Keith A. Abel
University of Victoria
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Publication
Featured researches published by Keith A. Abel.
Journal of the American Chemical Society | 2009
Keith A. Abel; John-Christopher Boyer; Frank C. J. M. van Veggel
Hexagonal-phase NaYF(4)/NaGdF(4) core/shell nanocrystals were synthesized and investigated by X-ray photoelectron spectroscopy (XPS) using tunable synchrotron radiation. Based on the ratio of the Y(3+) 3d to Gd(3+) 4d core level intensities at varying photoelectron kinetic energies, we conclude that Gd(3+) resides predominantly at the surface of the nanocrystals, proving a core/shell structure. These nanocrystals show potential for use as contrast agents in magnetic resonance imaging (MRI) applications and optical imaging.
Nano Letters | 2009
Andras G. Pattantyus-Abraham; Haijun Qiao; Jingning Shan; Keith A. Abel; Tiansi Wang; Frank C. J. M. van Veggel; Jeff F. Young
A novel method for patterning optically active colloidal PbSe nanocrystals on Si surfaces is reported. Oleate-capped PbSe nanocrystals were found to adhere preferentially to H-terminated Si surfaces over oxide and alkyl-terminated Si surfaces. Scanning probe lithography was used to oxidize locally a dodecyl monolayer on the Si surface of a silicon-on-insulator wafer prepatterned with photonic crystal microcavities. Aqueous HF was then used to remove the oxide and expose H-terminated Si areas, yielding patterned PbSe nanocrystals on the Si surface after exposure to a nanocrystal solution. This patterning technique allows for the selective deposition of PbSe nanocrystals at the main antinode of the silicon-based microcavities. More than a 10-fold photoluminescence enhancement due to the cavity-nanocrystal coupling was observed.
Optics Express | 2012
Charles Foell; Ellen Schelew; Haijun Qiao; Keith A. Abel; S. Hughes; Frank C. J. M. van Veggel; Jeff F. Young
We report coupling of the excitonic photon emission from photoexcited PbSe colloidal quantum dots (QDs) into an optical circuit that was fabricated in a silicon-on-insulator wafer using a CMOS-compatible process. The coupling between excitons and sub-μm sized silicon channel waveguides was mediated by a photonic crystal microcavity. The intensity of the coupled light saturates rapidly with the optical excitation power. The saturation behaviour was quantitatively studied using an isolated photonic crystal cavity with PbSe QDs site-selectively located at the cavity mode antinode position. Saturation occurs when a few μW of continuous wave HeNe pump power excites the QDs with a Gaussian spot size of 2 μm. By comparing the results with a master equation analysis that rigorously accounts for the complex dielectric environment of the QD excitons, the saturation is attributed to ground state depletion due to a non-radiative exciton decay channel with a trap state lifetime ~ 3 μs.
Journal of Physical Chemistry Letters | 2011
Keith A. Abel; John-Christopher Boyer; Carmen M. Andrei; Frank C. J. M. van Veggel
Chemistry of Materials | 2008
Keith A. Abel; Jingning Shan; John-Christopher Boyer; Fraser Harris; Frank C. J. M. van Veggel
Journal of Physical Chemistry Letters | 2010
Keith A. Abel; Haijun Qiao; Jeff F. Young; Frank C. J. M. van Veggel
Journal of Physical Chemistry C | 2012
Keith A. Abel; Paul A. FitzGerald; Ting-Yu Wang; Tom Regier; Mati Raudsepp; Simon P. Ringer; Gregory G. Warr; Frank C. J. M. van Veggel
Chemistry of Materials | 2013
Jothirmayanantham Pichaandi; Keith A. Abel; Noah J. J. Johnson; Frank C. J. M. van Veggel
Physical Review B | 2010
Haijun Qiao; Keith A. Abel; Frank C. J. M. van Veggel; Jeff F. Young
Physical Review B | 2014
Charles Foell; Keith A. Abel; Frank C. J. M. van Veggel; Jeff F. Young