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Kinetics and Chemistry of Hydrolysis of Ultrathin, Thermally Grown Layers of Silicon Oxide as Biofluid Barriers in Flexible Electronic Systems.

Authors :
Lee YK
Yu KJ
Kim Y
Yoon Y
Xie Z
Song E
Luan H
Feng X
Huang Y
Rogers JA
Source :
ACS applied materials & interfaces [ACS Appl Mater Interfaces] 2017 Dec 13; Vol. 9 (49), pp. 42633-42638. Date of Electronic Publication: 2017 Dec 05.
Publication Year :
2017

Abstract

Flexible electronic systems for bioimplants that offer long-term (multidecade) stability and safety in operation require thin, biocompatible layers that can prevent biofluid penetration. Recent work shows that ultrathin films of silicon dioxide thermally grown (TG-SiO <subscript>2</subscript> ) on device-grade silicon wafers and then released as transferrable barriers offer a remarkable set of attributes in this context. This paper examines the chemical stability of these materials in aqueous solutions with different combinations of chemistries that are present in biofluids. Systematic measurements reveal the dependence of the dissolution rate of TG-SiO <subscript>2</subscript> on concentrations of cations (Na <superscript>+</superscript> , K <superscript>+</superscript> , Mg <superscript>2+</superscript> , Ca <superscript>2+</superscript> ) and anions (Cl <superscript>-</superscript> , HPO <subscript>4</subscript> <superscript>2-</superscript> ) at near-neutral pH. Certain results are consistent with previous studies on bulk samples of quartz and nanoparticles of amorphous silica; others reveal significant catalyzing effects associated with divalent cations at high pH and with specific anions at high ionic strength. In particular, Ca <superscript>2+</superscript> and HPO <subscript>4</subscript> <superscript>2-</superscript> greatly enhance and silicic acid greatly reduces the rates. These findings establish foundational data of relevance to predicting lifetimes of implantable devices that use TG-SiO <subscript>2</subscript> as biofluid barriers, and of other classes of systems, such as environmental monitors, where encapsulation against water penetration is important.

Details

Language :
English
ISSN :
1944-8252
Volume :
9
Issue :
49
Database :
MEDLINE
Journal :
ACS applied materials & interfaces
Publication Type :
Academic Journal
Accession number :
29178781
Full Text :
https://doi.org/10.1021/acsami.7b15302