4.8 Article

Realization of vertical metal semiconductor heterostructures via solution phase epitaxy

Journal

NATURE COMMUNICATIONS
Volume 9, Issue -, Pages -

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41467-018-06053-z

Keywords

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Funding

  1. National Natural Science Foundation of China [51322202, 21373112]
  2. Joint Research Fund for Overseas Chinese, Hong Kong and Macao Scholars [51528201]
  3. Young 1000 Talents Global Recruitment Program of China
  4. MOE under AcRF Tier 2 in Singapore [ARC 19/15, MOE2014-T2-2-093, MOE2015-T2-2-057, MOE2016-T2-2-103]
  5. MOE under AcRF Tier 1 in Singapore [2016-T1-001-147, 2016-T1-002-051]
  6. NTU under Start-Up Grant in Singapore [M4081296.070.500000]

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The creation of crystal phase heterostructures of transition metal chalcogenides, e.g., the 1T/2H heterostructures, has led to the formation of metal/semiconductor junctions with low potential barriers. Very differently, post-transition metal chalcogenides are semiconductors regardless of their phases. Herein, we report, based on experimental and simulation results, that alloying between 1T-SnS2 and 1T-WS2 induces a charge redistribution in Sn and W to realize metallic Sn0.5W0.5S2 nanosheets. These nanosheets are epitaxially deposited on surfaces of semiconducting SnS2 nanoplates to form vertical heterostructures. The ohmic-like contact formed at the Sn0.5W0.5S2/SnS2 heterointerface affords rapid transport of charge carriers, and allows for the fabrication of fast photodetectors. Such facile charge transfer, combined with a high surface affinity for acetone molecules, further enables their use as highly selective 100 ppb level acetone sensors. Our work suggests that combining compositional and structural control in solution-phase epitaxy holds promises for solution-processible thin-film optoelectronics and sensors.

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