Copper Indium Sulfide Quantum Dots as Nanomanometers: Influence of Size and Composition

Author:

Aldaz‐Caballero Leyre1,Rodríguez‐Mendoza Ulises R.2ORCID,Lavín Víctor2,Canton Patrizia3ORCID,Benayas Antonio145ORCID,Marin Riccardo146ORCID

Affiliation:

1. Nanomaterials for Bioimaging Group (nanoBIG) Facultad de Ciencias Universidad Autónoma de Madrid C/ Francisco Tomás y Valiente 7 Madrid 28049 Spain

2. Departamento de Física MALTA‐Consolider Team IMN and IUdEA Universidad de La Laguna Apdo. de Correos 456 San Cristóbal de La Laguna Santa Cruz de Tenerife E‐38200 Spain

3. Department of Molecular Sciences and Nanosystems Ca' Foscari University of Venice Via Torino 155/b Venezia‐Mestre I‐30170 Italy

4. Instituto Nicolás Cabrera Universidad Autónoma de Madrid Madrid 28049 Spain

5. Nanomaterials for Bioimaging Group (nanoBIG) Instituto Ramón y Cajal de Investigación Sanitaria (IRICYS) Hospital Ramón y Cajal Ctra. De Colmenar Viejo km 9.100 Madrid 28034 Spain

6. Institute for Advanced Research in Chemical Sciences (IAdChem) Universidad Autónoma de Madrid Madrid 28049 Spain

Abstract

AbstractMechanical forces control the function of organisms and mediate the interaction between biological systems and their environments. Knowledge of these forces will increase the understanding of biological processes and can support the development of novel diagnostic and therapeutic procedures. Although techniques like atomic force microscopy and droplet insertion method allow measuring forces over a broad range of values, they are invasive and lack versatility. A promising way to overcome these hurdles is luminescent nanomanometry. Quantum dots (QDs) specifically have optical properties that depend on their size because of the quantum confinement, which makes them responsive to applied forces. Yet, a fine understanding of how fundamental parameters affect the response to applied stress is required before a QD family can be credibly proposed as luminescent nanomanometers. Here, a thorough study is conducted on how size and stoichiometry affect the nanomanometry performance of CuInS2 QDs. The studied QDs feature pressure‐dependent photoluminescence in the red/near‐infrared range, which can enable the measurement of mechanical forces in the range of physiological relevance in a remote and minimally invasive way. It is shown that tuning size and stoichiometry can simultaneously enhance the CuInS2 QDs’ brightness and response to applied pressure, thus providing guidelines for better luminescent nanomanometers.

Funder

Comunidad de Madrid

Ministerio de Ciencia e Innovación

Publisher

Wiley

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