4.8 Article

Controlled Electrochemical Intercalation of Graphene/h-BN van der Waals Heterostructures

期刊

NANO LETTERS
卷 18, 期 1, 页码 460-466

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.7b04396

关键词

Nanoscale electrochemistry; graphite intercalation; graphene; van der Waals heterostructures; host-guest

资金

  1. Science and Technology Center for Integrated Quantum Materials, NSF [DMR-1231319, DMR-1435487]
  2. Nano Material Technology Development Program through the National Research Foundation of Korea (NRF) - Ministry of Science, ICT and Future Planning [2012M3A7B4049966]
  3. ARO MURI Award [W911NF14-0247]
  4. ARO [W911NF-14-1-0638]
  5. Air Force Office of Scientific Research under AFOSR Award [FA9550-14-1-0381]
  6. SRC-NRI Hans J. Coufal Fellowship
  7. Columbia Optics and Quantum Electronics NSF IGERT [DGE-1069240]
  8. NSERC PostGraduate Scholarship
  9. Priority Research Center Program through the National Research Foundation of Korea (NRF) [2010-0020207]
  10. Basic Science Research Program through the National Research Foundation of Korea (NRF) [2017R1A2B2010123]
  11. Elemental Strategy Initiative
  12. JSPS KAKENHI [JP26248061, JP15K21722, JP25106006]
  13. Harvard Center for Nanoscale Systems, NSF [ECS-0335765]

向作者/读者索取更多资源

Electrochemical intercalation is a powerful method for tuning the electronic properties of layered solids. In this work, we report an electrochemical strategy to controllably intercalate lithium ions into a series of van der Waals (vdW) heterostructures built by sandwiching graphene between hexagonal boron nitride (h-BN). We demonstrate that encapsulating graphene with h-BN eliminates parasitic surface side reactions while simultaneously creating a new heterointerface that permits intercalation between the atomically thin layers. To monitor the electrochemical process, we employ the Hall effect to precisely monitor the intercalation reaction. We also simultaneously probe the spectroscopic and electrical transport properties of the resulting intercalation compounds at different stages of intercalation. We achieve the highest carrier density >5 X 10(13) cm(2) with mobility >10(3) cm(2)/(V s) in the most heavily intercalated samples, where Shubnikov de Haas quantum oscillations are observed at low temperatures. These results set the stage for further studies that employ intercalation in modifying properties of vdW heterostructures.

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