Comment on "Photoluminescence ring formation in coupled quantum wells: Excitonic versus ambipolar diffusion"
arXiv:0909.4265 · doi:10.1103/PhysRevLett.104.179701
Abstract
This is a comment on M. Stern, V. Garmider, E. Segre, M. Rappaport, V. Umansky, Y. Levinson, and I. Bar-Joseph, Phys. Rev. Lett. 101, 257402 (2008).
References in corpus (4)
Cited by in corpus (21)
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- Measurement of exciton correlations using electrostatic lattices
- Exciton effective mass enhancement in coupled quantum wells in electric and magnetic fields
- Pattern Formation in the Exciton Inner Ring
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- Theory of condensation of indirect excitons in a trap
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- Indirect excitons in a potential energy landscape created by a perforated electrode
- Excitation Energy Dependence of the Exciton Inner Ring
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- Quasi-condensation of bilayer excitons in a periodic potential
- Confocal shift interferometry of coherent emission from trapped dipolar excitons
- Observation of Algebraic Time Order for Two-Dimensional Dipolar Excitons
- Collective electronic excitation in a trapped ensemble of photogenerated dipolar excitons and free holes revealed by inelastic light scattering
- Spatially and time-resolved imaging of transport of indirect excitons in high magnetic fields
- Complexity of dipolar exciton Mott transition in GaN/(AlGa)N nanostructures
- A Microscopic Lattice for Two-dimensional Dipolar Excitons
- Overflow of a dipolar exciton trap at high magnetic fields