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Shear-Induced Nematic Alignment in Polysulfone Melts

Polymer melt processing often requires conditions of temperature and shear that create flow-induced structures that impact the properties of the resulting material. Such an effect is connected to chain stretching, often leading to shear-induced nematic alignment of at least the longest chains, reported for rod-like polymers but also polyolefins. A polysulfone melt is shown here to undergo such nematic alignment, as can be predicted from its chain stiffness. Its convenient chain linearity, verified by very good agreement of the linear viscoelastic data with a tube model (BoB) for entangled polymer melts, and its inability to crystallize make it suitable for exploring the temperature dependence of the nematic alignment, monitored by both rheology and birefringence. The critical shear rate for nematic alignment at various temperatures is determined and contrasted with that expected from the Rouse time of the longest chains, often considered as the control parameter. Although the onset shear rate for nematic alignment is shown to follow the same temperature dependence as the chain relaxation times, suggesting that chain stretching is the underlying mechanism, the critical shear rate is much smaller than expected. This anomalous behavior of polysulfone is discussed in relation with possible π-stacking interactions stabilizing the nematic domains.

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Metadata

Work Title Shear-Induced Nematic Alignment in Polysulfone Melts
Access
Open Access
Creators
  1. Sara Daryoush
  2. Tiago Outerelo Corvo
  3. Enrique D. Gomez
  4. Ralph H. Colby
Keyword
  1. Polysulfone
  2. Polymer Melt
  3. Shear Rate
  4. Shear Induced
  5. Nematic Alignment
  6. Birefringence
  7. Rheology
  8. Temperature Dependence
  9. Polyolefin
  10. Flow Kinetics
  11. Temperature Effect
  12. Critical Shear Rate
  13. Rigidity
  14. Relaxation Time
  15. Polyolefins
  16. Control Parameters
  17. Stacking Interactions
  18. Linear Viscoelasticity
  19. Rod Like
  20. Melt Processing
  21. Anomalous Behavior
  22. Entangled Polymer Melt
  23. Tube Model
  24. Chain Stiffness
  25. Chain Relaxation
  26. Nematic
  27. Flow-alignment
License CC BY 4.0 (Attribution)
Work Type Article
Acknowledgments
  1. This work was supported by SKF.
Publisher
  1. Advanced Functional Materials
Publication Date June 9, 2025
Publisher Identifier (DOI)
  1. https://doi.org/10.1002/adfm.202419750
Deposited November 03, 2025

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Version 1
published

  • Created
  • Updated
  • Added Creator Sara Daryoush
  • Added Creator Tiago Outerelo Corvo
  • Added Creator Enrique D. Gomez
  • Added Creator Ralph H. Colby
  • Updated Work Title, Keyword, Publisher, and 4 more Show Changes
    Work Title
    • Shear-induced nematic alignment in polysulfone melts
    • Shear-Induced Nematic Alignment in Polysulfone Melts
    Keyword
    • Polysulfone, Polymer Melt, Shear Rate, Shear Induced, Nematic Alignment, Birefringence, Rheology, Temperature Dependence, Polyolefin, Flow Kinetics, Temperature Effect, Critical Shear Rate, Rigidity, Relaxation Time, Polyolefins, Control Parameters, Stacking Interactions, Linear Viscoelasticity, Rod Like, Melt Processing, Anomalous Behavior, Entangled Polymer Melt, Tube Model, Chain Stiffness, Chain Relaxation
    Publisher
    • Advanced Functional Materials
    Publisher Identifier (DOI)
    • 10.1002/adfm.202419750
    Related URLs
    • https://doi.org/10.1002/adfm.202419750
    Description
    • Polymer melt processing often requires conditions of temperature and shear that create flow-induced structures that impact the properties of the resulting material. Such an effect is connected to chain stretching, often leading to shear-induced nematic alignment of at least the longest chains, reported for rod-like polymers but also polyolefins. A polysulfone melt is shown here to undergo such nematic alignment, as can be predicted from its chain stiffness. Its convenient chain linearity, verified by very good agreement of the linear viscoelastic data with a tube model (BoB) for entangled polymer melts, and its inability to crystallize make it suitable for exploring the temperature dependence of the nematic alignment, monitored by both rheology and birefringence. The critical shear rate for nematic alignment at various temperatures is determined and contrasted with that expected from the Rouse time of the longest chains, often considered as the control parameter. Although the onset shear rate for nematic alignment is shown to follow the same temperature dependence as the chain relaxation times, suggesting that chain stretching is the underlying mechanism, the critical shear rate is much smaller than expected. This anomalous behavior of polysulfone is discussed in relation with possible π-stacking interactions stabilizing the nematic domains.
    Publication Date
    • 2025-06-19
  • Updated
  • Updated
  • Updated Acknowledgments Show Changes
    Acknowledgments
    • This work was supported by SKF.
  • Updated Creator Sara Daryoush
  • Updated Creator Tiago Outerelo Corvo
  • Updated Creator Enrique D. Gomez
  • Updated Creator Ralph H. Colby
  • Added PSU_paper_AcceptedVersion.pdf
  • Updated License Show Changes
    License
    • https://creativecommons.org/licenses/by/4.0/
  • Published
  • Updated
  • Updated Keyword, Publisher Identifier (DOI), Publication Date Show Changes
    Keyword
    • Polysulfone, Polymer Melt, Shear Rate, Shear Induced, Nematic Alignment, Birefringence, Rheology, Temperature Dependence, Polyolefin, Flow Kinetics, Temperature Effect, Critical Shear Rate, Rigidity, Relaxation Time, Polyolefins, Control Parameters, Stacking Interactions, Linear Viscoelasticity, Rod Like, Melt Processing, Anomalous Behavior, Entangled Polymer Melt, Tube Model, Chain Stiffness, Chain Relaxation
    • Polysulfone, Polymer Melt, Shear Rate, Shear Induced, Nematic Alignment, Birefringence, Rheology, Temperature Dependence, Polyolefin, Flow Kinetics, Temperature Effect, Critical Shear Rate, Rigidity, Relaxation Time, Polyolefins, Control Parameters, Stacking Interactions, Linear Viscoelasticity, Rod Like, Melt Processing, Anomalous Behavior, Entangled Polymer Melt, Tube Model, Chain Stiffness, Chain Relaxation, Nematic, Flow-alignment
    Publisher Identifier (DOI)
    • 10.1002/adfm.202419750
    • https://doi.org/10.1002/adfm.202419750
    Publication Date
    • 2025-06-19
    • 2025-06-09
  • Updated Related URLs Show Changes
    Related URLs
    • https://doi.org/10.1002/adfm.202419750

Version 2
published

  • Created
  • Added AccessibleCopy_11-20_Shear-Induced_Nematic_Alignment.pdf
  • Deleted PSU_paper_AcceptedVersion.pdf
  • Published