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Towards enhanced transparent conductive nanocomposites based on metallic nanowire networks coated with metal oxides: a brief review

Metallic nanowire networks (MNNs) are promising emerging transparent electrodes (TEs) in multiple application fields. In the last few years, they have been widely reported in the literature as they present attractive physical properties (both electrical and optical) while reducing the amount of requ...

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Published in:Journal of materials chemistry. A, Materials for energy and sustainability Materials for energy and sustainability, 2024-10, Vol.12 (38), p.256-25621
Main Authors: Sekkat, Abderrahime, Sanchez-Velasquez, Camilo, Bardet, Laetitia, Weber, Matthieu, Jiménez, Carmen, Bellet, Daniel, Muñoz-Rojas, David, Nguyen, Viet Huong
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container_issue 38
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container_title Journal of materials chemistry. A, Materials for energy and sustainability
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creator Sekkat, Abderrahime
Sanchez-Velasquez, Camilo
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Weber, Matthieu
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Muñoz-Rojas, David
Nguyen, Viet Huong
description Metallic nanowire networks (MNNs) are promising emerging transparent electrodes (TEs) in multiple application fields. In the last few years, they have been widely reported in the literature as they present attractive physical properties (both electrical and optical) while reducing the amount of required material with respect to conventional TEs, which makes them highly competitive in terms of cost, flexibility, and integrability. Despite all their virtues, MNNs have shown several drawbacks such as rapid degradation and limited capacity for fine-tuning the properties for each specific application. To overcome these issues, several coatings have been thoroughly studied, from polymers, carbonaceous materials, and oxynitrides, to metal oxides. Among these, metal oxides have been largely studied due to their large panoply of properties and different possible synthetic approaches. In this minireview, we provide an overview of the research on metal oxide-coated MNNs, with a particular focus on silver nanowire (AgNW) networks, as they are the most extensively studied. However, the discussion and conclusions drawn here can be directly applied to other metallic nanowires as well. Most importantly, we evaluate the impact of the coating on the fundamental properties and stability of these promising nanocomposites. Finally, a comprehensive overview of various applications based on these specific nanocomposites is presented, including photovoltaics, transparent heaters, smart windows, sensors, diodes, plasmonics, microelectronics, among others. This work offers insights into the potential applications of AgNW-metal oxide nanocomposites in the future and outlines the critical parameters of metal oxide coatings and their functionalities. This work will serve as a guideline towards designing more efficient metal oxide-MNNs through processes compatible with roll-to-roll mass manufacturing for industrial use. Silver nanowire networks, coated with metal oxides, are extensively studied from a fundamental perspective. This review summarizes their integration into various applications and guides metal oxide selection based on specific device requirements.
doi_str_mv 10.1039/d4ta05370b
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2050-7496
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source Royal Society of Chemistry
subjects Carbonaceous materials
Chemical Sciences
Coatings
Competitive materials
Industrial applications
Material chemistry
Metal oxides
Metals
Nanocomposites
Nanotechnology
Nanowires
Networks
Optical properties
Oxide coatings
Oxides
Photovoltaic cells
Photovoltaics
Physical properties
Polymers
Reviews
Silver
Smart materials
Smart sensors
Windows (apertures)
title Towards enhanced transparent conductive nanocomposites based on metallic nanowire networks coated with metal oxides: a brief review
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