Alex Pronschinske
Tufts University
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Publication
Featured researches published by Alex Pronschinske.
ACS Nano | 2016
Alex Pronschinske; Philipp Pedevilla; Coughlin B; Colin J. Murphy; Felicia R. Lucci; Payne Ma; Gellman Aj; Angelos Michaelides; Sykes Ec
Two-dimensional radioactive (125)I monolayers are a recent development that combines the fields of radiochemistry and nanoscience. These Au-supported monolayers show great promise for understanding the local interaction of radiation with 2D molecular layers, offer different directions for surface patterning, and enhance the emission of chemically and biologically relevant low-energy electrons. However, the elemental composition of these monolayers is in constant flux due to the nuclear transmutation of (125)I to (125)Te, and their precise composition and stability under ambient conditions has yet to be elucidated. Unlike I, which is stable and unreactive when bound to Au, the newly formed Te atoms would be expected to be more reactive. We have used electron emission and X-ray photoelectron spectroscopy (XPS) to quantify the emitted electron energies and to track the film composition in vacuum and the effect of exposure to ambient conditions. Our results reveal that the Auger electrons emitted during the ultrafast radioactive decay process have a kinetic energy corresponding to neutral Te. By combining XPS and scanning tunneling microscopy experiments with density functional theory, we are able to identify the reaction of newly formed Te to TeO2 and its subsequent dimerization. The fact that the Te2O4 units stay intact during major lateral rearrangement of the monolayer illustrates their stability. These results provide an atomic-scale picture of the composition and mobility of surface species in a radioactive monolayer as well as an understanding of the stability of the films under ambient conditions, which is a critical aspect in their future applications.
Journal of Physical Chemistry C | 2014
Felicia R. Lucci; Timothy J. Lawton; Alex Pronschinske; E. Charles H. Sykes
Nature Materials | 2015
Alex Pronschinske; Philipp Pedevilla; Colin J. Murphy; Emily A. Lewis; Felicia R. Lucci; Garth Brown; George Pappas; Angelos Michaelides; E. Charles H. Sykes
Chemical Communications | 2014
Emily A. Lewis; Colin J. Murphy; Alex Pronschinske; Melissa L. Liriano; E. C. H. Sykes
Journal of Physical Chemistry C | 2016
Colin J. Murphy; Daniel P. Miller; Scott Simpson; Andrew W. Baggett; Alex Pronschinske; Melissa L. Liriano; Andrew J. Therrien; Axel Enders; Shih-Yuan Liu; Eva Zurek; E. Charles H. Sykes
Journal of Physical Chemistry C | 2015
Colin J. Murphy; Andrew W. Baggett; Daniel P. Miller; Scott Simpson; Matthew D. Marcinkowski; Michael F. G. Mattera; Alex Pronschinske; Andrew J. Therrien; Melissa L. Liriano; Eva Zurek; Shih-Yuan Liu; E. Charles H. Sykes
Surface Science | 2016
Mishan E. Blecher; Emily A. Lewis; Alex Pronschinske; Colin J. Murphy; Michael F. G. Mattera; Melissa L. Liriano; E. Charles H. Sykes
Physical Review B | 2015
Andrew J. Therrien; Alex Pronschinske; Colin J. Murphy; Emily A. Lewis; Melissa L. Liriano; Matthew D. Marcinkowski; E. C. H. Sykes
Journal of Chemical Physics | 2017
Andrew J. Therrien; Alyssa J. R. Hensley; Renqin Zhang; Alex Pronschinske; Matthew D. Marcinkowski; Jean-Sabin McEwen; E. Charles H. Sykes
Journal of Catalysis | 2018
Andrew J. Therrien; Kyle Groden; Alyssa J. R. Hensley; Alex C. Schilling; Ryan T. Hannagan; Matthew D. Marcinkowski; Alex Pronschinske; Felicia R. Lucci; E. Charles H. Sykes; Jean-Sabin McEwen