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Dive into the research topics where Paul I. P. Elliott is active.

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Featured researches published by Paul I. P. Elliott.


RSC Advances | 2014

Novel triphenylamine-modified ruthenium(II) terpyridine complexes for nickel oxide-based cathodic dye-sensitized solar cells

Christopher J. Wood; Kiyoshi C. D. Robson; Paul I. P. Elliott; Curtis P. Berlinguette; Elizabeth A. Gibson

A pair of ruthenium based donor-π-chromophore sensitizers (K1 and K2) have been synthesized for use in NiO based p-type dye sensitized solar cells (p-DSCs). The optical and electrochemical properties of these dyes were determined experimentally and interpreted by DFT modelling. NiO p-DSC devices incorporating these dyes gave photocurrents of 2.9 for K1 and 2.0 mA cm−2 for K2 (IPCE of 14% and 9%); this is a vast improvement on the photocurrents of p-DSC devices incorporating ‘traditional’ ruthenium sensitizers.


Chemistry: A European Journal | 2014

Photochemistry of RuII 4,4′‐Bi‐1,2,3‐triazolyl (btz) Complexes: Crystallographic Characterization of the Photoreactive Ligand‐Loss Intermediate trans‐[Ru(bpy)(κ2‐btz)(κ1‐btz)(NCMe)]2+

Christine E. Welby; Georgina K. Armitage; Harry Bartley; Aaron Wilkinson; Alessandro Sinopoli; Baljinder S. Uppal; Craig R. Rice; Paul I. P. Elliott

We report the unprecedented observation and unequivocal crystallographic characterization of the meta-stable ligand loss intermediate solvento complex trans-[Ru(bpy)(κ2-btz)(κ1-btz)(NCMe)]2+ (1 a) that contains a monodentate chelate ligand. This and analogous complexes can be observed during the photolysis reactions of a family of complexes of the form [Ru()(btz)2]2+ (1 a–d: btz=1,1′-dibenzyl-4,4′-bi-1,2,3-triazolyl; =a) 2,2′-bipyridyl (bpy), b) 4,4′-dimethyl-2,2′-bipyridyl (dmbpy), c) 4,4′-dimethoxy-2,2′-bipyridyl (dmeobpy), d) 1,10-phenanthroline (phen)). In acetonitrile solutions, 1 a–d eventually convert to the bis-solvento complexes trans-[Ru()(btz)(NCMe)2]2+ (3 a–d) along with one equivalent of free btz, in a process in which the remaining coordinated bidentate ligands undergo a new rearrangement such that they become coplanar. X-ray crystal structure of 3 a and 3 d confirmed the co-planar arrangement of the and btz ligands and the trans coordination of two solvent molecules. These conversions proceed via the observed intermediate complexes 2 a–d, which are formed quantitatively from 1 a–d in a matter of minutes and to which they slowly revert back on being left to stand in the dark over several days. The remarkably long lifetime of the intermediate complexes (>12 h at 40 °C) allowed the isolation of 2 a in the solid state, and the complex to be crystallographically characterized. Similarly to the structures adopted by complexes 3 a and d, the bpy and κ2-btz ligands in 2 a coordinate in a square-planar fashion with the second monodentate btz ligand coordinated trans to an acetonitrile ligand.


Molecules | 2016

Towards Water Soluble Mitochondria-Targeting Theranostic Osmium(II) Triazole-Based Complexes.

Salem A. E. Omar; Paul A. Scattergood; Luke K. McKenzie; Helen E. Bryant; Julia A. Weinstein; Paul I. P. Elliott

The complex [Os(btzpy)2][PF6]2 (1, btzpy = 2,6-bis(1-phenyl-1,2,3-triazol-4-yl)pyridine) has been prepared and characterised. Complex 1 exhibits phosphorescence (λem = 595 nm, τ = 937 ns, φem = 9.3% in degassed acetonitrile) in contrast to its known ruthenium(II) analogue, which is non-emissive at room temperature. The complex undergoes significant oxygen-dependent quenching of emission with a 43-fold reduction in luminescence intensity between degassed and aerated acetonitrile solutions, indicating its potential to act as a singlet oxygen sensitiser. Complex 1 underwent counterion metathesis to yield [Os(btzpy)2]Cl2 (1Cl), which shows near identical optical absorption and emission spectra to those of 1. Direct measurement of the yield of singlet oxygen sensitised by 1Cl was carried out (φ (1O2) = 57%) for air equilibrated acetonitrile solutions. On the basis of these photophysical properties, preliminary cellular uptake and luminescence microscopy imaging studies were conducted. Complex 1Cl readily entered the cancer cell lines HeLa and U2OS with mitochondrial staining seen and intense emission allowing for imaging at concentrations as low as 1 μM. Long-term toxicity results indicate low toxicity in HeLa cells with LD50 >100 μM. Osmium(II) complexes based on 1 therefore present an excellent platform for the development of novel theranostic agents for anticancer activity.


