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Autori principali: Just, Dominik, Siedlecki, Ryszard, Krzywiecki, Maciej, Er-Riyahi, Oussama, Pouillon, Yann, Junquera, Javier, Milowska, Karolina Z., Janas, Dawid
Natura: Preprint
Pubblicazione: 2025
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Accesso online:https://arxiv.org/abs/2508.09039
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author Just, Dominik
Siedlecki, Ryszard
Krzywiecki, Maciej
Er-Riyahi, Oussama
Pouillon, Yann
Junquera, Javier
Milowska, Karolina Z.
Janas, Dawid
author_facet Just, Dominik
Siedlecki, Ryszard
Krzywiecki, Maciej
Er-Riyahi, Oussama
Pouillon, Yann
Junquera, Javier
Milowska, Karolina Z.
Janas, Dawid
contents Fluorescent semiconducting single-walled carbon nanotubes (SWCNTs) hold considerable promise for photonics. Furthermore, the optical characteristics of the material can be significantly improved by covalent modification, which generates new spectral features in the near-infrared region and enhances its photoluminescence quantum yield. However, despite the dynamic development of this research domain, the importance of the solvent environment in which the SWCNT functionalization is conducted remains relatively unexplored. In this work, the complex relationships between solvent, dispersant, and SWCNTs were untangled to unravel the underlying phenomena. Through a systematic investigation of SWCNT reactivity in a broad spectrum of solvents, supported by multi-scale modeling enabled by our new implementation of a hybrid functional within SIESTA, we discovered that both the solvent medium and the dispersant enabling SWCNT solubilization affect not only the kinetics but also the course of the covalent modification of SWCNTs. Polar solvents proved to induce significant structural reorganization of polymer molecules on the SWCNT surface and enhance charge redistribution at the polymer-SWCNT interface. Consequently, we achieved a high degree of control over the optical properties of SWCNTs, and the tailored SWCNTs enabled facile optical detection of cholesterol, a significant risk factor for cardiovascular diseases.
format Preprint
id arxiv_https___arxiv_org_abs_2508_09039
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Polar Express: Rapid Functionalization of Single-Walled Carbon Nanotubes in High Dipole Moment Media
Just, Dominik
Siedlecki, Ryszard
Krzywiecki, Maciej
Er-Riyahi, Oussama
Pouillon, Yann
Junquera, Javier
Milowska, Karolina Z.
Janas, Dawid
Materials Science
Fluorescent semiconducting single-walled carbon nanotubes (SWCNTs) hold considerable promise for photonics. Furthermore, the optical characteristics of the material can be significantly improved by covalent modification, which generates new spectral features in the near-infrared region and enhances its photoluminescence quantum yield. However, despite the dynamic development of this research domain, the importance of the solvent environment in which the SWCNT functionalization is conducted remains relatively unexplored. In this work, the complex relationships between solvent, dispersant, and SWCNTs were untangled to unravel the underlying phenomena. Through a systematic investigation of SWCNT reactivity in a broad spectrum of solvents, supported by multi-scale modeling enabled by our new implementation of a hybrid functional within SIESTA, we discovered that both the solvent medium and the dispersant enabling SWCNT solubilization affect not only the kinetics but also the course of the covalent modification of SWCNTs. Polar solvents proved to induce significant structural reorganization of polymer molecules on the SWCNT surface and enhance charge redistribution at the polymer-SWCNT interface. Consequently, we achieved a high degree of control over the optical properties of SWCNTs, and the tailored SWCNTs enabled facile optical detection of cholesterol, a significant risk factor for cardiovascular diseases.
title Polar Express: Rapid Functionalization of Single-Walled Carbon Nanotubes in High Dipole Moment Media
topic Materials Science
url https://arxiv.org/abs/2508.09039