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PMID: 41797425 Published · ppublish English

Overcoming van der Waals Bundling: Molecular Wedges Enable Sonication-Free Dispersion of Single-Walled Carbon Nanotubes.

ACS nano ·Vol. 20 ·No. 11 ·2026-03-24

Lee S, Wang Z, Afriyie E, Wang J, Alibrahim A, Jagota A, Wang Y

Abstract

Single-walled carbon nanotubes (SWCNTs) naturally bundle due to strong van der Waals interactions, posing a significant challenge to their dispersion and applications. Conventional methods require ultrasonication or extended shear mixing, which are energy-intensive, can damage the nanotubes, and/or incur high process costs and low throughput. Here, we show that small molecular wedges, which are formed by reacting wedge precursors (e.g., 1-octanol, ammonia, n-hexylamine) with minimal amounts of superacids (e.g., chlorosulfonic acid, CSA), can intercalate the nanotube bundles, markedly reducing van der Waals interactions. Modeling based on the Euler-Bernoulli beam theory reveals a relationship between the pry-open length and the molecular wedge size, adhesion energy, and the nanotube's bending stiffness. Wedged SWCNTs exhibit a 130-fold increase in dispersion efficiency with DOC and a 14-fold increase with single-stranded DNA, all while preserving the nanotube length. Even in organic solvents, where gentle stirring typically yields almost no dispersion, the wedging approach achieves a dispersion yield of (6,5)-SWCNTs up to ∼2.7% (O.D. ∼13). Furthermore, this method enables one-pot sp3 quantum defect functionalization with improved uniformity and modulates defect photoluminescence by replacing defect-pairing groups with wedges. This versatile wedging approach provides a scalable route for processing SWCNTs and is expected to be broadly adaptable to other van der Waals materials.

Keywords
molecular wedge single-walled carbon nanotubes solution processing superacid surfactant van der Waals materials
Article Info
Journal
ACS nano
Abbr.
ACS Nano
ISSN
1936-086X
Published
2026-03-24
Language
English
Country/Region
United States
NLM ID
101313589
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