4.8 Article

Atomic threshold-switching enabled MoS2 transistors towards ultralow-power electronics

期刊

NATURE COMMUNICATIONS
卷 11, 期 1, 页码 -

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NATURE RESEARCH
DOI: 10.1038/s41467-020-20051-0

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资金

  1. National Science Foundation of China [61904012, 61904164, 61851404, 61874169, 52073031]
  2. Natural Science Foundation of Beijing Municipality [4204114]
  3. National Key Research and Development Program of China [2016YFA0201800, 2016YFA0202703]
  4. Fundamental Research Funds for the Central Universities [E0EG6801X2]
  5. Beijing Nova Program [Z191100001119047]

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Power dissipation is a fundamental issue for future chip-based electronics. As promising channel materials, two-dimensional semiconductors show excellent capabilities of scaling dimensions and reducing off-state currents. However, field-effect transistors based on two-dimensional materials are still confronted with the fundamental thermionic limitation of the subthreshold swing of 60mV decade(-1) at room temperature. Here, we present an atomic threshold-switching field-effect transistor constructed by integrating a metal filamentary threshold switch with a two-dimensional MoS2 channel, and obtain abrupt steepness in the turn-on characteristics and 4.5mV decade(-1) subthreshold swing (over five decades). This is achieved by using the negative differential resistance effect from the threshold switch to induce an internal voltage amplification across the MoS2 channel. Notably, in such devices, the simultaneous achievement of efficient electrostatics, very small sub-thermionic subthreshold swings, and ultralow leakage currents, would be highly desirable for next-generation energy-efficient integrated circuits and ultralow-power applications. Here, the authors demonstrate an atomic threshold-switching field-effect transistor constructed by integrating a metal filamentary switch with a two-dimensional MoS2 channel, and obtain abrupt steepness in the turn-on characteristics and 4.5mV/dec subthreshold swing over five decades.

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