| Literature DB >> 20672111 |
Wen-Hao Chang1, Chia-Hsien Lin, Ying-Jhe Fu, Ta-Chun Lin, Hsuan Lin, Shuen-Jen Cheng, Sheng-Di Lin, Chien-Ping Lee.
Abstract
We report on the diamagnetic responses of different exciton complexes in single InAs/GaAs self-assembled quantum dots (QDs) and quantum rings (QRs). For QDs, the imbalanced magnetic responses of inter-particle Coulomb interactions play a crucial role in the diamagnetic shifts of excitons (X), biexcitons (XX), and positive trions (X-). For negative trions (X-) in QDs, anomalous magnetic responses are observed, which cannot be described by the conventional quadratic energy shift with the magnetic field. The anomalous behavior is attributed to the apparent change in the electron wave function extent after photon emission due to the strong Coulomb attraction by the hole in its initial state. In QRs, the diamagnetic responses of X and XX also show different behaviors. Unlike QDs, the diamagnetic shift of XX in QRs is considerably larger than that of X. The inherent structural asymmetry combined with the inter-particle Coulomb interactions makes the wave function distribution of XX very different from that of X in QRs. Our results suggest that the phase coherence of XX in QRs may survive from the wave function localization due to the structural asymmetry or imperfections.Entities:
Keywords: Diamagnetic shift; Magnetophotoluminescence; Quantum dots; Quantum rings
Year: 2010 PMID: 20672111 PMCID: PMC2894115 DOI: 10.1007/s11671-010-9531-3
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Experimental setup for single-QD magneto-PL measurements
Figure 2Magneto-PL spectra for a typical QD measured under an applied B = 0–6 T
Figure 3a The energy shifts of X, X+, and XX in a QD as a function of B2. b The energy shifts of X− as a function of B2. A clear non-quadratic B dependence can be seen
Figure 4A schematic for the charge configurations of X− in QDs before and after photon emissions. The final-state electron is more extended due the Coulomb attraction of the hole in its initial state
Figure 5a Surface topography and b line scans along [110] and [] directions of uncapped QRs. c Typical single-QR magneto-PL spectra taken under different applied B. d The B-dependent energy shifts of the X and XX. Solid and dashed lines are fitting curves using quadratic B dependence
Figure 6a A schematic for the QR geometry with a structural anisotropy used in model calculations. b and c are the calculated electron wave functions of the lowest X and XX states. The dash circle represents the rim diameter of 14 nm