"3DTDS" meaning in English

See 3DTDS in All languages combined, or Wiktionary

Noun

Head templates: {{en-noun|?|head=3DTDS}} 3DTDS
  1. Abbreviation of three-dimensional topological Dirac semi-metal. Tags: abbreviation, alt-of Alternative form of: three-dimensional topological Dirac semi-metal Related terms: TDS (english: topological Dirac semi-metal), 3D (3-dimentional)
    Sense id: en-3DTDS-en-noun-EtYr7Y0G Categories (other): English entries with incorrect language header

Download JSON data for 3DTDS meaning in English (2.7kB)

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          "ref": "2014 February 10, Lucas Mearian, “Graphene-like 3D Material May Advance Storage”, in Computerworld, volume 48, number 2, Framingham, →ISSN, page 4",
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          "ref": "2014 Autumn, Yulin Chen, “Graphene's 3D Counterparts”, in Department of Physics Newsletter, University of Oxford, page 7",
          "text": "In the newly discovered materials, named '3D topological Dirac semimetals' (or 3DTDS in short), electrons can travel along any direction in its 3D bulk with energy linearly dependent on its momentum. Furthermore, the electrons in 3DTDS can race at much higher speeds than in silicon, which promises not only new physical insights, but also exciting applications for the high-tech industry such as much faster transistors and far more compact hard drives.",
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          "ref": "2014, Yune Leou-On, “The Philosopher's Singularity”, in SSRN, page 49",
          "text": "One of the best features of the 3DTDS carbon nanotube is that the electron will be essentially free of mass while travelling, so creating enough velocity and mobility will require even less energy input. At the same time, these materials are still difficult and costly to produce. Current projections have mainstream use and acceptance of these materials in 30 years or more.",
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          "ref": "2019, Shengshan Qin et al., “Topological vortex phase transitions in iron-based superconductors”, in Science Bulletin, volume 64, number 17, Elsevier, →ISSN, page 1213",
          "text": "Therefore, in principle, there is a critical value, x = x_c, at which a topological phase transition from 3DWTI to 3DTDS can take place.",
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          "text": "One of the best features of the 3DTDS carbon nanotube is that the electron will be essentially free of mass while travelling, so creating enough velocity and mobility will require even less energy input. At the same time, these materials are still difficult and costly to produce. Current projections have mainstream use and acceptance of these materials in 30 years or more.",
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This page is a part of the kaikki.org machine-readable English dictionary. This dictionary is based on structured data extracted on 2024-05-05 from the enwiktionary dump dated 2024-05-02 using wiktextract (f4fd8c9 and c9440ce). The data shown on this site has been post-processed and various details (e.g., extra categories) removed, some information disambiguated, and additional data merged from other sources. See the raw data download page for the unprocessed wiktextract data.

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