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Dynamic diffusive interfacial transport (D-DIT): A novel quantitative swelling technique for developing binary phase
Parth U Kelkar1, Kendra A Erk1, Seth Lindberg2
1School of Materials Engineering, Purdue University, West Lafayette, Indiana 47907, USA.
The Review of Scientific Instruments
|March 1, 2024
Summary
This study introduces a new quantitative swelling technique for dynamic surfactant phase behavior analysis. This method enables rapid, in situ study of non-equilibrium phase diagrams, crucial for formulation and processing.
Area of Science:
- Physical chemistry
- Materials science
- Chemical engineering
Background:
- Traditional surfactant phase diagram development is slow and doesn't capture dynamic phase changes.
- Understanding dynamic phase behavior is critical for optimizing surfactant formulations and processes.
Purpose of the Study:
- To present a novel quantitative swelling technique for studying dynamic surfactant phase behavior.
- To enable high-throughput, in situ analysis of phase evolution and water composition.
- To facilitate the development of non-equilibrium surfactant phase diagrams.
Main Methods:
- A quantitative swelling instrument combining cross-polarized optical and short-wave infrared imaging.
- In situ monitoring of phase identification and water composition.
- Analysis of a binary aqueous non-ionic surfactant solution across the full composition spectrum at two isotherms.
Main Results:
- Demonstrated high-resolution, high-throughput capability for dynamic phase analysis.
- Collected comprehensive data on phase evolution and dynamics for a non-ionic surfactant system.
- Validated the technique's ability to study time-dependent material behaviors.
Conclusions:
- The developed technique offers a pathway to create non-equilibrium phase diagrams for surfactant systems.
- This method is vital for predicting outcomes in formulation and processing.
- The instrument has broad applicability for studying time-dependent material relationships in various processes.
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