Crystalline monolayers of polymer particles are useful templates for surface microstructuring. Here, the authors discuss the use of oxygen plasma to tune interparticle distances in such films. A systematic evaluation of the etch process depending on particle size, plasma power, etching time and particle density was performed. The size evolution of individual particles was analyzed using scanning electron microscopy and compared with different models of the etching process. The authors conclude that none of the existing etch models fit the data very well. Analysis of the particle shape throughout the etching process indicates that changes in particle geometry occur depending on their original size and density. In dense films, bridges form between the particles’ original contact points. Particles increasingly deviate from a spherical geometry. Such shape changes are not captured by current models of the etching process. The authors propose a mechanism to explain the formation of bridges between the particles and their role in the preservation of long-range order. This paper is supplemented by supporting information. Supplementary information will be available at http://www.icevirtuallibrary.com/upload/10.1680bbn.13.00002_SupplementaryInformation.pdf.
Article navigation
September 2013
Research Article|
September 01 2013
Size and shape evolution of PS particle layers during etching Available to Purchase
Christina T. Bauer, Dipl.Biophys.;
Christina T. Bauer, Dipl.Biophys.
†
Functional Surfaces Group, INM-Leibniz Institute for New Materials, SaarbrÜcken, Germany
†The authors contributed equally to this work.
Search for other works by this author on:
Anne Wonn, BEng;
Anne Wonn, BEng
†
Structure Formation Group, INM-Leibniz Institute for New Materials, SaarbrÜcken, Germany
†The authors contributed equally to this work.
Search for other works by this author on:
Daniel Brodoceanu, Dr.;
Daniel Brodoceanu, Dr.
Structure Formation Group, INM-Leibniz Institute for New Materials, SaarbrÜcken, Germany
Search for other works by this author on:
Philip Born, Dr.;
Philip Born, Dr.
Structure Formation Group, INM-Leibniz Institute for New Materials, SaarbrÜcken, Germany
Search for other works by this author on:
Elmar Kroner, Dr.;
Elmar Kroner, Dr.
Functional Surfaces Group, INM-Leibniz Institute for New Materials, SaarbrÜcken, Germany
Search for other works by this author on:
Tobias Kraus, Dr.
Tobias Kraus, Dr.
*
Structure Formation Group, INM-Leibniz Institute for New Materials, SaarbrÜcken, Germany
*Corresponding author e-mail address: tobias.kraus@inm-gmbh.de
Search for other works by this author on:
†The authors contributed equally to this work.
*Corresponding author e-mail address: tobias.kraus@inm-gmbh.de
Publisher: Emerald Publishing
Received:
January 30 2013
Accepted:
April 16 2013
Online ISSN: 2045-9866
Print ISSN: 2045-9858
ICE Publishing: All rights reserved
2013
Bioinspired, Biomimetic and Nanobiomaterials (2013) 2 (3): 130–140.
Article history
Received:
January 30 2013
Accepted:
April 16 2013
Citation
Bauer CT, Wonn A, Brodoceanu D, Born P, Kroner E, Kraus T (2013), "Size and shape evolution of PS particle layers during etching". Bioinspired, Biomimetic and Nanobiomaterials, Vol. 2 No. 3 pp. 130–140, doi: https://doi.org/10.1680/bbn.13.00002
Download citation file:
Suggested Reading
Nanobiotechnology of protein-based compartments: steps toward nanofactories
Bioinspired, Biomimetic and Nanobiomaterials (December,2013)
Mineralization of gold nanoparticles using tailored M13 phages
Bioinspired, Biomimetic and Nanobiomaterials (December,2013)
Pore characteristics and mechanical properties of silica templated by wood
Bioinspired, Biomimetic and Nanobiomaterials (September,2014)
The pomelo peel and derived nanoscale-precision gradient silica foams
Bioinspired, Biomimetic and Nanobiomaterials (April,2012)
Noble metal nanoparticles on biotemplated nanowires
Bioinspired, Biomimetic and Nanobiomaterials (April,2012)
Related Chapters
Feasibility Analysis and Study
The Emerald Handbook of Entrepreneurship in Tourism, Travel and Hospitality: Skills for Successful Ventures
Recommended for you
These recommendations are informed by your reading behaviors and indicated interests.
