Skip to main navigation Skip to search Skip to main content

Chip-Scale Aligned Chiral Carbon Nanotubes Exhibiting Giant Second Harmonic Generation

  • Rui Xu
  • , Jacques Doumani
  • , Viktor Labuntsov
  • , Nina Hong
  • , Anna Christina Samaha
  • , Weiran Tu
  • , Fuyang Tay
  • , Elizabeth Blackert
  • , Jiaming Luo
  • , Mario El Tahchi
  • , Weilu Gao
  • , Jun Lou
  • , Yohei Yomogida
  • , Kazuhiro Yanagi
  • , Riichiro Saito
  • , Vasili Perebeinos
  • , Andrey Baydin
  • , Junichiro Kono
  • , Hanyu Zhu
  • Rice University
  • SUNY Buffalo
  • J.A. Woollam Company, Inc.
  • Lebanese University
  • University of Utah
  • Tokyo Metropolitan University
  • Tohoku University
  • National Taiwan Normal University

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

Chiral carbon nanotubes (CNTs) are direct-gap semiconductors with optical properties governed by one-dimensional excitons with enormous oscillator strengths. Each species of chiral CNTs has an enantiomeric pair of left- and right-handed CNTs with nearly identical properties, but enantiomer-dependent phenomena can emerge, especially in nonlinear optical processes. Theoretical studies have predicted strong second-order nonlinearities in chiral CNTs, but no experimental quantitative verification has been reported due to the lack of macroscopically ordered assemblies of single-enantiomer chiral CNTs. Here, we report the synthesis of centimeter-scale, densely packed, aligned single-enantiomer chiral CNT films that are microfabrication-compatible. We observe giant second harmonic generation (SHG) emission from the chiral CNT film, which originates from the intrinsic chirality and inversion symmetry breaking of the atomic structure of chiral CNTs. The observed nonlinear susceptibility of the as-fabricated film reaches 4.9 × 102 pm/V at a pump wavelength of 1030 nm, corresponding to the lowest-energy excitonic resonance, indicating χxyz = 1.6 × 103 pm/V for a perfectly aligned CNT crystal. Our calculations based on many-body theory correctly estimate the spectrum and magnitude of such excitonically enhanced optical nonlinearity. These results are promising for the development of scalable chiral-CNT electronics and nonlinear photonics.

Original languageEnglish
Pages (from-to)15769-15778
Number of pages10
JournalACS Nano
Volume20
Issue number21
DOIs
StatePublished - Jun 2 2026

Keywords

  • carbon nanotubes
  • chip-scale chiral films
  • enantiomer-pure
  • excitonic enhancement
  • resonant second harmonic generation

Fingerprint

Dive into the research topics of 'Chip-Scale Aligned Chiral Carbon Nanotubes Exhibiting Giant Second Harmonic Generation'. Together they form a unique fingerprint.

Cite this