Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors
Nanoporous silica wires of various wire diameters were developed by space-confined molecular self-assembly of triblock copolymer ethylene/propylene/ethylene (P123) and silica alkoxide precursor (tetraethylorthosilicate, TEOS). Two distinctive hard-templating substrates, anodized aluminum oxide (AAO)...
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doaj-5fbbb53aa80a4f298b8ad8bc621ea49f2020-11-25T01:17:59ZengAIMS PressAIMS Materials Science2372-04842015-09-012434635510.3934/matersci.2015.4.346201504346Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursorsMichael Z. Hu0Peng Lai1Oak Ridge National Laboratory, Oak Ridge, TN 37831, USAOak Ridge National Laboratory, Oak Ridge, TN 37831, USANanoporous silica wires of various wire diameters were developed by space-confined molecular self-assembly of triblock copolymer ethylene/propylene/ethylene (P123) and silica alkoxide precursor (tetraethylorthosilicate, TEOS). Two distinctive hard-templating substrates, anodized aluminum oxide (AAO) and track-etched polycarbonate (EPC), with channel diameters in the range between 10 nm and 200 nm were employed for space-confinement of soft molecular self-assembly driven by the block-copolymer microphase separation. It was observed in the scanning and transmission electron microscope (STEM) studies that the substrate geometry and material characteristics had pronounced effects on the structure and morphology of the silica nanowires. A “substrate wall effect” was proposed to explain the ordering and orientation of the intra-wire mesostructure. Circular and spiral nanostructures were found only in wires formed in AAO substrate, not in EPC. Pore-size differences and distinctive wall morphologies of the nanowires relating to the substrates were discussed. It was shown that the material and channel wall characteristics of different substrates play key roles in the ordering and morphology of the intra-wire nanostructures.http://www.aimspress.com/Materials/article/442/fulltext.htmlnanoporous silica wiresmesoporous silicananowiresanodized aluminum oxide (AAO)track-etched polycarbonate (EPC)space-confinementself-assembly |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Michael Z. Hu Peng Lai |
spellingShingle |
Michael Z. Hu Peng Lai Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors AIMS Materials Science nanoporous silica wires mesoporous silica nanowires anodized aluminum oxide (AAO) track-etched polycarbonate (EPC) space-confinement self-assembly |
author_facet |
Michael Z. Hu Peng Lai |
author_sort |
Michael Z. Hu |
title |
Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors |
title_short |
Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors |
title_full |
Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors |
title_fullStr |
Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors |
title_full_unstemmed |
Substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors |
title_sort |
substrate effect on nanoporous structure of silica wires by channel-confined self-assembly of block-copolymer and sol-gel precursors |
publisher |
AIMS Press |
series |
AIMS Materials Science |
issn |
2372-0484 |
publishDate |
2015-09-01 |
description |
Nanoporous silica wires of various wire diameters were developed by space-confined molecular self-assembly of triblock copolymer ethylene/propylene/ethylene (P123) and silica alkoxide precursor (tetraethylorthosilicate, TEOS). Two distinctive hard-templating substrates, anodized aluminum oxide (AAO) and track-etched polycarbonate (EPC), with channel diameters in the range between 10 nm and 200 nm were employed for space-confinement of soft molecular self-assembly driven by the block-copolymer microphase separation. It was observed in the scanning and transmission electron microscope (STEM) studies that the substrate geometry and material characteristics had pronounced effects on the structure and morphology of the silica nanowires. A “substrate wall effect” was proposed to explain the ordering and orientation of the intra-wire mesostructure. Circular and spiral nanostructures were found only in wires formed in AAO substrate, not in EPC. Pore-size differences and distinctive wall morphologies of the nanowires relating to the substrates were discussed. It was shown that the material and channel wall characteristics of different substrates play key roles in the ordering and morphology of the intra-wire nanostructures. |
topic |
nanoporous silica wires mesoporous silica nanowires anodized aluminum oxide (AAO) track-etched polycarbonate (EPC) space-confinement self-assembly |
url |
http://www.aimspress.com/Materials/article/442/fulltext.html |
work_keys_str_mv |
AT michaelzhu substrateeffectonnanoporousstructureofsilicawiresbychannelconfinedselfassemblyofblockcopolymerandsolgelprecursors AT penglai substrateeffectonnanoporousstructureofsilicawiresbychannelconfinedselfassemblyofblockcopolymerandsolgelprecursors |
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