TY - JOUR
T1 - In Situ Synthesis of Iron Oxide-Polyisobutylene Multifunctional Nanocomposites
T2 - Size Control, Magnetic and Mechanical Properties Enhancement
AU - Meftah, Sakina
AU - Aydi, Nadine
AU - Hegde, Lohitha R.
AU - Selmane, Mohamed
AU - Yuan, Jinkai
AU - Bouteiller, Laurent
AU - Lefebvre, Caroline
AU - Ngo, Anh Tu
AU - Kondo, Djimedo
AU - Jaramillo-Botero, Andres
AU - Goddard, William A.
AU - Lisiecki, Isabelle
AU - Bedoui, Fahmi
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/4/25
Y1 - 2025/4/25
N2 - Polymer nanocomposites with precisely controlled nanoparticle size and narrow polydispersity offer substantial potential for multifunctional applications, particularly in energy and healthcare. In this study, we introduce an in situ synthesis approach for creating iron oxide nanoparticle-polyisobutylene nanocomposites, where the nanoparticle size distribution and spatial dispersion are finely tuned by adjusting the polymer concentration and molecular weight. This method allows us to investigate and control the growth dynamics of nanoparticles within the polymer solution, providing insights into how the polymer molecular weight and concentration influence nucleation, growth, and assembly. Beyond achieving precise size control, our approach enables the rational design of nanocomposites with significantly enhanced mechanical strength, evidenced by an increased storage modulus, while preserving their superparamagnetic behavior. This strategy advances the development of high-performance magnetic polymer nanocomposites and opens up possibilities for applications that require both robust mechanical properties and responsive magnetic features, marking a significant step forward in nanocomposite design and functionality.
AB - Polymer nanocomposites with precisely controlled nanoparticle size and narrow polydispersity offer substantial potential for multifunctional applications, particularly in energy and healthcare. In this study, we introduce an in situ synthesis approach for creating iron oxide nanoparticle-polyisobutylene nanocomposites, where the nanoparticle size distribution and spatial dispersion are finely tuned by adjusting the polymer concentration and molecular weight. This method allows us to investigate and control the growth dynamics of nanoparticles within the polymer solution, providing insights into how the polymer molecular weight and concentration influence nucleation, growth, and assembly. Beyond achieving precise size control, our approach enables the rational design of nanocomposites with significantly enhanced mechanical strength, evidenced by an increased storage modulus, while preserving their superparamagnetic behavior. This strategy advances the development of high-performance magnetic polymer nanocomposites and opens up possibilities for applications that require both robust mechanical properties and responsive magnetic features, marking a significant step forward in nanocomposite design and functionality.
KW - growth mechanism
KW - in situ synthesis
KW - iron oxide nanoparticles
KW - mechanical strength
KW - molecular weight
KW - polymer concentration
KW - polymer nanocomposites
KW - superparamagnetism
UR - http://www.scopus.com/inward/record.url?scp=105003649347&partnerID=8YFLogxK
U2 - 10.1021/acsapm.5c00457
DO - 10.1021/acsapm.5c00457
M3 - Article
AN - SCOPUS:105003649347
SN - 2637-6105
VL - 7
SP - 5150
EP - 5160
JO - ACS Applied Polymer Materials
JF - ACS Applied Polymer Materials
IS - 8
ER -