Published July 2008 | Version Accepted Version
Journal Article Open

Universal emission intermittency in quantum dots, nanorods and nanowires

  • 1. ROR icon University of Notre Dame
  • 2. ROR icon Argonne National Laboratory
  • 3. ROR icon California Institute of Technology

Abstract

Virtually all known fluorophores exhibit mysterious episodes of emission intermittency. A remarkable feature of the phenomenon is a power-law distribution of on- and off-times observed in colloidal semiconductor quantum dots, nanorods, nanowires and some organic dyes. For nanoparticles, the resulting power law extends over an extraordinarily wide dynamic range: nine orders of magnitude in probability density and five to six orders of magnitude in time. Exponents hover about the ubiquitous value of -3/2. Dark states routinely last for tens of seconds—practically forever on quantum mechanical timescales. Despite such infinite states of darkness, the dots miraculously recover and start emitting again. Although the underlying mechanism responsible for this phenomenon remains a mystery and many questions persist, we argue that substantial theoretical progress has been made.

Additional Information

© 2008 Macmillan Publishers Limited. Received 20 March 2008; Accepted 27 May 2008. The authors would like to acknowledge the support of NSF, ONR and DOE-BES.

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Accepted Version - 0810.2509v3.pdf

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Additional details

Identifiers

Eprint ID
55821
DOI
10.1038/nphys1001
Resolver ID
CaltechAUTHORS:20150316-162909140

Related works

Funding

NSF
Office of Naval Research (ONR)
Department of Energy (DOE)

Dates

Created
2015-03-16
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Updated
2021-11-10
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