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Conductive supports for combined AFM and SECM on biological membranes
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 175719
Author(s) Frederix, Patrick L. T. M.; Bosshart, Patrick D.; Akiyyama, Terunobu; Chami, Mohamed; Gullo, Maurizio R.; Blackstock, Jason J.; Dooleweerdt, Karin; de Rooij, Nico F.; Stauffer, Urs; Engel, Andreas
Author(s) at UniBasel Engel, Andreas
Year 2008
Title Conductive supports for combined AFM and SECM on biological membranes
Journal Nanotechnology
Volume 19
Number 38
Pages / Article-Number 384004
Abstract Four different conductive supports are analysed regarding their suitability for combined atomic force and scanning electrochemical microscopy (AFM-SECM) on biological membranes. Highly oriented pyrolytic graphite (HOPG), MoS(2), template stripped gold, and template stripped platinum are compared as supports for high resolution imaging of reconstituted membrane proteins or native membranes, and as electrodes for transferring electrons from or to a redox molecule. We demonstrate that high resolution topographs of the bacterial outer membrane protein F can be recorded by contact mode AFM on all four supports. Electrochemical feedback experiments with conductive cantilevers that feature nanometre-scale electrodes showed fast re-oxidation of the redox couple Ru(NH(3))(6)(3+/2+) with the two metal supports after prolonged immersion in electrolyte. In contrast, the re-oxidation rates decayed quickly to unpractical levels with HOPG or MoS(2) under physiological conditions. On HOPG we observed heterogeneity in the re-oxidation rate of the redox molecules with higher feedback currents at step edges. The latter results demonstrate the capability of conductive cantilevers with small electrodes to measure minor variations in an SECM signal and to relate them to nanometre-scale features in a simultaneously recorded AFM topography. Rapid decay of re-oxidation rate and surface heterogeneity make HOPG or MoS(2) less attractive for combined AFM-SECM experiments on biological membranes than template stripped gold or platinum supports.
Publisher IOP Publ.
ISSN/ISBN 0957-4484
edoc-URL http://edoc.unibas.ch/dok/A5262441
Full Text on edoc No
Digital Object Identifier DOI 10.1088/0957-4484/19/38/384004
PubMed ID http://www.ncbi.nlm.nih.gov/pubmed/21832564
ISI-Number WOS:000258385700005
Document type (ISI) Journal Article
 
   

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