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Syamjith KS

Publications and source records attributed to Syamjith KS.

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Interplay of network architecture and ionic environment in dictating pNIPAM microgel thermoresponsiveness

The utility of non functionalized poly(N-isopropylacrylamide) (pNIPAM) microgels in physiological and environmental applications is strictly dependent on their reversible thermoresponsiveness and stability in saline media. Despite their importance, a unified understanding of how network topology specifically crosslinker concentration and distribution regulates ionic sensitivity remains fragmented in the literature. This work systematically investigates the interplay between network topology and ionic strength (0 to 100 mM NaCl) across eight distinct microgel architectures, ranging from ultra-low crosslinked (ULC) to core-corona and homogeneously crosslinked (HC) variants. Utilizing dynamic light scattering across 22 batches, we analyzed critical thermoresponsive properties, including volume phase transition temperature (VPTT) shifts, salt tolerance thresholds, hysteresis indices, and flocculation kinetics (only at extreme salinity, 1000 mM NaCl and at 25 deg C). This comprehensive investigation enables a multidimensional analysis of how ionic strength, the presence or absence of crosslinkers (MBA), spatial crosslinking distribution, and thermodynamic states dictate microgel behavior across varying temperatures. Finally, we evaluate the applicability of this experimental library to established theoretical frameworks, specifically the Flory Rehner and Flory Rehner Donnan models, addressing ongoing debates regarding their validity in describing complex microgel systems.

cond-mat.soft

Role of softness on transition temperatures for pNIPAM microgels

Poly(N-isopropylacrylamide) (pNIPAM) microgels are renowned for their thermoresponsive behavior, exhibiting a distinct volume phase transition (VPT) upon temperature changes. This study investigates the influence of microgel softness, controlled by varying the crosslinking density during synthesis via free radical polymerization (FRP), on the difference between the volume phase transition temperature (VPTT) and the electrokinetic transition temperature (ETT). These transition temperatures mark the points at which the microgel size and surface charge, respectively, undergo significant alterations in response to temperature. Here, we investigate this phenomenon, employing dynamic light scattering (DLS) and electrophoretic light scattering (ELS) measurements to characterize the size and electrophoretic mobility response of pNIPAM microgels with different crosslinking densities as a function of temperature. By analyzing the observed trends in the difference between the transition temperatures, we aim to develop a hypothesis that provides a deeper physical understanding of the microgel structure and its relationship to transition temperatures. This investigation thus sheds light on the intricate interplay between microgel structure and its thermoresponsive behavior, offering insights for the design and optimization of pNIPAM microgels for future applications.

cond-mat.soft