Ultrafast zero balance of the oscillator-strength sum rule in graphene

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Abstract

Oscillator-strength sum rule in light-induced transitions is one general form of quantum-mechanical identities. Although this sum rule is well established in equilibrium photo-physics, an experimental corroboration for the validation of the sum rule in a nonequilibrium regime has been a long-standing unexplored question. The simple band structure of graphene is an ideal system for investigating this question due to the linear Dirac-like energy dispersion. Here, we employed both ultrafast terahertz and optical spectroscopy to directly monitor the transient oscillator-strength balancing between quasi-free low-energy oscillators and high-energy Fermi-edge ones. Upon photo-excitation of hot Dirac fermions, we observed that the ultrafast depletion of high-energy oscillators precisely complements the increased terahertz absorption oscillators. Our results may provide an experimental priori to understand, for example, the intrinsic free-carrier dynamics to the high-energy photo-excitation, responsible for optoelectronic operation such as graphene-based phototransistor or solar-energy harvesting devices. © 2013 Macmillan Publishers Limited. All rights reserved.

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Kim, J., Lim, S. C., Chae, S. J., Maeng, I., Choi, Y., Cha, S., … Choi, H. (2013). Ultrafast zero balance of the oscillator-strength sum rule in graphene. Scientific Reports, 3. https://doi.org/10.1038/srep02663

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