Principles of carbon nanotube dielectrophoresis

被引:0
作者
Wenshan Li
Frank Hennrich
Benjamin S. Flavel
Simone Dehm
Manfred Kappes
Ralph Krupke
机构
[1] Karlsruhe Institute of Technology,Institute of Nanotechnology
[2] Karlsruhe Institute of Technology,Institute of Physical Chemistry
[3] Technische Universität Darmstadt,Institute of Materials Science
[4] Karlsruhe Institute of Technology,Institute for Quantum Materials and Technologies
[5] Shanghai Jiao Tong University,Present address: School of Mechanical Engineering
来源
Nano Research | 2021年 / 14卷
关键词
single-walled carbon nanotubes; hydrodynamics; assembly; deposition; alignment; polarizability; dielectrophoresis;
D O I
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中图分类号
学科分类号
摘要
Dielectrophoresis (DEP) describes the motion of suspended objects when exposed to an inhomogeneous electric field. It has been successful as a method for parallel and site-selective assembling of nanotubes from a dispersion into a sophisticated device architecture. Researchers have conducted extensive works to understand the DEP of nanotubes in aqueous ionic surfactant solutions. However, only recently, DEP was applied to polymer-wrapped single-walled carbon nanotubes (SWCNTs) in organic solvents due to the availability of ultra-pure SWCNT content. In this paper, the focus is on the difference between the DEP in aqueous and organic solutions. It starts with an introduction into the DEP of carbon nanotubes (CNT-DEP) to provide a comprehensive, in-depth theoretical background before discussing in detail the experimental procedures and conditions. For academic interests, this work focuses on the CNT-DEP deposition scheme, discusses the importance of the electrical double layer, and employs finite element simulations to optimize CNT-DEP deposition condition with respect to the experimental observation. An important outcome is an understanding of why DEP in organic solvents allows for the deposition and alignment of SWCNTs in low-frequency and even static electric fields, and why the response of semiconducting SWCNTs (s-SWCNTs) is strongly enhanced in non-conducting, weakly polarizable media. Strategies to further improve CNT-DEP for s-SWCNT-relevant applications are given as well. Overall, this work should serve as a practical guideline to select the appropriate setting for effective CNT DEPs.
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页码:2188 / 2206
页数:18
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  • [1] Dürkop T(2004)Extraordinary mobility in semiconducting carbon nanotubes Nano Lett. 4 35-39
  • [2] Getty S A(2015)End-bonded contacts for carbon nanotube transistors with low, size-independent resistance Science 350 68-72
  • [3] Cobas E(2008)Radio frequency analog electronics based on carbon nanotube transistors Proc. Natl. Acad. Sci. 105 1405-1409
  • [4] Fuhrer M S(2012)High-frequency performance of scaled carbon nanotube array field-effect transistors Appl. Phys. Lett. 101 053123-1320
  • [5] Cao Q(2001)Logic circuits with carbon nanotube transistors Science 294 1317-530
  • [6] Han S J(2013)Carbon nanotube computer Nature 501 526-350
  • [7] Tersoff J(2008)Carbon-nanotube photonics and optoelectronics Nat. Photonics 2 341-2860
  • [8] Franklin A D(2013)Carbon nanomaterials for electronics, optoelectronics, photovoltaics, and sensing Chem. Soc. Rev. 42 2824-1372
  • [9] Zhu Y(2017)Carbon nanotube transistors scaled to a 40-nanometer footprint Science 356 1369-276
  • [10] Zhang Z(2017)Scaling carbon nanotube complementary transistors to 5-nm gate lengths Science 355 271-78