecitations
  • 2024Enhanced microstructure and mechanical properties of ZrN-reinforced AlSi10Mg aluminum matrix composite8citations
  • 2023Amorphous/Nanocrystalline High-Entropy CoCrFeNiTix Thin Films with Low Thermal Coefficient of Resistivity Obtained via Magnetron Deposition12citations
  • 2023High-performance selective NO2 gas sensor based on In2O3–graphene–Cu nanocomposites30citations
  • 2020CO oxidation and organic dyes degradation over graphene–Cu and graphene–CuNi catalysts obtained by solution combustion synthesis33citations

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Suvorova, Veronika
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Suvorov, Dmitrii
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Nepapushev, Andrey
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Volodko, Sergey
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Chernyshikhin, Stanislav
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Khort, Alexander
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Korol, Artem
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Volkova, Lidiya
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Sokolov, Pavel
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Kovalev, Dmitry
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Vadchenko, Sergei
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Dudin, Alexander
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Poliakov, Maksim
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Goryachev, Andrey
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Kiryukhantsev-Korneev, Philipp
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Taratyn, Igor
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Podbolotov, Kirill
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Haiduk, Yulyan
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Pankov, Vladimir
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Usenka, Alexandra
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Lapchuk, Natalia
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Leybo, Denis
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Khort, Aliaksandr
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Romanovski, Valentin
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Co-Authors (by relevance)

  • Suvorova, Veronika
  • Suvorov, Dmitrii
  • Nepapushev, Andrey
  • Volodko, Sergey
  • Chernyshikhin, Stanislav
  • Khort, Alexander
  • Korol, Artem
  • Volkova, Lidiya
  • Sokolov, Pavel
  • Kovalev, Dmitry
  • Vadchenko, Sergei
  • Dudin, Alexander
  • Poliakov, Maksim
  • Goryachev, Andrey
  • Kiryukhantsev-Korneev, Philipp
  • Taratyn, Igor
  • Podbolotov, Kirill
  • Haiduk, Yulyan
  • Pankov, Vladimir
  • Usenka, Alexandra
  • Lapchuk, Natalia
  • Leybo, Denis
  • Khort, Aliaksandr
  • Romanovski, Valentin
OrganizationsLocationPeople

article

Amorphous/Nanocrystalline High-Entropy CoCrFeNiTix Thin Films with Low Thermal Coefficient of Resistivity Obtained via Magnetron Deposition

  • Kovalev, Dmitry
  • Vadchenko, Sergei
  • Dudin, Alexander
  • Poliakov, Maksim
  • Moskovskikh, Dmitry
  • Goryachev, Andrey
  • Kiryukhantsev-Korneev, Philipp
Abstract

<jats:p>High-entropy alloys are promising materials for novel thin-film resistors since they have high resistivity and a low-temperature coefficient of resistivity (TCR). In this work, a new high-entropy thin-film CoCrFeNiTix was deposited on a Si/SiO2 substrate by means of magnetron sputtering of the multi-component target produced by hot pressing of the powder mixture. The samples possessed a thickness of 130–230 nm and an amorphous atomic structure with nanocrystallite traces. This structure persisted after being annealed up to 400 °C, which was confirmed using X-ray and electron diffraction. The film had a single-phase structure with a smooth surface and a uniform distribution of all elements. The obtained film served for microresistor elaboration, which was produced using the lithography technique and tested in a temperature range from −60 °C up to 200 °C. Resistivity at room temperature was estimated as 2.37 μOhm·m. The results have demonstrated that TCR depends on temperature according to the simple linear law in a range from −60 °C up to 130 °C, changing its value from −78 ppm/°C at low temperatures to −6.6 ppm/°C at 130 °C. Such characteristics show the possibility of using these high-entropy alloy films for resistive elements in contemporary and future micro-electronic devices.</jats:p>

Topics
  • Deposition
  • surface
  • amorphous
  • resistivity
  • phase
  • thin film
  • electron diffraction
  • lithography
  • hot pressing