Vacancy Cluster-Mediated Epitaxial Layer-by-Layer Growth of van der Waals Heterostructures

  • Jina Lee
  • , Seok Joon Yun*
  • , Soo Ho Choi
  • , Hyung-Jin Kim
  • , Hang Sik Kim
  • , Minhyuk Kim
  • , Wujoon Cha
  • , Byeong Wook Cho
  • , Swathi Krishna
  • , Soo Min Kim
  • , Hu Young Jeong
  • , Young-Min Kim
  • , Young-Kyu Han
  • , Young Hee Lee
  • , Ki Kang Kim
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Two-dimensional transition metal dichalcogenide heterostructures offer a versatile platform for tailoring quantum and optoelectronic properties, yet their scalable synthesis remains challenging due to the inert nature of van der Waals (vdW) basal planes, which lack nucleation sites for epitaxy. Here, we report a vacancy cluster-mediated epitaxial layer-by-layer growth strategy that enables the deterministic construction of vdW heterostructures with atomic precision. Hydrogen plasma treatment generates chalcogen vacancy clusters on template monolayers, providing localized nucleation sites for subsequent overlayer growth. This process yields highly crystalline heterostructures, as confirmed by atomic-resolution scanning transmission electron microscopy and density functional theory, while postgrowth annealing under chalcogen-rich conditions heals interface vacancies, restoring optical quality and enabling robust interlayer excitonic coupling. Using this approach, we demonstrate versatile MoS /WS , MoSe /WSe , bilayer MoS , and MoS /MoSSe heterostructures, all exhibiting atomically sharp interfaces and epitaxial alignment. Our results establish vacancy cluster-mediated epitaxy as a general platform for programmable stacking of two-dimensional materials, advancing the scalable design of functional vdW solids.
Original languageEnglish
Pages (from-to)7058-7068
Number of pages11
JournalACS Nano
Volume20
Issue number8
Early online date18 Feb 2026
DOIs
Publication statusPublished - 3 Mar 2026

Keywords

  • interlayer coupling
  • layer-by-layer growth
  • two-dimensional materials
  • vacancy cluster-mediated epitaxy
  • van der Waals heterostructures

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