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Self-assembly of designed precursors: A route to crystallographically aligned new materials with controlled nanoarchitecture
Modulated elemental reactants is a method by which new and complex intergrowth compounds can be synthesized by the self-assembly of designed precursors prepared by physical vapor deposition. Careful calibration of the composition and thickness of the precursors ensures the formation of the desired p...
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Published in: | Journal of solid state chemistry 2016-04, Vol.236 (C), p.173-185 |
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container_title | Journal of solid state chemistry |
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creator | Westover, Richard Atkins, Ryan A. Falmbigl, Matthias Ditto, Jeffrey J. Johnson, David C. |
description | Modulated elemental reactants is a method by which new and complex intergrowth compounds can be synthesized by the self-assembly of designed precursors prepared by physical vapor deposition. Careful calibration of the composition and thickness of the precursors ensures the formation of the desired product by precise control of local composition and diffusion lengths. Superstructures of increasing complexity can be realized using binary and ternary systems as starting points. The synthesis of systems based on three different binary compounds, either alloyed together or separated into distinct layers, expands the number of possible superstructures that can be formed using this technique, but provides analytical challenges. The synthesis of [(SnSe)1.15]1([TaxV1−x]Se2)1[(SnSe)1.15]1([VyTa1−y]Se2)1 compound is used to illustrate the preparation of precursors and the challenges in both measuring and limiting the interdiffusion of layers during self-assembly. Systematic changes in the electrical properties of (SnSe)1+δ(TaxV1−x)Se2 alloys are observed as x is varied. The electrical resistivity of [(SnSe)1.15]1([TaxV1−x]Se2)1[(SnSe)1.15]1([VyTa1−y]Se2)1 can be modeled as the two constituent layers in parallel.
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doi_str_mv | 10.1016/j.jssc.2015.08.018 |
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[Display omitted]</description><subject>2-D</subject><subject>Alloy systems</subject><subject>Alloys</subject><subject>Binary systems (materials)</subject><subject>Heterostructure</subject><subject>Kinetic control</subject><subject>Misfit layer compound</subject><subject>Modulated elements reactants</subject><subject>Nanostructure</subject><subject>Precursors</subject><subject>Self assembly</subject><subject>Superstructures</subject><subject>Synthesis</subject><subject>Thin film</subject><issn>0022-4596</issn><issn>1095-726X</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2016</creationdate><recordtype>article</recordtype><recordid>eNp9kU-LFDEQxYMoOK5-AU_Bk5fuTdJJd0e8LMv6BxY8qOAtZJLqnQyZzphKuwz44U3TnveUCvV7Va94hLzlrOWM99fH9ojoWsG4atnYMj4-IzvOtGoG0f96TnaMCdFIpfuX5BXikTHO1Sh35O93iFNjEeG0jxeaJuoBw8MMnp4zuCVjyviB3tCclgK0JOryBYuNMT1kez4EV8sLtXHTzPBIT7ZADjYifQzlQF2aS04xrl07J5vdIRRwZcnwmryYKgdv_r9X5Oenux-3X5r7b5-_3t7cN04yWZqpg06Nmvl9x7TzuhOTsOMEvJdcdmDrV4th3w129E5NVlrFeye18trttWfdFXm3zU1YgkG37j9UX3O1YbhQgvUr9H6Dzjn9XgCLOQV0EKOdIS1o-Mh7Jrth4BUVG-pyQswwmXMOJ5svhjOz5mGOZs3DrHkYNpqaRxV93ERQL_0TIK9GYHbgQ159-BSekv8DIMuXGw</recordid><startdate>201604</startdate><enddate>201604</enddate><creator>Westover, Richard</creator><creator>Atkins, Ryan A.</creator><creator>Falmbigl, Matthias</creator><creator>Ditto, Jeffrey J.</creator><creator>Johnson, David C.</creator><general>Elsevier Inc</general><general>Elsevier</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7U5</scope><scope>8FD</scope><scope>L7M</scope><scope>OTOTI</scope></search><sort><creationdate>201604</creationdate><title>Self-assembly of designed precursors: A route to crystallographically aligned new materials with controlled nanoarchitecture</title><author>Westover, Richard ; Atkins, Ryan A. ; Falmbigl, Matthias ; Ditto, Jeffrey J. ; Johnson, David C.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c404t-f3e35890db309cd932f2a8fe164143ea2f2927b37a8dc5fa4a516c495d9cb9d03</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2016</creationdate><topic>2-D</topic><topic>Alloy systems</topic><topic>Alloys</topic><topic>Binary systems (materials)</topic><topic>Heterostructure</topic><topic>Kinetic control</topic><topic>Misfit layer compound</topic><topic>Modulated elements reactants</topic><topic>Nanostructure</topic><topic>Precursors</topic><topic>Self assembly</topic><topic>Superstructures</topic><topic>Synthesis</topic><topic>Thin film</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Westover, Richard</creatorcontrib><creatorcontrib>Atkins, Ryan A.</creatorcontrib><creatorcontrib>Falmbigl, Matthias</creatorcontrib><creatorcontrib>Ditto, Jeffrey J.</creatorcontrib><creatorcontrib>Johnson, David C.</creatorcontrib><collection>CrossRef</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>Technology Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><collection>OSTI.GOV</collection><jtitle>Journal of solid state chemistry</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Westover, Richard</au><au>Atkins, Ryan A.</au><au>Falmbigl, Matthias</au><au>Ditto, Jeffrey J.</au><au>Johnson, David C.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Self-assembly of designed precursors: A route to crystallographically aligned new materials with controlled nanoarchitecture</atitle><jtitle>Journal of solid state chemistry</jtitle><date>2016-04</date><risdate>2016</risdate><volume>236</volume><issue>C</issue><spage>173</spage><epage>185</epage><pages>173-185</pages><issn>0022-4596</issn><eissn>1095-726X</eissn><abstract>Modulated elemental reactants is a method by which new and complex intergrowth compounds can be synthesized by the self-assembly of designed precursors prepared by physical vapor deposition. Careful calibration of the composition and thickness of the precursors ensures the formation of the desired product by precise control of local composition and diffusion lengths. Superstructures of increasing complexity can be realized using binary and ternary systems as starting points. The synthesis of systems based on three different binary compounds, either alloyed together or separated into distinct layers, expands the number of possible superstructures that can be formed using this technique, but provides analytical challenges. The synthesis of [(SnSe)1.15]1([TaxV1−x]Se2)1[(SnSe)1.15]1([VyTa1−y]Se2)1 compound is used to illustrate the preparation of precursors and the challenges in both measuring and limiting the interdiffusion of layers during self-assembly. Systematic changes in the electrical properties of (SnSe)1+δ(TaxV1−x)Se2 alloys are observed as x is varied. The electrical resistivity of [(SnSe)1.15]1([TaxV1−x]Se2)1[(SnSe)1.15]1([VyTa1−y]Se2)1 can be modeled as the two constituent layers in parallel.
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subjects | 2-D Alloy systems Alloys Binary systems (materials) Heterostructure Kinetic control Misfit layer compound Modulated elements reactants Nanostructure Precursors Self assembly Superstructures Synthesis Thin film |
title | Self-assembly of designed precursors: A route to crystallographically aligned new materials with controlled nanoarchitecture |
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