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Laura Fabris

Researcher at Rutgers University

Publications -  65
Citations -  5028

Laura Fabris is an academic researcher from Rutgers University. The author has contributed to research in topics: Surface-enhanced Raman spectroscopy & Plasmon. The author has an hindex of 28, co-authored 62 publications receiving 3164 citations. Previous affiliations of Laura Fabris include University of California, Santa Barbara & University of Padua.

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A closer look at the physical and optical properties of gold nanostars: an experimental and computational study

TL;DR: This work has, for the first time, modeled the heat losses of a real, experimentally synthesized nanostar, and found the plasmon resonances to be in excellent agreement with those obtained experimentally.
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Time-Dependent Susceptibility of the Growth of Gold Nanorods to the Addition of a Cosurfactant

TL;DR: Park et al. as mentioned in this paper showed that gold nanorod growth is dominated by epitaxial micellar adsorption of surfactant to the growing crystal and adatom migration during rod reconstruction, respectively.
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Theory of hot electrons: general discussion

TL;DR: Javier Aizpurua, Francesca Baletto, Jeremy Baumberg, Phillip Christopher, Bart de Nijs, Preeti Deshpande, Yuri Diaz Fernandez, Laura Fabris, Simon Freakley, Sylwester Gawinkowski, Alexander Govorov, Naomi Halas, Romain Hernandez, Bartlomiej Jankiewicz, Jacob Khurgin, Mikael Kuisma, Priyank Vijaya Kumar and Johannes Lischner.
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Gold nanorod enhanced organic photovoltaics: The importance of morphology effects

TL;DR: In this article, gold nanorods are incorporated into the active bulk heterojunction (BHJ) layer of organic photovoltaic devices with a 30% improvement in power conversion efficiency.
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Au/SBA-15-Based Robust and Convenient-to-Use Nanopowder Material for Surface-Enhanced Raman Spectroscopy

TL;DR: Au/SBA-15 is shown to serve as robust and efficient substrates for surface-enhanced Raman spectroscopy (SERS) as mentioned in this paper, and the degree of SERS enhancement is found to depend on the size of the Au nanoparticles as well as the synthetic procedures employed to synthesize the materials.