Dalton Transactions | 2018

Mitochondria-localising DNA-binding biscyclometalated phenyltriazole iridium(III) dipyridophenazene complexes: syntheses and cellular imaging properties

Sreejesh Sreedharan; Alessandro Sinopoli; Paul J. Jarman; Darren Robinson; Christopher Clemmet; Paul A. Scattergood; Craig R. Rice; Carl Smythe; Jim A. Thomas; Paul I. P. Elliott

Two new biscyclometalated complexes [Ir(ptzR)2(dppz)]+ (dppz = dipyridophenazene; ptzRH = 4-phenyl-1-benzyl-1,2,3-triazole (1+) and 4-phenyl-1-propyl-1,2,3-triazole (2+)) have been prepared. The hexafluorophosphate salts of these complexes have been fully characterized and, in one case, the X-ray structure of a nitrate salt was obtained. The DNA binding properties of the chloride salts of the complexes were investigated, as well as their cellular uptake by A2780 and MCF7 cell lines. Both complexes display an increase in the intensity of phosphorescence upon titration with duplex DNA, indicating the intercalation of the dppz ligand and, given that they are monocations, the complexes exhibit appreciable DNA binding affinity. Optical microscopy studies reveal that both complexes are taken up by live cancer cell lines displaying cytosol based luminescence. Colocalization studies with commercial probes show high Pearson coefficients with mitotracker dyes confirming that the new complexes specifically localize on mitochondria.


Annual Reports Section "A" (Inorganic Chemistry) | 2010

Photophysical properties of metal complexes

Paul I. P. Elliott

This review summarises the literature reported in 2010 on the photophysical properties of metal complexes and their polynuclear supramolecular assemblies.


Inorganic Chemistry | 2018

Exploration of Uncharted 3PES Territory for [Ru(bpy)3]2+: A New 3MC Minimum Prone to Ligand Loss Photochemistry

Adrien Soupart; Fabienne Alary; Jean-Louis Heully; Paul I. P. Elliott; Isabelle M. Dixon

We have identified a new 3MC state bearing two elongated Ru-N bonds to the same ligand in [Ru(bpy)3]2+. This DFT-optimized structure is a local minimum on the 3PES. This distal MC state (3MCcis) is destabilized by less than 2 kcal/mol with respect to the classical MC state (3MCtrans), and energy barriers to populate 3MCcis and 3MCtrans from the 3MLCT state are similar according to nudged elastic band minimum energy path calculations. Distortions in the classical 3MCtrans, that is, elongation of two Ru-N bonds toward two different bpy ligands, are not expected to favor the formation of ligand-loss photoproducts. On the contrary, the new 3MCcis could be particularly relevant in the photodegradation of Ru(II) polypyridine complexes.


Annual Reports Section "A" (Inorganic Chemistry) | 2012

Photophysics of metal complexes

Paul I. P. Elliott

This review summarises the literature reported in 2011 on the photophysical properties of metal complexes and their polynuclear supramolecular assemblies.


Inorganic Chemistry | 2009

Para-Hydrogen Induced Polarization without Incorporation of Para-Hydrogen into the Analyte

Kevin D. Atkinson; Michael J. Cowley; Simon B. Duckett; Paul I. P. Elliott; Gary G. R. Green; Joaquín López-Serrano; Iman G. Khazal; Adrian C. Whitwood


Dalton Transactions | 2011

Synthesis and characterisation of luminescent rhenium tricarbonyl complexes with axially coordinated 1,2,3-triazole ligands

Baljinder S. Uppal; Rebecca K. Booth; Noreen Ali; Cindy Lockwood; Craig R. Rice; Paul I. P. Elliott


Dalton Transactions | 2013

Luminescent biscyclometalated arylpyridine iridium(III) complexes with 4,4′-bi-1,2,3-triazolyl ancillary ligands

Christine E. Welby; Luke Gilmartin; Ryan R. Marriott; Adam Zahid; Craig R. Rice; Elizabeth A. Gibson; Paul I. P. Elliott

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Craig R. Rice

University of Huddersfield

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Adam Zahid

University of Huddersfield

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David J. Cooke

University of Huddersfield

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