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Perikinetic Aggregation Induced by Chromium Hydrolytic Polymer and Sol
1Institut Charles Sadron, 6, Rue Boussingault, Strasbourg Cedex, 67083, France
Journal of Colloid and Interface Science
|December 16, 1998
Summary
This study examined polystyrene latex particle aggregation kinetics with chromium. Results reveal aggregation reversibility depends on particle reactivity and time, impacting overall stability.
Area of Science:
- Colloid and Surface Science
- Polymer Chemistry
- Materials Science
Background:
- Polystyrene latex particles with sulfate groups are susceptible to aggregation.
- Chromium-based polymers and sols can induce particle aggregation.
- Understanding aggregation kinetics is crucial for material stability and processing.
Purpose of the Study:
- To investigate the kinetics of polystyrene latex particle destabilization induced by chromium polymer and oxide sol.
- To determine the scaling exponents and aggregation mechanisms.
- To analyze the reversibility of aggregation processes.
Main Methods:
- Particle counting technique to monitor aggregation.
- Derivation of weight-average (S(t)) and number-average (N(t)) masses of aggregates.
- Analysis of mass distribution curves and scaling exponents (z, w, tau).
Main Results:
- The relationship tau = 2 - (w/z) was validated, with tau typically 1.5.
- Deviations in tau (1.24 short-term, 1.37 long-term) were observed with increasing chromium species.
- An unusual mass distribution with a hump was noted, attributed to diffusion-limited aggregation.
- Short-term aggregation showed high apparent reactivity and reversibility.
- Long-term aggregation exhibited lower apparent reactivity and was irreversible or less reversible.
Conclusions:
- The aggregation mechanism is influenced by the concentration of chromium polymer and sol.
- The observed mass distribution suggests a combination of reaction-limited and diffusion-limited aggregation processes.
- Aggregation reversibility is time-dependent, with initial stages being reversible and later stages irreversible.