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Dive into the research topics where Thomas Just Sørensen is active.

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Featured researches published by Thomas Just Sørensen.


Chemical Science | 2013

Lanthanide appended rotaxanes respond to changing chloride concentration

Clémence Allain; Paul D. Beer; Stephen Faulkner; Michael W. Jones; Alan M. Kenwright; Nathan L. Kilah; Richard C. Knighton; Thomas Just Sørensen; Manuel Tropiano

Lanthanide appended rotaxanes have been prepared by the CuAAC ‘click’ reaction between an azide appended rotaxane and lanthanide complexes of propargyl DO3A. The resulting complexes are luminescent, and exhibit chloride responsive luminescence behavior consistent with the existence of two independent halide binding pockets, one in the rotaxane cavity and one on the ninth (axial) coordination site of the lanthanide. Strong halide binding to europium gives rise to changes in the relative intensity of the hypersensitive ΔJ = 2 transition compared to the rest of the europium emission spectrum, combined with quenching of the overall intensity of emission as a consequence of non-radiative quenching by the bound halide. The weaker interaction with the rotaxane pocket mediates a subsequent recovery of intensity of the europium centered luminescence despite the considerable separation between the lanthanide and the rotaxane binding pocket.


Physical Chemistry Chemical Physics | 2012

Luminescence and upconversion from thulium(III) species in solution.

Octavia A. Blackburn; Manuel Tropiano; Thomas Just Sørensen; James Thom; Andrew Beeby; Lisa M. Bushby; David Parker; Louise S. Natrajan; Stephen Faulkner

Thulium salts and complexes are shown to be emissive from three states in the excited state manifold of Tm(3+). Formation of the (1)D(2) state can result in luminescence, or in energy transfer to the lower energy (1)G(4) and (3)H(4) emissive states. Where chromophores are present in the ligand structure, emission is restricted to thulium centred emissive states that are lower in energy than the chromophore centred donor state. We have also observed direct multi-photon excitation of the thulium excited state manifold. Furthermore, additional transitions are observed in the multi-photon excitation spectra that are consistent with upconversion as a consequence of sequential single photon absorption and relaxation processes within the thulium excited state manifold.


ChemistryOpen | 2015

Thermodynamics of Self-Assembly of Dicarboxylate Ions with Binuclear Lanthanide Complexes.

Thomas Just Sørensen; Leila R. Hill; Stephen Faulkner

Self-assembly of a range of carboxylic acids (benzoic acid, dinicotinic acid, nicotinic acid, and isophthalic acid) with the europium complex of 5-nitro-α,α′-bis(DO3Ayl)-m-xylene (where DO3A is 1,4,7,10-tetraazacyclododecane-1,4,7-triacetic acid) has been explored to establish the thermodynamics of binding in a range of solvent systems and in a range of aqueous buffer solutions. In this system, profound effects are observed as a consequence of competition by the hydroxide ion, which outcompetes even dinicotinate at high pH. In the case of isophthalate, which binds most strongly, and dinicotinate, both enthalpic and entropic contributions to binding have been identified. The europium complex with 5-nitro-α,α′-bis(DO3Ayl)-m-xylene is found to have a solution structure significantly different from the related europium complex of 5-amino-α,α′-bis(DO3Ayl)-m-xylene. It is found that phosphate binds strongly to the europium complex of the nitro derivate but not to the europium complex of amino derivative. Lactate, citrate, and pyruvate also bind strongly to 5-nitro-α,α′-bis(Eu⋅DO3Ayl)-m-xylene, and it is concluded that the solution structure of this binuclear lanthanide complex is significantly different from that of the amino-substituted complex.


Chemical Communications | 2013

Preparation and study of an f,f,f′,f′′ covalently linked tetranuclear hetero-trimetallic complex – a europium, terbium, dysprosium triad

Thomas Just Sørensen; Manuel Tropiano; Octavia A. Blackburn; James A. Tilney; Alan M. Kenwright; Stephen Faulkner


Chemical Science | 2015

Bimetallic lanthanide complexes that display a ratiometric response to oxygen concentrations

Thomas Just Sørensen; Alan M. Kenwright; Stephen Faulkner


Dalton Transactions | 2011

Self-assembly between dicarboxylate ions and a binuclear europium complex: formation of stable adducts and heterometallic lanthanide complexes

James A. Tilney; Thomas Just Sørensen; Benjamin P. Burton-Pye; Stephen Faulkner


Chemical Communications | 2015

Spectrally resolved confocal microscopy using lanthanide centred near-IR emission

Zhiyu Liao; Manuel Tropiano; Konstantins Mantulnikovs; Stephen Faulkner; Tom Vosch; Thomas Just Sørensen


Chemistry: A European Journal | 2013

Using Remote Substituents to Control Solution Structure and Anion Binding in Lanthanide Complexes

Manuel Tropiano; Octavia A. Blackburn; James A. Tilney; Leila R. Hill; Matteo P. Placidi; Rebecca J. Aarons; Daniel Sykes; Michael W. Jones; Alan M. Kenwright; John S. Snaith; Thomas Just Sørensen; Stephen Faulkner


Dalton Transactions | 2013

Self-assembly between dicarboxylate ions and binuclear europium complexes: moving to water—pH dependence and effects of buffers

Leila R. Hill; Thomas Just Sørensen; Octavia A. Blackburn; Asha Brown; Paul D. Beer; Stephen Faulkner


European Journal of Inorganic Chemistry | 2014

Self‐Assembly between Dicarboxylate Ions and Dinuclear Lanthanide Complexes: A Surprisingly Complicated Problem

Thomas Just Sørensen; Leila R. Hill; James A. Tilney; Octavia A. Blackburn; Michael W. Jones; Manuel Tropiano; Stephen Faulkner

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John S. Snaith

University of Birmingham

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