4.7 Article

Understanding structure-properties relationships of porphyrin linked to graphene oxide through π-π-stacking or covalent amide bonds

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SCIENTIFIC REPORTS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41598-022-16931-8

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  1. National Science Centre [2015/19/D/ST5/00682]
  2. National Science Centre, Poland [2018/30/E/ST4/00004]
  3. Interdisciplinary Centre for Mathematical and Computational Modelling in Warsaw, Poland [GB79-5]
  4. Technical University of Munich-Institute for Advanced Study
  5. Science Foundation Ireland [IvP 13/IA/1894]

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Two graphene oxide nanoassemblies, covalently and noncovalently bonded with TPPNH2, were fabricated. The noncovalent assembly showed enhanced photoinduced electron transfer efficiency from porphyrin to GO, while the covalent assembly generated singlet oxygen with comparable efficiency to free TPPNH2.
Two graphene oxide nanoassemblies using 5-(4-(aminophenyl)-10,15,20-triphenylporphyrin (TPPNH2) were fabricated by two synthetic methods: covalent (GO-CONHTPP) and noncovalent bonding. GO-CONHTPP was achieved through amide formation at the periphery of GO sheets and the hybrid material was fully characterized by FTIR, XPS, Raman spectroscopy, and SEM. Spectroscopic measurements together with theoretical calculations demonstrated that assembling TPPNH2 on the GO surface in DMF-H2O (1:2, v/v) via non-covalent interactions causes changes in the absorption spectra of porphyrin, as well as efficient quenching of its emission. Interestingly, covalent binding to GO does not affect notably neither the porphyrin absorption nor its fluorescence. Theoretical calculations indicates that close proximity and pi-pi-stacking of the porphyrin molecule with the GO sheet is possible only for the non-covalent functionalization. Femtosecond pump-probe experiments revealed that only the non-covalent assembly of TPPNH2 and GO enhances the efficiency of the photoinduced electron transfer from porphyrin to GO. In contrast to the non-covalent hybrid, the covalent GO-CONHTPP material can generate singlet oxygen with quantum yields efficiency (phi Delta = 0.20) comparable to that of free TPPNH2 (phi Delta = 0.26), indicating the possible use of covalent hybrid materials in photodynamic/photothermal therapy. The spectroscopic studies combined with detailed quantum-chemical analysis provide invaluable information that can guide the fabrication of hybrid materials with desired properties for specific applications.

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