OPTICAL-SPECTRA AND KINETICS OF SINGLE IMPURITY MOLECULES IN A POLYMER - SPECTRAL DIFFUSION AND PERSISTENT SPECTRAL HOLE BURNING

被引:89
作者
BASCHE, T
AMBROSE, WP
MOERNER, WE
机构
[1] IBM Research Division, Almaden Research Center, San Jose, CA, 95120-6099
[2] Los Alamos National Laboratory, Los Alamos, NM, 87545
关键词
D O I
10.1364/JOSAB.9.000829
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
With high-efficiency fluorescence excitation techniques optical spectra of single impurity molecules of perylene in a polyethylene matrix can be obtained at 1.5 K. Analysis of such spectra shows a variety of spectral diffusion effects, including fast (< 2 s) resonance frequency changes on the 1-100-MHz scale, which lead to a range of apparent linewidths, as well as discontinuous jumps in the resonance frequency of 10-1000 MHz on a longer time scale. In addition, light-induced changes in the resonance frequency of a single molecule (persistent spectral hole burning) have been conclusively observed by showing that the burning time decreases with increased laser power. Surprisingly, hole-burned single molecules often spontaneously return to the original frequency in 1-100 s. Measurements of the burning time for a large number of hole-burning events for the same single molecule yield an exponential burn-time distribution, which is the first direct measurement to our knowledge of the stochastic kinetics of a single molecule. Analysis of the signal-to-noise function appropriate to these experiments gives the conditions under which other systems may permit single-molecule detection: strong absorption, high fluorescence yield, weak bottlenecks in the optical pumping process, and low hole-burning quantum efficiency.
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页码:829 / 836
页数:8
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