Coherent Electron Transfer at the Ag/Graphite Heterojunction Interface

Charge transfer in transduction of light to electrical or chemical energy at heterojunctions of metals with semiconductors or semimetals is believed to occur by photogenerated hot electrons in metal undergoing incoherent internal photoemission through the heterojunction interface. Charge transfer, h...

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Veröffentlicht in:Physical review letters 2018-03, Vol.120 (12), p.126801-126801, Article 126801
Hauptverfasser: Tan, Shijing, Dai, Yanan, Zhang, Shengmin, Liu, Liming, Zhao, Jin, Petek, Hrvoje
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Sprache:eng
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Zusammenfassung:Charge transfer in transduction of light to electrical or chemical energy at heterojunctions of metals with semiconductors or semimetals is believed to occur by photogenerated hot electrons in metal undergoing incoherent internal photoemission through the heterojunction interface. Charge transfer, however, can also occur coherently by dipole coupling of electronic bands at the heterojunction interface. Microscopic physical insights into how transfer occurs can be elucidated by following the coherent polarization of the donor and acceptor states on the time scale of electronic dephasing. By time-resolved multiphoton photoemission spectroscopy (MPP), we investigate the coherent electron transfer from an interface state that forms upon chemisorption of Ag nanoclusters onto graphite to a σ symmetry interlayer band of graphite. Multidimensional MPP spectroscopy reveals a resonant two-photon transition, which dephases within 10 fs completing the coherent transfer.
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.120.126801