AFM-IR of EHD-Printed PbS Quantum Dots: Quantifying Ligand Exchange at the Nanoscale

Fuente: arXiv
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Main Authors: Ferraresi, Lorenzo J. A., Kara, Gökhan, Burnham, Nancy A., Furrer, Roman, Dirin, Dmitry N., La Mattina, Fabio, Kovalenko, Maksym V., Calame, Michel, Shorubalko, Ivan
Format: Preprint
Published: 2024
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author Ferraresi, Lorenzo J. A.
Kara, Gökhan
Burnham, Nancy A.
Furrer, Roman
Dirin, Dmitry N.
La Mattina, Fabio
Kovalenko, Maksym V.
Calame, Michel
Shorubalko, Ivan
author_facet Ferraresi, Lorenzo J. A.
Kara, Gökhan
Burnham, Nancy A.
Furrer, Roman
Dirin, Dmitry N.
La Mattina, Fabio
Kovalenko, Maksym V.
Calame, Michel
Shorubalko, Ivan
contents Colloidal quantum dots (cQDs) recently emerged as building blocks for semiconductor materials with tuneable properties. Electro-hydrodynamic printing can be used to obtain sub-micrometre patterns of cQDs without elaborate and aggressive photolithography steps. Post-deposition ligand exchange is necessary for the introduction of new functionalities into cQD solids. However, achieving a complete bulk exchange is challenging and conventional infrared spectroscopy lacks the required spatial resolution. Infrared nanospectroscopy (AFM-IR) enables quantitative analysis of the evolution of vibrational signals and structural topography on the nano-metre scale upon ligand substitution on lead sulphide (PbS) cQDs. A solution of ethane-dithiol in acetonitrile demonstrated rapid (~60 s) and controllable exchange of approximately 90% of the ligands, encompassing structures up to ~800 nm in thickness. Prolonged exposures (>1 h) led to the degradation of the microstructures, with a systematic removal of cQDs regulated by surface-to-bulk ratios and solvent interactions. This study establishes a method for the development of devices through a combination of tuneable photoactive materials, additive manufacturing of microstructures, and their quantitative nanometre-scale analysis.
format Preprint
id arxiv_https___arxiv_org_abs_2401_04618
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle AFM-IR of EHD-Printed PbS Quantum Dots: Quantifying Ligand Exchange at the Nanoscale
Ferraresi, Lorenzo J. A.
Kara, Gökhan
Burnham, Nancy A.
Furrer, Roman
Dirin, Dmitry N.
La Mattina, Fabio
Kovalenko, Maksym V.
Calame, Michel
Shorubalko, Ivan
Applied Physics
Materials Science
-
Colloidal quantum dots (cQDs) recently emerged as building blocks for semiconductor materials with tuneable properties. Electro-hydrodynamic printing can be used to obtain sub-micrometre patterns of cQDs without elaborate and aggressive photolithography steps. Post-deposition ligand exchange is necessary for the introduction of new functionalities into cQD solids. However, achieving a complete bulk exchange is challenging and conventional infrared spectroscopy lacks the required spatial resolution. Infrared nanospectroscopy (AFM-IR) enables quantitative analysis of the evolution of vibrational signals and structural topography on the nano-metre scale upon ligand substitution on lead sulphide (PbS) cQDs. A solution of ethane-dithiol in acetonitrile demonstrated rapid (~60 s) and controllable exchange of approximately 90% of the ligands, encompassing structures up to ~800 nm in thickness. Prolonged exposures (>1 h) led to the degradation of the microstructures, with a systematic removal of cQDs regulated by surface-to-bulk ratios and solvent interactions. This study establishes a method for the development of devices through a combination of tuneable photoactive materials, additive manufacturing of microstructures, and their quantitative nanometre-scale analysis.
title AFM-IR of EHD-Printed PbS Quantum Dots: Quantifying Ligand Exchange at the Nanoscale
topic Applied Physics
Materials Science
-
url https://arxiv.org/abs/2401.04618