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Journal of Photochemistry and Photobiology|April 14, 2022
Ruthenium Photosensitizers for NIR PDT Require Lowest-Lying Triplet Intraligand (<sup>3</sup>IL) Excited StatesLiubov M Lifshits, John A Roque, Elamparuthi Ramasamy, et al.
Chembiochem : a European Journal of Chemical Biology|August 8, 2020
NIR-Absorbing Ru<sup>II</sup> Complexes Containing α-Oligothiophenes for Applications in Photodynamic TherapyLiubov M Lifshits, John A Roque, Houston D Cole, et al.
Oncoimmunology|January 18, 2021
Discovery of immunogenic cell death-inducing ruthenium-based photosensitizers for anticancer photodynamic therapyPrathyusha Konda, Liubov M Lifshits, John A Roque, et al.
The Journal of Physical Chemistry. A|August 9, 2021
String-Attached Oligothiophene Substituents Determine the Fate of Excited States in Ruthenium Complexes for Photodynamic TherapyAvinash Chettri, Kilian R A Schneider, Houston D Cole, et al.
Photochemistry and Photobiology|December 9, 2022
Establishing a Robust and Reliable Response from a Potent Osmium-Based Photosensitizer Via Lipid Nanoformulation<sup>†</sup>Houston D Cole, Menitte Eroy, John A Roque, et al.
The Journal of Physical Chemistry. A|February 18, 2022
Interaction with a Biomolecule Facilitates the Formation of the Function-Determining Long-Lived Triplet State in a Ruthenium Complex for Photodynamic TherapyAvinash Chettri, Houston D Cole, John A Roque Iii, et al.
Journal of the American Chemical Society|December 9, 2021
Anticancer Agent with Inexplicable Potency in Extreme Hypoxia: Characterizing a Light-Triggered Ruthenium UbertoxinHouston D Cole, John A Roque, Ge Shi, et al.
Inorganic Chemistry|May 10, 2024
Ru(II) Oligothienyl Complexes with Fluorinated Ligands: Photophysical, Electrochemical, and Photobiological PropertiesHouston D Cole, Abbas Vali, John A Roque, et al.
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