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Ultrafast excited-state dynamics of nanoscale near-infrared emissive polymersomes.

Publication ,  Journal Article
Duncan, TV; Ghoroghchian, PP; Rubtsov, IV; Hammer, DA; Therien, MJ
Published in: Journal of the American Chemical Society
July 2008

Formed through cooperative self-assembly of amphiphilic diblock copolymers and electronically conjugated porphyrinic near-infrared (NIR) fluorophores (NIRFs), NIR-emissive polymersomes (50 nm to 50 microm diameter polymer vesicles) define a family of organic-based, soft-matter structures that are ideally suited for deep-tissue optical imaging and sensitive diagnostic applications. Here, we describe magic angle and polarized pump-probe spectroscopic experiments that: (i) probe polymersome structure and NIRF organization and (ii) connect emitter structural properties and NIRF loading with vesicle emissive output at the nanoscale. Within polymersome membrane environments, long polymer chains constrain ethyne-bridged oligo(porphinato)zinc(II) based supermolecular fluorophore (PZn n ) conformeric populations and disperse these PZn n species within the hydrophobic bilayer. Ultrafast excited-state transient absorption and anisotropy dynamical studies of NIR-emissive polymersomes, in which the PZn n fluorophore loading per nanoscale vesicle is varied between 0.1-10 mol %, enable the exploration of concentration-dependent mechanisms for nonradiative excited-state decay. These experiments correlate fluorophore structure with its gross spatial arrangement within specific nanodomains of these nanoparticles and reveal how compartmentalization of fluorophores within reduced effective dispersion volumes impacts bulk photophysical properties. As these factors play key roles in determining the energy transfer dynamics between dispersed fluorophores, this work underscores that strategies that modulate fluorophore and polymer structure to optimize dispersion volume in bilayered nanoscale vesicular environments will further enhance the emissive properties of these sensitive nanoscale probes.

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Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

July 2008

Volume

130

Issue

30

Start / End Page

9773 / 9784

Related Subject Headings

  • Zinc
  • Thermodynamics
  • Spectroscopy, Near-Infrared
  • Polymers
  • Polyethylene Glycols
  • Nanoparticles
  • Models, Molecular
  • Metalloporphyrins
  • Kinetics
  • Hydrophobic and Hydrophilic Interactions
 

Citation

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Duncan, T. V., Ghoroghchian, P. P., Rubtsov, I. V., Hammer, D. A., & Therien, M. J. (2008). Ultrafast excited-state dynamics of nanoscale near-infrared emissive polymersomes. Journal of the American Chemical Society, 130(30), 9773–9784. https://doi.org/10.1021/ja711497w
Duncan, Timothy V., P Peter Ghoroghchian, Igor V. Rubtsov, Daniel A. Hammer, and Michael J. Therien. “Ultrafast excited-state dynamics of nanoscale near-infrared emissive polymersomes.Journal of the American Chemical Society 130, no. 30 (July 2008): 9773–84. https://doi.org/10.1021/ja711497w.
Duncan TV, Ghoroghchian PP, Rubtsov IV, Hammer DA, Therien MJ. Ultrafast excited-state dynamics of nanoscale near-infrared emissive polymersomes. Journal of the American Chemical Society. 2008 Jul;130(30):9773–84.
Duncan, Timothy V., et al. “Ultrafast excited-state dynamics of nanoscale near-infrared emissive polymersomes.Journal of the American Chemical Society, vol. 130, no. 30, July 2008, pp. 9773–84. Epmc, doi:10.1021/ja711497w.
Duncan TV, Ghoroghchian PP, Rubtsov IV, Hammer DA, Therien MJ. Ultrafast excited-state dynamics of nanoscale near-infrared emissive polymersomes. Journal of the American Chemical Society. 2008 Jul;130(30):9773–9784.
Journal cover image

Published In

Journal of the American Chemical Society

DOI

EISSN

1520-5126

ISSN

0002-7863

Publication Date

July 2008

Volume

130

Issue

30

Start / End Page

9773 / 9784

Related Subject Headings

  • Zinc
  • Thermodynamics
  • Spectroscopy, Near-Infrared
  • Polymers
  • Polyethylene Glycols
  • Nanoparticles
  • Models, Molecular
  • Metalloporphyrins
  • Kinetics
  • Hydrophobic and Hydrophilic Interactions