4.5 Article

Temperature-Dependent Adhesion in van der Waals Heterostructures

Journal

ADVANCED MATERIALS INTERFACES
Volume 8, Issue 20, Pages -

Publisher

WILEY
DOI: 10.1002/admi.202100838

Keywords

2D materials; adhesion energy; atomic force microscopy; van der Waals transfer

Funding

  1. Research Council of Norway (RCN) [262274, 280788]
  2. Norwegian Micro-and Nano-Fabrication Facility (NorFab) [295864]
  3. NORTEM infrastructure [197405, NN9259K]
  4. MEXT [JPMXP0112101001]
  5. JSPS KAKENHI [JP20H00354]
  6. JST CREST [JPMJCR15F3]

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This study presents direct measurements of adhesion between 2D materials and reveals a significant reduction in adhesion energies with increasing temperature, mainly attributed to thermally induced ripples in the materials.
The interlayer coupling between 2D materials is immensely important for both the fundamental understanding of these systems, and for the development of transfer techniques for the fabrication of van der Waals (vdW) heterostructures. A number of uncertainties remain with respect to their adhesion characteristics due to the elusive nature of measured adhesion interactions. Moreover, it is theoretically predicted that the intrinsic ripples in 2D materials give rise to a temperature dependence in adhesion, although the vdW interactions themselves are principally independent of temperature. Here, direct measurements of the adhesion between reduced graphene oxide - coated by solution deposition on atomic force microscopy tips - and graphene, h-BN, and MoS2 supported on SiO2 substrates and as freestanding membranes are presented. The in situ nanomechanical characterization reveals a prominent reduction in the adhesion energies with increasing temperature which is ascribed to the thermally induced ripples in the 2D materials.

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