Periodic nanoporous inorganic patterns directly made by self-ordering of cracks
ODZIOMEK, Mateusz
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Interfaces, Traitements, Organisation et Dynamique des Systèmes [ITODYS (UMR_7086)]
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Interfaces, Traitements, Organisation et Dynamique des Systèmes [ITODYS (UMR_7086)]
BOISSIERE, Cedric
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Matériaux Hybrides et Procédés [LCMCP-MHP ]
See more >
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Matériaux Hybrides et Procédés [LCMCP-MHP ]
ODZIOMEK, Mateusz
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Interfaces, Traitements, Organisation et Dynamique des Systèmes [ITODYS (UMR_7086)]
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Interfaces, Traitements, Organisation et Dynamique des Systèmes [ITODYS (UMR_7086)]
BOISSIERE, Cedric
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Matériaux Hybrides et Procédés [LCMCP-MHP ]
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Matériaux Hybrides et Procédés [LCMCP-MHP ]
FAUSTINI, Marco
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Matériaux Hybrides et Procédés [LCMCP-MHP ]
< Reduce
Laboratoire de Chimie de la Matière Condensée de Paris [LCMCP]
Matériaux Hybrides et Procédés [LCMCP-MHP ]
Language
en
Article de revue
This item was published in
Advanced Materials. 2022-09, vol. 34, n° 36, p. 2204489
Wiley-VCH Verlag
English Abstract
Solution-processed inorganic nanoporous films are key components for the vast spectrum of applications ranging from dew harvesting to solar cells. Shaping them into complex architectures required for advanced functionality, ...Read more >
Solution-processed inorganic nanoporous films are key components for the vast spectrum of applications ranging from dew harvesting to solar cells. Shaping them into complex architectures required for advanced functionality, often need time-consuming or expensive fabrication. In this work, we show how crack formation is harnessed to pattern porous inorganic films in a single step and without using lithography. We developed aqueous ink formulations that, in the presence of polymeric latexes, enable evaporation-induced, defect-free periodic arrays of cracks with tunable dimensions over several centimeters. The ink formulation strategy was generalized to more than ten inorganic materials including simple and binary porous oxide and metallic films covering a whole spectrum of properties including insulator, photocatalytic, electrocatalytic, conductive or electrochromic materials. Notably, this approach enables three-dimensional self-assembly of cracks by stacking several layers of different compositions, yielding periodic assemblies of polygonal shapes and Janus-type patterns. The crack patterned periodic arrays of nanoporous TiO2 diffract light, and are used as temperature-responsive diffraction grating sensors. More broadly, this method represents a unique example of self-assembly process leading to long-range order (over several cm) in a robust and controlled way.Read less <
English Keywords
porous films
crack
patterning
inorganic
photonics
Origin
Hal imported