Literature DB >> 28630331

Distinguishing attosecond electron-electron scattering and screening in transition metals.

Cong Chen1, Zhensheng Tao2, Adra Carr1, Piotr Matyba1, Tibor Szilvási3, Sebastian Emmerich4, Martin Piecuch4, Mark Keller5, Dmitriy Zusin1, Steffen Eich4, Markus Rollinger4, Wenjing You1, Stefan Mathias4, Uwe Thumm6, Manos Mavrikakis3, Martin Aeschlimann4, Peter M Oppeneer7, Henry Kapteyn1, Margaret Murnane2.   

Abstract

Electron-electron interactions are the fastest processes in materials, occurring on femtosecond to attosecond timescales, depending on the electronic band structure of the material and the excitation energy. Such interactions can play a dominant role in light-induced processes such as nano-enhanced plasmonics and catalysis, light harvesting, or phase transitions. However, to date it has not been possible to experimentally distinguish fundamental electron interactions such as scattering and screening. Here, we use sequences of attosecond pulses to directly measure electron-electron interactions in different bands of different materials with both simple and complex Fermi surfaces. By extracting the time delays associated with photoemission we show that the lifetime of photoelectrons from the d band of Cu are longer by ∼100 as compared with those from the same band of Ni. We attribute this to the enhanced electron-electron scattering in the unfilled d band of Ni. Using theoretical modeling, we can extract the contributions of electron-electron scattering and screening in different bands of different materials with both simple and complex Fermi surfaces. Our results also show that screening influences high-energy photoelectrons (≈20 eV) significantly less than low-energy photoelectrons. As a result, high-energy photoelectrons can serve as a direct probe of spin-dependent electron-electron scattering by neglecting screening. This can then be applied to quantifying the contribution of electron interactions and screening to low-energy excitations near the Fermi level. The information derived here provides valuable and unique information for a host of quantum materials.

Entities:  

Keywords:  ARPES; attosecond science; electron–electron interactions; high harmonic generation

Year:  2017        PMID: 28630331      PMCID: PMC5502647          DOI: 10.1073/pnas.1706466114

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  25 in total

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4.  Critical behavior within 20 fs drives the out-of-equilibrium laser-induced magnetic phase transition in nickel.

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5.  High-flux ultrafast extreme-ultraviolet photoemission spectroscopy at 18.4 MHz pulse repetition rate.

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8.  Femtosecond X-ray induced changes of the electronic and magnetic response of solids from electron redistribution.

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