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Atomic and Laser Physics
Credit: Jack Hobhouse

Andrea Cavalleri

Professor of Physics

Sub department

  • Atomic and Laser Physics
andrea.cavalleri@physics.ox.ac.uk
Telephone: 01865 (2)72365
Clarendon Laboratory, room 316.3
  • About
  • Publications

Snapshots of non-equilibrium Dirac carrier distributions in graphene

Nature Materials 12:12 (2013) 1119-1124

Authors:

I Gierz, JC Petersen, M Mitrano, C Cacho, ICE Turcu, E Springate, A St枚hr, A K枚hler, U Starke, A Cavalleri

Abstract:

The optical properties of graphene are made unique by the linear band structure and the vanishing density of states at the Dirac point. It has been proposed that even in the absence of a bandgap, a relaxation bottleneck at the Dirac point may allow for population inversion and lasing at arbitrarily long wavelengths. Furthermore, efficient carrier multiplication by impact ionization has been discussed in the context of light harvesting applications. However, all of these effects are difficult to test quantitatively by measuring the transient optical properties alone, as these only indirectly reflect the energy- and momentum-dependent carrier distributions. Here, we use time- and angle-resolved photoemission spectroscopy with femtosecond extreme-ultraviolet pulses to directly probe the non-equilibrium response of Dirac electrons near the K-point of the Brillouin zone. In lightly hole-doped epitaxial graphene samples, we explore excitation in the mid- and near-infrared, both below and above the minimum photon energy for direct interband transitions. Whereas excitation in the mid-infrared results only in heating of the equilibrium carrier distribution, interband excitations give rise to population inversion, suggesting that terahertz lasing may be possible. However, in neither excitation regime do we find any indication of carrier multiplication, questioning the applicability of graphene for light harvesting. 漏 2013 Macmillan Publishers Limited. All rights reserved.

Displacive lattice excitation through nonlinear phononics viewed by femtosecond X-ray diffraction

SOLID STATE COMMUNICATIONS 169 (2013) 24-27

Authors:

M Foerst, R Mankowsky, H Bromberger, DM Fritz, H Lemke, D Zhu, M Chollet, Y Tomioka, Y Tokura, R Merlin, JP Hill, SL Johnson, A Cavalleri

Photoinduced melting of the orbital order in La0.5Sr1.5MnO4 measured with 4-fs laser pulses

PHYSICAL REVIEW B 88:7 (2013) ARTN 075107

Authors:

R Singla, A Simoncig, M Foerst, D Prabhakaran, AL Cavalieri, A Cavalleri

Possible observation of parametrically amplified coherent phasons in K0.3MoO3 using time-resolved extreme-ultraviolet angle-resolved photoemission spectroscopy

PHYSICAL REVIEW B 88:4 (2013) ARTN 045104

Authors:

HY Liu, I Gierz, JC Petersen, S Kaiser, A Simoncig, AL Cavalieri, C Cacho, ICE Turcu, E Springate, F Frassetto, L Poletto, SS Dhesi, Z-A Xu, T Cuk, R Merlin, A Cavalleri

Controlling superconductivity with strong terahertz fields

2012 Conference on Lasers and Electro-Optics, CLEO 2012 (2012)

Authors:

MC Hoffmann, A Dienst, D Fausti, S Kaiser, A Cavalleri

Abstract:

Ultrafast mid-infrared and terahertz pulses open a new avenue to control complex solids by directly accessing their low-energy excitations. Here we discuss recent results in inducing and manipulating superconductivity in cuprate compounds using strong fields. 漏 2012 OSA.

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