| Literature DB >> 23787751 |
Jian Cui1, Andrew P Beyler, Lisa F Marshall, Ou Chen, Daniel K Harris, Darcy D Wanger, Xavier Brokmann, Moungi G Bawendi.
Abstract
The spectral linewidth of an ensemble of fluorescent emitters is dictated by the combination of single-emitter linewidths and sample inhomogeneity. For semiconductor nanocrystals, efforts to tune ensemble linewidths for optical applications have focused primarily on eliminating sample inhomogeneities, because conventional single-molecule methods cannot reliably build accurate ensemble-level statistics for single-particle linewidths. Photon-correlation Fourier spectroscopy in solution (S-PCFS) offers a unique approach to investigating single-nanocrystal spectra with large sample statistics and high signal-to-noise ratios, without user selection bias and at fast timescales. With S-PCFS, we directly and quantitatively deconstruct the ensemble linewidth into contributions from the average single-particle linewidth and from sample inhomogeneity. We demonstrate that single-particle linewidths vary significantly from batch to batch and can be synthetically controlled. These findings delineate the synthetic challenges facing underdeveloped nanomaterials such as InP and InAs core-shell particles and introduce new avenues for the synthetic optimization of fluorescent nanoparticles.Entities:
Mesh:
Substances:
Year: 2013 PMID: 23787751 PMCID: PMC3843964 DOI: 10.1038/nchem.1654
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427