Back to Search Start Over

The chemical physics of sequential infiltration synthesis—A thermodynamic and kinetic perspective.

Authors :
Waldman, Ruben Z.
Mandia, David J.
Yanguas-Gil, Angel
Martinson, Alex B. F.
Elam, Jeffrey W.
Darling, Seth B.
Source :
Journal of Chemical Physics; 11/21/2019, Vol. 151 Issue 19, pN.PAG-N.PAG, 25p, 6 Diagrams, 3 Charts, 14 Graphs
Publication Year :
2019

Abstract

Sequential infiltration synthesis (SIS) is an emerging materials growth method by which inorganic metal oxides are nucleated and grown within the free volume of polymers in association with chemical functional groups in the polymer. SIS enables the growth of novel polymer-inorganic hybrid materials, porous inorganic materials, and spatially templated nanoscale devices of relevance to a host of technological applications. Although SIS borrows from the precursors and equipment of atomic layer deposition (ALD), the chemistry and physics of SIS differ in important ways. These differences arise from the permeable three-dimensional distribution of functional groups in polymers in SIS, which contrast to the typically impermeable two-dimensional distribution of active sites on solid surfaces in ALD. In SIS, metal-organic vapor-phase precursors dissolve and diffuse into polymers and interact with these functional groups through reversible complex formation and/or irreversible chemical reactions. In this perspective, we describe the thermodynamics and kinetics of SIS and attempt to disentangle the tightly coupled physical and chemical processes that underlie this method. We discuss the various experimental, computational, and theoretical efforts that provide insight into SIS mechanisms and identify approaches that may fill out current gaps in knowledge and expand the utilization of SIS. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219606
Volume :
151
Issue :
19
Database :
Complementary Index
Journal :
Journal of Chemical Physics
Publication Type :
Academic Journal
Accession number :
139783822
Full Text :
https://doi.org/10.1063/1.5128108