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Sökning: WFRF:(Hübener Hannes)

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1.
  • Dong, Shuo, et al. (författare)
  • Direct measurement of key exciton properties: Energy, dynamics, and spatial distribution of the wave function
  • 2021
  • Ingår i: Natural Sciences. - : Wiley. - 2698-6248. ; 1:1
  • Tidskriftsartikel (refereegranskat)abstract
    • Excitons, Coulomb-bound electron–hole pairs, are the fundamental excitations governing the optoelectronic properties of semiconductors. Although optical signatures of excitons have been studied extensively, experimental access to the excitonic wave function itself has been elusive. Using multidimensional photoemission spectroscopy, we present a momentum-, energy-, and time-resolved perspective on excitons in the layered semiconductor WSe2. By tuning the excitation wavelength, we determine the energy–momentum signature of bright exciton formation and its difference from conventional single-particle excited states. The multidimensional data allow to retrieve fundamental exciton properties like the binding energy and the exciton–lattice coupling and to reconstruct the real-space excitonic distribution function via Fourier transform. All quantities are in excellent agreement with microscopic calculations. Our approach provides a full characterization of the exciton properties and is applicable to bright and dark excitons in semiconducting materials, heterostructures, and devices. Key points: The full life cycle of excitons is recorded with time- and angle-resolved photoemission spectroscopy. The real-space distribution of the excitonic wave function is visualized. Direct measurement of the exciton-phonon interaction.
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2.
  • Shin, Dongbin, et al. (författare)
  • Simulating Terahertz Field-Induced Ferroelectricity in Quantum Paraelectric SrTiO3
  • 2022
  • Ingår i: Physical Review Letters. - 1079-7114 .- 0031-9007. ; 129:16
  • Tidskriftsartikel (refereegranskat)abstract
    • Recent experiments have demonstrated that light can induce a transition from the quantum paraelectric to the ferroelectric phase of SrTiO3. Here, we investigate this terahertz field-induced ferroelectric phase transition by solving the time-dependent lattice Schrödinger equation based on first-principles calculations. We find that ferroelectricity originates from a light-induced mixing between ground and first excited lattice states in the quantum paraelectric phase. In agreement with the experimental findings, our study shows that the nonoscillatory second harmonic generation signal can be evidence of ferroelectricity in SrTiO3. We reveal the microscopic details of this exotic phase transition and highlight that this phenomenon is a unique behavior of the quantum paraelectric phase.
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