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pubmed-article:16799749pubmed:abstractTextReports of DNA translocation measurements have been increasing rapidly in recent years due to advancements in pore fabrication and these measurements continue to provide insight into the physics of DNA translocations through MEMS based solid state nanopores. Specifically, it has recently been demonstrated that in addition to typically observed current blockages, enhancements in current can also be measured under certain conditions. Here, we further demonstrate the power of these nanopores for examining single DNA molecules by measuring these ionic currents as a function of the applied electric field and show that the direction of the resulting current pulse can provide fundamental insight into the physics of condensed counterions and the dipole saturation in single DNA molecules. Expanding on earlier work by Manning and others, we propose a model of DNA counterion ionic current and saturation of this current based on our experimental results. The work can have broad impact in understanding DNA sensing, DNA delivery into cells, DNA conductivity, and molecular electronics.lld:pubmed
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pubmed-article:16799749pubmed:authorpubmed-author:ChangHungHlld:pubmed
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pubmed-article:16799749pubmed:pagination263-9lld:pubmed
pubmed-article:16799749pubmed:dateRevised2006-11-15lld:pubmed
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pubmed-article:16799749pubmed:year2006lld:pubmed
pubmed-article:16799749pubmed:articleTitleDNA counterion current and saturation examined by a MEMS-based solid state nanopore sensor.lld:pubmed
pubmed-article:16799749pubmed:affiliationBirck Nanotechnology Center, School of Electrical and Computer Engineering, Purdue University, West Lafayette, IN, USA.lld:pubmed
pubmed-article:16799749pubmed:publicationTypeJournal Articlelld:pubmed
pubmed-article:16799749pubmed:publicationTypeResearch Support, U.S. Gov't, Non-P.H.S.lld:pubmed
pubmed-article:16799749pubmed:publicationTypeResearch Support, Non-U.S. Gov'tlld:pubmed
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