4.8 Article

Horizontally aligned surface segments enhancing the adhesion of carbon nanotube forests

Journal

CARBON
Volume 176, Issue -, Pages 540-547

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2021.02.002

Keywords

Adhesion; Sandwich-like catalyst; Carbon nanotube forest dry adhesive; Chemical vapor deposition

Funding

  1. National Key Research and Development Program of China [2017YFA0204600]
  2. Fundamental Research Funds for the Central Universities [14380231]
  3. Natural Science Foundation of Jiangsu Province [BK20180319]
  4. Shanghai Rising Star Program [20QA1401300]
  5. Postdoctoral Foundation of Jiangsu Province, China [2019Z202, 2019Z203, 2019K001]
  6. Science and Technology Project of Nanchang [2017-SJSYS-008]

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By adding a layer of patterned aluminum to the conventional catalyst, the orientation, density, and arrangement of nanotube segments in CNT forests were improved, resulting in a CNTF with densely-packed, horizontally-aligned surface nanotube segments. Nanoindentation results and coarse-grained simulations indicated that the lateral stretching of nanotube segments played a major role in the superior adhesion performance of the CNTF.
The excellent mechanical properties of carbon nanotube (CNT) and low effective modulus of its forest makes CNT forest (CNTF) promising in dry adhesives. However, the low contact efficiency of buckled nanotube segments on the surface of the CNTF weakened its adhesion strength, which is far below the theoretical value. To improve the orientation, density, and arrangement of these nanotube segments, a layer of patterned aluminum was added to the conventional catalyst. Thus, a CNTF with densely-packed, horizontally-aligned surface nanotube segments was obtained. Nanoindentation results showed that the adhesion force of this CNTF could reach up to 13.69 mN under optimized conditions, nearly 5.5 times the best results of similar works. The results of coarse-grained (CG) simulations revealed the lateral stretching of these nanotube segments induced bond energy variation made a major contribution to the superior adhesion performance. The formation mechanism of these surface nanotube segments was also thoroughly analyzed. (C) 2021 Elsevier Ltd. All rights reserved.

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