Molecular strategy towards ROMP-derived hyperbranched poly(olefin)s featuring various π-bridged perylene diimides
Само за регистроване кориснике
2022
Аутори
Barłóg, MaciejPodiyanachari, Santhosh Kumar
Attar, Salahuddin
Sredojević, Dušan
Bazzi, Hassan S.
Al-Hashimi, Mohammed
Чланак у часопису (Објављена верзија)

Метаподаци
Приказ свих података о документуАпстракт
Synthesis of ring-opening metathesis polymerization (ROMP)-derived highly conjugated chromophore functional hyperbranched polymers still remains a challenge. In this work, we introduce a series of cycloolefin monomers based on oxanorbornene imides attached to the bay-region of perylene diimide (PDI)-derived A–D–A-type chromophores as hyperbranched polymers. These molecules, bearing various (π)-bridging units such as selenophene (M1), 3,4-difluorotiophene (M2), thienothiophene (M3), benzodithiophene (M4), and diketopyrrolopyrroles (M5) represent various geometrical and optoelectronic properties. ROMP has been used to synthesize hyperbranched-type poly(oxanorbornene imide)s to encapsulate the perylene diimides into the non-conjugated polymer matrix. The photophysical properties, as well as molecular structural features of all monomers and polymers were investigated using UV-Vis and fluorescence spectroscopic analysis revealing different stages of organization in the solution upon polymer...ization and film formation. The locked hyperbranched polymeric structural patterns and the film morphology examined by AFM characterization elucidated a homogenous smooth polymer surface irrespective of the size or electronic properties of π-linkers present in the perylene diimides. In addition, cyclic voltammetry (CV) analysis revealed that ruthenium-alkylidene-initiated ROMP-derived hyperbranched polymers can be potential candidates as electron-accepting materials with excellent film-forming ability and thermal stability. On the basis of the experimental investigations and theoretical calculations, herein, we describe the unusual π–π stacking behavior and molecular strategies of both monomers and their corresponding polymers in solution as well as in the solid-state. This approach allows gaining control over the highly π–π stacking behavior of PDI-derived chromophores, with examples of high solubility and quality film formation on demand, which could be ideal for photovoltaic applications.
Извор:
Polymer Chemistry, 2022, 13, 41, 5912-5922Институција/група
VinčaTY - JOUR AU - Barłóg, Maciej AU - Podiyanachari, Santhosh Kumar AU - Attar, Salahuddin AU - Sredojević, Dušan AU - Bazzi, Hassan S. AU - Al-Hashimi, Mohammed PY - 2022 UR - https://vinar.vin.bg.ac.rs/handle/123456789/15704 AB - Synthesis of ring-opening metathesis polymerization (ROMP)-derived highly conjugated chromophore functional hyperbranched polymers still remains a challenge. In this work, we introduce a series of cycloolefin monomers based on oxanorbornene imides attached to the bay-region of perylene diimide (PDI)-derived A–D–A-type chromophores as hyperbranched polymers. These molecules, bearing various (π)-bridging units such as selenophene (M1), 3,4-difluorotiophene (M2), thienothiophene (M3), benzodithiophene (M4), and diketopyrrolopyrroles (M5) represent various geometrical and optoelectronic properties. ROMP has been used to synthesize hyperbranched-type poly(oxanorbornene imide)s to encapsulate the perylene diimides into the non-conjugated polymer matrix. The photophysical properties, as well as molecular structural features of all monomers and polymers were investigated using UV-Vis and fluorescence spectroscopic analysis revealing different stages of organization in the solution upon polymerization and film formation. The locked hyperbranched polymeric structural patterns and the film morphology examined by AFM characterization elucidated a homogenous smooth polymer surface irrespective of the size or electronic properties of π-linkers present in the perylene diimides. In addition, cyclic voltammetry (CV) analysis revealed that ruthenium-alkylidene-initiated ROMP-derived hyperbranched polymers can be potential