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Trenton R. Ensley

Researcher at United States Army Research Laboratory

Publications -  62
Citations -  948

Trenton R. Ensley is an academic researcher from United States Army Research Laboratory. The author has contributed to research in topics: Supercontinuum & Nonlinear optics. The author has an hindex of 14, co-authored 60 publications receiving 802 citations. Previous affiliations of Trenton R. Ensley include University of Central Florida.

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Donor–Acceptor–Donor-based π-Conjugated Oligomers for Nonlinear Optics and Near-IR Emission

TL;DR: In this article, a family of multi-heterocycle donor-acceptor-donor (DAD) telechelic conjugated oligomers designed for two-photon absorption and emission in the near-infrared (near-IR) were prepared, and the relationship between their spectral, structural, and electrochemical properties were investigated.
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Temporal, Spectral, and Polarization Dependence of the Nonlinear Optical Response of Carbon Disulfide

TL;DR: In this article, a self-consistent, quantitative picture of the third-order NLO response of liquid carbon disulfide is provided, establishing it as an accurate reference material over this broad temporal and spectral range.
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Efficient Two-Photon Absorbing Acceptor-π-Acceptor Polymethine Dyes

TL;DR: Large delta(2PA) values up to 17,000 GM at 1100 nm are explained by the combination of the large ground- and excited-state transition dipole moments.
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Dual-arm Z-scan technique to extract dilute solute nonlinearities from solution measurements

TL;DR: In this article, the authors presented a technique in which small solute nonlinearities may be extracted from large solvent signals by performing simultaneous Z-scans on two samples (solvent and solution).
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Two-photon absorption spectra of a near-infrared 2-azaazulene polymethine dye: solvation and ground-state symmetry breaking.

TL;DR: The subtle interplay between the two mechanisms for two-photon absorption activation, vibronic coupling and polar solvation can be fully accounted for within the proposed microscopic model allowing a detailed interpretation of the optical spectra of PDs.