Double-gyroid-structured functional materials : synthesis and applications /

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Bibliographic Details
Author / Creator:Scherer, Maik Rudolf Johann.
Imprint:Cham ; New York : Springer, c2013.
Description:1 online resource.
Language:English
Series:Springer theses, 2190-5053
Springer theses.
Subject:
Format: E-Resource Dissertations Book
URL for this record:http://pi.lib.uchicago.edu/1001/cat/bib/9851744
Hidden Bibliographic Details
ISBN:9783319003542 (electronic bk.)
3319003542 (electronic bk.)
9783319003535
Notes:Thesis (PhD.)-- University of Cambridge, 2013.
Includes bibliographical references.
Description based on online resource; title from PDF title page (SpringerLink, viewed July 9, 2013).
Summary:The development of new high-tech applications and devices has created a seemingly insatiable demand for novel functional materials with enhanced and tailored properties. Such materials can be achieved by three-dimensional structuring on the nanoscale, giving rise to a significant enhancement of particular functional characteristics which stems from the ability to access both surface/interface and bulk properties. The highly ordered, bicontinuous double-gyroid morphology is a fascinating and particularly suitable 3D nanostructure for this purpose due to its highly accessible surface area, connectivity, narrow pore diameter distribution and superb structural stability. The presented study encompasses a wide range of modern nanotechnology techniques in a highly versatile bottom-up nanopatterning strategy that splits the fabrication process into two successive steps: the preparation of mesoporous double-gyroid templates utilizing diblock copolymer self-assembly, and their replication with a functional material employing electrochemical deposition and atomic layer deposition. The double-gyroid structured materials discussed include metals, metal oxides, and conjugated polymers, which are applied and characterized in high-performance devices, such as electrochromic displays, supercapacitors, chemical sensors and photovoltaics. This publication addresses a wide range of readers, from researchers and specialists who are professionally active in the field, to more general readers interested in chemistry, nanoscience and physics.