candidates as electron-accepting materials with excellent film-forming ability and thermal stability. On the basis of the experimental investigations and theoretical calculations, herein, we describe the unusual π–π stacking behavior and molecular strategies of both monomers and their corresponding polymers in solution as well as in the solid-state. This approach allows gaining control over the highly π–π stacking behavior of PDI-derived chromophores, with examples of high solubility and quality film formation on demand, which could be ideal for photovoltaic applications. T2 - Polymer Chemistry T1 - Molecular strategy towards ROMP-derived hyperbranched poly(olefin)s featuring various π-bridged perylene diimides VL - 13 IS - 41 SP - 5912 EP - 5922 DO - 10.1039/d2py01008a ER -
@article{
author = "Barłóg, Maciej and Podiyanachari, Santhosh Kumar and Attar, Salahuddin and Sredojević, Dušan and Bazzi, Hassan S. and Al-Hashimi, Mohammed",
year = "2022",
abstract = "Synthesis of ring-opening metathesis polymerization (ROMP)-derived highly conjugated chromophore functional hyperbranched polymers still remains a challenge. In this work, we introduce a series of cycloolefin monomers based on oxanorbornene imides attached to the bay-region of perylene diimide (PDI)-derived A–D–A-type chromophores as hyperbranched polymers. These molecules, bearing various (π)-bridging units such as selenophene (M1), 3,4-difluorotiophene (M2), thienothiophene (M3), benzodithiophene (M4), and diketopyrrolopyrroles (M5) represent various geometrical and optoelectronic properties. ROMP has been used to synthesize hyperbranched-type poly(oxanorbornene imide)s to encapsulate the perylene diimides into the non-conjugated polymer matrix. The photophysical properties, as well as molecular structural features of all monomers and polymers were investigated using UV-Vis and fluorescence spectroscopic analysis revealing different stages of organization in the solution upon polymerization and film formation. The locked hyperbranched polymeric structural patterns and the film morphology examined by AFM characterization elucidated a homogenous smooth polymer surface irrespective of the size or electronic properties of π-linkers present in the perylene diimides. In addition, cyclic voltammetry (CV) analysis revealed that ruthenium-alkylidene-initiated ROMP-derived hyperbranched polymers can be potential candidates as electron-accepting materials with excellent film-forming ability and thermal stability. On the basis of the experimental investigations and theoretical calculations, herein, we describe the unusual π–π stacking behavior and molecular strategies of both monomers and their corresponding polymers in solution as well as in the solid-state. This approach allows gaining control over the highly π–π stacking behavior of PDI-derived chromophores, with examples of high solubility and quality film formation on demand, which could be ideal for photovoltaic applications.",
journal = "Polymer Chemistry",
title = "Molecular strategy towards ROMP-derived hyperbranched poly(olefin)s featuring various π-bridged perylene diimides",
volume = "13",
number = "41",
pages = "5912-5922",
doi = "10.1039/d2py01008a"
}
Barłóg, M., Podiyanachari, S. K., Attar, S., Sredojević, D., Bazzi, H. S.,& Al-Hashimi, M.. (2022). Molecular strategy towards ROMP-derived hyperbranched poly(olefin)s featuring various π-bridged perylene diimides. in Polymer Chemistry, 13(41), 5912-5922. https://doi.org/10.1039/d2py01008a
Barłóg M, Podiyanachari SK, Attar S, Sredojević D, Bazzi HS, Al-Hashimi M. Molecular strategy towards ROMP-derived hyperbranched poly(olefin)s featuring various π-bridged perylene diimides. in Polymer Chemistry. 2022;13(41):5912-5922. doi:10.1039/d2py01008a .
Barłóg, Maciej, Podiyanachari, Santhosh Kumar, Attar, Salahuddin, Sredojević, Dušan, Bazzi, Hassan S., Al-Hashimi, Mohammed, "Molecular strategy towards ROMP-derived hyperbranched poly(olefin)s featuring various π-bridged perylene diimides" in Polymer Chemistry, 13, no. 41 (2022):5912-5922, https://doi.org/10.1039/d2py01008a . .
