4.7 Article

Angular dependent anisotropic terahertz response of vertically aligned multi-walled carbon nanotube arrays with spatial dispersion

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SCIENTIFIC REPORTS
卷 6, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/srep38515

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资金

  1. National Natural Science Foundation of China [61275105, 11374240, 61605160, 11374358, 11304249]
  2. International Cooperative Program [201410780]
  3. Natural Science Foundation of Shaanxi Province [2016JQ1010]
  4. Natural Science Research Plan of Shaanxi Education Department [16JK1781]
  5. Young Talent Plan from Institute of Science and Technology of University in Shaanxi Province [20160114]
  6. Xi'an Industrial Technology Innovation Project-Technology Transfer Promoting Program [CXY1511-8]
  7. Natural Science Foundation of Northwest University [14NW22]

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Spatial dispersion effect of aligned carbon nanotubes (CNTs) in the terahertz (THz) region has significance for both theoretical and applied consideration due to the unique intrinsically anisotropic physical properties of CNTs. Herein, we report the angular dependent reflection of p-polarized THz wave from vertically aligned multi-walled CNT arrays in both experiment and theory. The spectra indicate that the reflection depends on the film thickness of vertically aligned CNTs, the incident angle, and the frequency. The calculation model is based on the spatial dispersion effect of aligned CNTs and performed with effective impedance method and the Maxwell-Garnett approximation. The results fit well with the experiment when the thickness of CNT film is thin, which reveals a coherent superposition mechanism of the CNT surface reflection and CNTs/ Si interface reflection. For thick CNT films, the CNTs/ Si interface response determines the reflection at small incident angles, while the CNTs surface effect dominates at large incident angles. This work investigates the spatial dispersion effect of vertically aligned CNT arrays in the THz region, and paves a way for potential anisotropic THz applications based on CNTs with oblique incidence requirements.

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