4.7 Article

Structural properties of thermoresponsive poly(N-isopropylacrylamide)-poly(ethyleneglycol) microgels

Journal

JOURNAL OF CHEMICAL PHYSICS
Volume 136, Issue 21, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4723686

Keywords

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Funding

  1. Spanish Science and Innovation Ministry [MAT2011-28385]
  2. Andalucian Government [P010-FQM 06104, P07-FQM-03116]
  3. FEDER
  4. EU [NMI3]
  5. COST Action [CM1101]
  6. American NSF through GaTech MRSEC [DMR-0820382]
  7. ACS [50603-DNI7]

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We present investigations of the structural properties of thermoresponsive poly(N-isopropylacrylamide) (PNiPAM) microgels dispersed in an aqueous solvent. In this particular work poly(ethyleneglycol) (PEG) units flanked with acrylate groups are employed as cross-linkers, providing an architecture designed to resist protein fouling. Dynamic light scattering (DLS), static light scattering (SLS), and small angle neutron scattering (SANS) are employed to study the microgels as a function of temperature over the range 10 degrees C <= T <= 40 degrees C. DLS and SLS measurements are simultaneously performed and, respectively, allow determination of the particle hydrodynamic radius, R-h, and radius of gyration, R-g, at each temperature. The thermal variation of these magnitudes reveals the microgel deswelling at the PNiPAM lower critical solution temperature (LCST). However, the hydrodynamic radius displays a second transition to larger radii at temperatures T <= 20 degrees C. This feature is atypical in standard PNiPAM microgels and suggests a structural reconfiguration within the polymer network at those temperatures. To better understand this behavior we perform neutron scattering measurements at different temperatures. In striking contrast to the scattering profile of soft sphere microgels, the SANS profiles for T <= LCST of our PNiPAM-PEG suspensions indicate that the particles exhibit structural properties characteristic of star polymer configurations. The star polymer radius of gyration and correlation length gradually decrease with increasing temperature despite maintenance of the star polymer configuration. At temperatures above the LCST, the scattered SANS intensity is typical of soft sphere systems. (C) 2012 American Institute of Physics. [http://dx.doi.org/10.1063/1.4723686]

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