Bypassing the energy-time uncertainty in time-resolved photoemission
arXiv:1604.08511 · doi:10.1103/PhysRevB.95.115132
Abstract
The energy-time uncertainty is an intrinsic limit for time-resolved experiments imposing a tradeoff between the duration of the light pulses used in experiments and their frequency content. In standard time-resolved photoemission, this limitation maps directly onto a tradeoff between the time resolution of the experiment and the energy resolution that can be achieved on the electronic spectral function. Here we propose a protocol to disentangle the energy and time resolutions in photoemission. We demonstrate that dynamical information on all time scales can be retrieved from time-resolved photoemission experiments using suitably shaped light pulses of quantum or classical nature. As a paradigmatic example, we study the dynamical buildup of the Kondo peak, a narrow feature in the electronic response function arising from the screening of a magnetic impurity by the conduction electrons. After a quench, the electronic screening builds up on timescales shorter than the inverse width of the Kondo peak and we demonstrate that the proposed experimental scheme could be used to measure the intrinsic time scales of such electronic screening. The proposed approach provides an experimental framework to access the nonequilibrium response of collective electronic properties beyond the spectral uncertainty limit and will enable the direct measurement of phenomena such as excited Higgs modes and, possibly, the retarded interactions in superconducting systems.
Extended introduction, added references to section IIB, improved wording in section IIC
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- Time evolution of the Kondo resonance in response to a quench
- Time-resolved ARPES on cuprates: Tracking the low-energy electrodynamics in the time domain
- Noise Correlations in time- and angular-resolved photoemission spectroscopy
- Photo-induced charge dynamics in 1-TaS
- Quench dynamics of correlated quantum dot proximitized to superconducting lead
- Role of matrix elements in the time-resolved photoemission signal
- Time-dependent spectral functions of the Anderson impurity model in response to a quench with application to time-resolved photoemission spectroscopy
- Interpreting pulse-shape effects in pump-probe spectroscopies
- Self-energy method for time-dependent spectral functions of the Anderson impurity model within the time-dependent numerical renormalization group approach