Nonlinear effects in single-particle photothermal imaging

Author:

West Claire A.1ORCID,Lee Stephen A.2ORCID,Shooter Jesse2,Searles Emily K.2ORCID,Goldwyn Harrison J.1ORCID,Willets Katherine A.3ORCID,Link Stephan24ORCID,Masiello David J.1ORCID

Affiliation:

1. Department of Chemistry, University of Washington, Seattle, Washington 98195, USA

2. Department of Chemistry, Rice University, Houston, Texas 77005, USA

3. Department of Chemistry, Temple University, Philadelphia, Pennsylvania 19122, USA

4. Department of Electrical and Computer Engineering, Rice University, Houston, Texas 77005, USA

Abstract

Although photothermal imaging was originally designed to detect individual molecules that do not emit or small nanoparticles that do not scatter, the technique is now being applied to image and spectroscopically characterize larger and more sophisticated nanoparticle structures that scatter light strongly. Extending photothermal measurements into this regime, however, requires revisiting fundamental assumptions made in the interpretation of the signal. Herein, we present a theoretical analysis of the wavelength-resolved photothermal image and its extension to the large particle scattering regime, where we find the photothermal signal to inherit a nonlinear dependence upon pump intensity, together with a contraction of the full-width-at-half-maximum of its point spread function. We further analyze theoretically the extent to which photothermal spectra can be interpreted as an absorption spectrum measure, with deviations between the two becoming more prominent with increasing pump intensities. Companion experiments on individual 10, 20, and 100 nm radius gold nanoparticles evidence the predicted nonlinear pump power dependence and image contraction, verifying the theory and demonstrating new aspects of photothermal imaging relevant to a broader class of targets.

Funder

National Science Foundation

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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