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        <dc:title>Mechanically controlled binary conductance switching of a single-molecule junction</dc:title>
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        <bibo:abstract>Molecular-scale components are expected to be central to the realization of nanoscale electronic devices1,2,3. Although molecular-scale switching has been reported in atomic quantum point contacts4,5,6, single-molecule junctions provide the additional flexibility of tuning the on/off conductance states through molecular design. To date, switching in single-molecule junctions has been attributed to changes in the conformation or charge state of the molecule7,8,9,10,11,12. Here, we demonstrate reversible binary switching in a single-molecule junction by mechanical control of the metal–molecule contact geometry. We show that 4,4&apos;-bipyridine–gold single-molecule junctions can be reversibly switched between two conductance states through repeated junction elongation and compression. Using first-principles calculations, we attribute the different measured conductance states to distinct contact geometries at the flexible but stable nitrogen–gold bond: conductance is low when the N–Au bond is perpendicular to the conducting π-system, and high otherwise. This switching mechanism, inherent to the pyridine–gold link, could form the basis of a new class of mechanically activated single-molecule switches.</bibo:abstract>
        <bibo:volume>4</bibo:volume>
        <bibo:issue>4</bibo:issue>
        <bibo:startPage>230-234</bibo:startPage>
        <bibo:endPage>230-234</bibo:endPage>
        <dc:publisher>Springer Nature</dc:publisher>
        <bibo:doi rdf:resource="10.1038/nnano.2009.10" />
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