4.5 Article

Is the Microgel Collapse a Two-Step Process? Exploiting Cononsolvency to Probe the Collapse Dynamics of Poly-N-isopropylacrylamide (pNIPAM)

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JOURNAL OF PHYSICAL CHEMISTRY B
卷 125, 期 5, 页码 1503-1512

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AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcb.0c10430

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  1. DFG (Deutsche Forschungsgemeinschaft) [SFB 985]

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This study focuses on the collapse kinetics of pNIPAM microgels due to cononsolvency, revealing unique insights into the volume phase transition dynamics caused by cononsolvency. The experimental data show a two-step process of microgel collapse, with the deviation of the dependence between the two time constants and the microgel's diameter in the collapsed state from the square-power law proposed by Tanaka and Fillmore. This deviation is discussed in relation to adhesion-induced deformation of the gels and the physical processes underlying the collapse.
Many applications of responsive microgels rely on the fast adaptation of the polymer network. However, the underlying dynamics of the de-/swelling process of the gels have not been fully understood. In the present work, we focus on the collapse kinetics of poly-N-isopropylacrylamide (pNIPAM) microgels due to cononsolvency. Cononsolvency means that either of the pure solvents, e.g., pure water or pure methanol, act as a so-called good solvent, leading to a swollen state of the polymer network. However, in mixtures of water and methanol, the previously swollen network undergoes a drastic volume loss. To further elucidate the cononsolvency transition, pNIPAM microgels with diameters between 20 and 110 mu m were synthesized by microfluidics. To follow the dynamics, pure water was suddenly exchanged with an unfavorable mixture of 20 mol% methanol (solvent-jump) within a microfluidic channel. The dynamic response of the microgels was investigated by optical and fluorescence microscopy and Raman microspectroscopy. The experimental data provide unique and detailed insight into the size-dependent kinetics of the volume phase transition due to cononsolvency. The change in the microgel's diameter over time points to a two-step process of the microgel collapse with a biexponential behavior. Furthermore, the dependence between the two time constants from this biexponential behavior and the microgel's diameter in the collapsed state deviates from the square-power law proposed by Tanaka and Fillmore [J. Chem. Phys. 1979, 70, 1214-1218]. The deviation is discussed considering the adhesion-induced deformation of the gels and the physical processes underlying the collapse.

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