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Elizabeth T Papish

Showing results (21-30 of 34) with videos related to

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Journal of Inorganic Biochemistry|January 3, 2023
Ruthenium pincer complexes for light activated toxicity: Lipophilic groups enhance toxicityYifei Sun, Sanjit Das, Spenser R Brown, et al.
Inorganic Chemistry|February 8, 2013
Iridium dihydroxybipyridine complexes show that ligand deprotonation dramatically speeds rates of catalytic water oxidationJoseph DePasquale, Ismael Nieto, Lauren E Reuther, et al.
Chemical Communications (Cambridge, England)|March 22, 2018
Nickel(ii) pincer complexes demonstrate that the remote substituent controls catalytic carbon dioxide reductionDalton B Burks, Shakeyia Davis, Robert W Lamb, et al.
Inorganica Chimica Acta|December 9, 2017
Ruthenium (II) and Iridium (III) Complexes of N-Heterocyclic Carbene and Pyridinol Derived Bidentate Chelates: Synthesis, Characterization, and ReactivityDeidra L Gerlach, Sopheavy Siek, Dalton B Burks, et al.
Journal of Inorganic Biochemistry|November 5, 2013
Ruthenium dihydroxybipyridine complexes are tumor activated prodrugs due to low pH and blue light induced ligand releaseKyle T Hufziger, Fathima Shazna Thowfeik, David J Charboneau, et al.
Inorganic Chemistry|February 7, 2007
Sterically bulky tris(triazolyl)borate ligands as water-soluble analogues of tris(pyrazolyl)borateFinith E Jernigan, Nathan A Sieracki, Michael T Taylor, et al.
Dalton Transactions (Cambridge, England : 2003)|January 18, 2012
Crowded bis ligand complexes of Ttz(Ph,Me) with first row transition metals rearrange due to ligand field effects: structural and electronic characterization (Ttz(Ph,Me) = tris(3-phenyl-5-methyl-1,2,4-triazolyl)borate)Shannon N Oseback, Sarah W Shim, Mukesh Kumar, et al.
Inorganic Chemistry|February 3, 2021
Singlet Oxygen Formation vs Photodissociation for Light-Responsive Protic Ruthenium Anticancer Compounds: The Oxygenated Substituent Determines Which Pathway DominatesFengrui Qu, Robert W Lamb, Colin G Cameron, et al.
Inorganic Chemistry|November 27, 2014
Studies of the pathways open to copper water oxidation catalysts containing proximal hydroxy groups during basic electrocatalysisDeidra L Gerlach, Salome Bhagan, Alex A Cruce, et al.
Organometallics|March 16, 2018
Iridium and Ruthenium Complexes of <i>N</i>-Heterocyclic Carbene- and Pyridinol-Derived Chelates as Catalysts for Aqueous Carbon Dioxide Hydrogenation and Formic Acid Dehydrogenation: The Role of the Alkali MetalSopheavy Siek, Dalton B Burks, Deidra L Gerlach, et al.
Pageof 4

Showing results (21-30 of 34) with videos related to

Sort By:
Pageof 4
Journal of Inorganic Biochemistry|January 3, 2023
Ruthenium pincer complexes for light activated toxicity: Lipophilic groups enhance toxicityYifei Sun, Sanjit Das, Spenser R Brown, et al.
Inorganic Chemistry|February 8, 2013
Iridium dihydroxybipyridine complexes show that ligand deprotonation dramatically speeds rates of catalytic water oxidationJoseph DePasquale, Ismael Nieto, Lauren E Reuther, et al.
Chemical Communications (Cambridge, England)|March 22, 2018
Nickel(ii) pincer complexes demonstrate that the remote substituent controls catalytic carbon dioxide reductionDalton B Burks, Shakeyia Davis, Robert W Lamb, et al.
Inorganica Chimica Acta|December 9, 2017
Ruthenium (II) and Iridium (III) Complexes of N-Heterocyclic Carbene and Pyridinol Derived Bidentate Chelates: Synthesis, Characterization, and ReactivityDeidra L Gerlach, Sopheavy Siek, Dalton B Burks, et al.
Journal of Inorganic Biochemistry|November 5, 2013
Ruthenium dihydroxybipyridine complexes are tumor activated prodrugs due to low pH and blue light induced ligand releaseKyle T Hufziger, Fathima Shazna Thowfeik, David J Charboneau, et al.
Inorganic Chemistry|February 7, 2007
Sterically bulky tris(triazolyl)borate ligands as water-soluble analogues of tris(pyrazolyl)borateFinith E Jernigan, Nathan A Sieracki, Michael T Taylor, et al.
Dalton Transactions (Cambridge, England : 2003)|January 18, 2012
Crowded bis ligand complexes of Ttz(Ph,Me) with first row transition metals rearrange due to ligand field effects: structural and electronic characterization (Ttz(Ph,Me) = tris(3-phenyl-5-methyl-1,2,4-triazolyl)borate)Shannon N Oseback, Sarah W Shim, Mukesh Kumar, et al.
Inorganic Chemistry|February 3, 2021
Singlet Oxygen Formation vs Photodissociation for Light-Responsive Protic Ruthenium Anticancer Compounds: The Oxygenated Substituent Determines Which Pathway DominatesFengrui Qu, Robert W Lamb, Colin G Cameron, et al.
Inorganic Chemistry|November 27, 2014
Studies of the pathways open to copper water oxidation catalysts containing proximal hydroxy groups during basic electrocatalysisDeidra L Gerlach, Salome Bhagan, Alex A Cruce, et al.
Organometallics|March 16, 2018
Iridium and Ruthenium Complexes of <i>N</i>-Heterocyclic Carbene- and Pyridinol-Derived Chelates as Catalysts for Aqueous Carbon Dioxide Hydrogenation and Formic Acid Dehydrogenation: The Role of the Alkali MetalSopheavy Siek, Dalton B Burks, Deidra L Gerlach, et al.
Pageof 4