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          <family>Lock</family>
          <given>Duncan</given>
        </name>
        <id>d.lock@bath.ac.uk</id>
        <affiliation>University of Bath</affiliation>
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          <given>Kristina</given>
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        <orcid>0000-0002-3679-9948</orcid>
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          <family>Palmer</family>
          <given>Richard</given>
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          <given>Peter</given>
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        <orcid>0000-0002-0810-8468</orcid>
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    <title>Atomically resolved real-space imaging of hot electron dynamics</title>
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      <item>KF0010</item>
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      <item>dept_physics</item>
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    <abstract>The dynamics of hot electrons are central to understanding the properties of many electronic devices.  But their ultra-short lifetime, typically 100 fs or less, and hence their corresponding transport length-scale of a few nanometers severely constrains real space investigations. Here we report variable temperature and  voltage measurements of the nonlocal manipulation of adsorbed molecules on the Si(111)-7x7 surface in the scanning tunnelling microscope. The range of the nonlocal effect increases with temperature and, at constant temperature, is invariant over a wide range of electron energies. The measurements probe, in real space, the underlying hot electron dynamics on the 10 nm scale and are well described by a two-dimensional diffusive model with a single decay channel, consistent with 2PPE measurements of the real time dynamics.</abstract>
    <date>2015</date>
    <publisher>University of Bath</publisher>
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        <funder_id>https://doi.org/10.13039/501100000266</funder_id>
        <grant_id>EP/K00137X/1</grant_id>
        <project_name>Breaking the Single Atom Limit in Atomic Manipulation</project_name>
      </item>
    </funding>
    <collection_method>Please see main paper methods section. For radial distributions we present the raw N/N0 and thermally corrected data as well, again see methods section for details.</collection_method>
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      <item>https://doi.org/10.1038/ncomms9365</item>
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    <version>1</version>
    <doi>10.15125/BATH-00126</doi>
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        <link>https://doi.org/10.1038/ncomms9365</link>
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