Literature DB >> 1528982

Quenching of singlet molecular oxygen by phthalocyanines and naphthalocyanines.

A A Krasnovsky1, M A Rodgers, M G Galpern, B Rihter, M E Kenney, E A Lukjanetz.   

Abstract

Using the direct measurement of the photosensitized luminescence of singlet molecular oxygen (1O2) the rate constants (kq) have been determined for 1O2 quenching by the monomeric molecules of the following phthalocyanines and naphthalocyanines in chloroform: tetra-(4-tert-butyl) phthalocyanine (I); octa-(3,6-butoxy) phthalocyanine (II), tetra-(6-tert-butyl)-2,3 naphthalocyanine (III), aluminium tetra-(1-tert-phenyl)-2,3 naphthalocyanine (IV), tri-(n-hexyl-siloxy) derivatives of silicon- (V), tin- (VI), aluminium- (VII) and gallium- (VIII) 2,3 naphthalocyanine. The following kq values were obtained (kq x 10(-8) M-1 s-1): 2.9 (I), 59 (II), 100 (III), 20 (IV), 3.9 (V), 53 (VI), 33 (VII), 110 (VIII). As most of the quenchers have the low-lying triplet levels, a contribution of the quenching mechanism based on the energy transfer from 1O2 to these levels has been analysed. A formula is proposed describing the relation between kq values caused by this mechanism, and photophysical constants of the quencher triplet state. This formula was applied to phthalocyanines, naphthalocyanines, beta-carotene and bacterochlorophyll a. The data suggest that the energy transfer can fully explain the activity of V and strongly contributes into the activities of II, III and VI-VIII. A charge transfer interaction might be an additional mechanism involved in 1O2 quenching by compounds studied. As some phthalocyanines and naphthalocyanines are strong physical quenchers of singlet oxygen they can be used as efficient inhibitors for photodestructive processes in photochemical systems.

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Year:  1992        PMID: 1528982     DOI: 10.1111/j.1751-1097.1992.tb08512.x

Source DB:  PubMed          Journal:  Photochem Photobiol        ISSN: 0031-8655            Impact factor:   3.421


  4 in total

1.  Photosensitizer binding to lipid bilayers as a precondition for the photoinactivation of membrane channels.

Authors:  T I Rokitskaya; M Block; Y N Antonenko; E A Kotova; P Pohl
Journal:  Biophys J       Date:  2000-05       Impact factor: 4.033

2.  The Synthesis and Characterization of a Group of Transition Metal Octabutoxynaphthalocyanines and the Absorption and Emission Properties of the Co, Rh, Ir, Ni, Pd and Pt Members of This Group.

Authors:  Junhwan Kim; Alexandra V Soldatova; Michael A J Rodgers; Malcolm E Kenney
Journal:  Polyhedron       Date:  2013-07-02       Impact factor: 3.052

3.  Non-monotonic changes in clonogenic cell survival induced by disulphonated aluminum phthalocyanine photodynamic treatment in a human glioma cell line.

Authors:  Seema Gupta; Bilikere S Dwarakanath; K Muralidhar; Tulay Koru-Sengul; Viney Jain
Journal:  J Transl Med       Date:  2010-04-30       Impact factor: 5.531

4.  Residence time of singlet oxygen in membranes.

Authors:  V S Sokolov; O V Batishchev; S A Akimov; T R Galimzyanov; A N Konstantinova; E Malingriaux; Y G Gorbunova; D G Knyazev; P Pohl
Journal:  Sci Rep       Date:  2018-09-18       Impact factor: 4.379

  4 in total

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