| Literature DB >> 28788345 |
Haifang Tong1, Donghai Feng2, Xiao Li3, Li Deng4, Yuxin Leng5, Tianqing Jia6, Zhenrong Sun7.
Abstract
We present an experimental investigation of optical spin orientation in colloidal CdS quantum dots (QDs) by a femtosecond laser pulse at room temperature. The spin carrier and its spin-generation process are clarified. Firstly, the observed spin signals of CdS QDs in time-resolved Faraday rotation measurements are shown to belong to electron carriers, by comparing the spin dephasing dynamics and Landé g factor between CdS QDs and bulk materials. Secondly, spin dynamics unaffected by the faster carrier recombination suggests that the spin-polarized electrons are not photoexcited but resident in the dots. Moreover, hole spins should dephase very fast compared with electron spins, otherwise the trion (two electrons with opposite spin orientations and one hole) recombination process will affect the resident electron spin signals. The electron spin is generated in a short time of which the excitation light is absorbed and the resident electron is excited to trion states, i.e., of pulse durations. Due to fast hole spin dephasing, trion recombination gives null spin signals, and the subsequent electron spin dynamics is controlled by its intrinsic mechanisms.Entities:
Keywords: electron spin; optical manipulation; pump-probe; quantum dots
Year: 2013 PMID: 28788345 PMCID: PMC5452855 DOI: 10.3390/ma6104523
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Photoluminescence spectra for CdS quantum dots (QDs) and bulk samples. Peak intensities are normalized to the same level.
Figure 2Experimental scheme for time-resolved Faraday rotation measurements.
Figure 3Time-resolved Faraday rotation signals for CdS QD and bulk sample in different transverse magnetic fields.
Figure 4Magnetic field dependence of time-resolved Faraday rotation (TRFR) oscillation frequencies. Linear fits give information of g factor, with error obtained from the fit algorithm.
Figure 5Comparison between time-resolved differential transmission and Faraday rotation measurement results under identical experimental conditions.
Figure 6Excitation scheme of the electron spin generation in a negatively charged quantum dot under resonant trion excitation. ↑↓ electron spin; , hole spin. , trion recombination time and hole spin lifetime, respectively.