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Probing interband coulomb interactions in semiconductor nanostructures with 2D double-quantum coherence spectroscopy

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Abstract

Employing the interband exciton scattering model, we have derived a closed set of equations determining the 2D doublequantum coherence signal sensitive to the interband Coulomb interactions (i.e., many-body Coulomb interactions leading to the couplings between exciton and biexciton bands) in semiconductor nanostructures such as nanocrystals, quantum wires, wells, and carbon nanotubes. Our general analysis of 2D double-quantum coherence resonances has demonstrated that the interband Coulomb interactions lead to new cross-peaks whose appearance can be interpreted as a result of exciton and biexciton state mixing. The presence of the strongly coupled resonant states and weakly coupled background of off-resonant states can significantly simplify cross-peak analysis by eliminating the congested background spectrum. Our simulations of the 2D double-quantum coherence signal in PbSe NCs have validated this approach.

Original languageEnglish
Pages (from-to)5372-5382
Number of pages11
JournalJournal of Physical Chemistry B
Volume115
Issue number18
DOIs
StatePublished - May 12 2011

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