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Mechanical Behavior of Hybrid Thin Films Fabricated by Sequential Infiltration Synthesis in Water-Rich Environment.
Keren, Shachar; Bukowski, Cynthia; Barzilay, Maya; Kim, Myounguk; Stolov, Mikhail; Crosby, Alfred J; Cohen, Noy; Segal-Peretz, Tamar.
Afiliação
  • Keren S; The Wolfson Department of Chemical Engineering, Technion─Israel Institute of Technology, Haifa 32000, Israel.
  • Bukowski C; Polymer Science and Engineering Department, University of Massachusetts Amherst, 120 Governors Drive, Amherst, Massachusetts 01003, United States.
  • Barzilay M; The Wolfson Department of Chemical Engineering, Technion─Israel Institute of Technology, Haifa 32000, Israel.
  • Kim M; Polymer Science and Engineering Department, University of Massachusetts Amherst, 120 Governors Drive, Amherst, Massachusetts 01003, United States.
  • Stolov M; The Wolfson Department of Chemical Engineering, Technion─Israel Institute of Technology, Haifa 32000, Israel.
  • Crosby AJ; Polymer Science and Engineering Department, University of Massachusetts Amherst, 120 Governors Drive, Amherst, Massachusetts 01003, United States.
  • Cohen N; Department of Materials Science and Engineering, Technion─Israel Institute of Technology, Haifa 32000, Israel.
  • Segal-Peretz T; The Wolfson Department of Chemical Engineering, Technion─Israel Institute of Technology, Haifa 32000, Israel.
ACS Appl Mater Interfaces ; 15(40): 47487-47496, 2023 Oct 11.
Article em En | MEDLINE | ID: mdl-37772864
ABSTRACT
Sequential infiltration synthesis (SIS) is an emerging technique for fabricating hybrid organic-inorganic materials with nanoscale precision and controlled properties. Central to SIS implementation in applications such as membranes, sensors, and functional coatings is the mechanical properties of hybrid materials in water-rich environments. This work studies the nanocomposite morphology and its effect on the mechanical behavior of SIS-based hybrid thin films of AlOx-PMMA under aqueous environments. Water-supported tensile measurements reveal an unfamiliar behavior dependent on the AlOx content, where the modulus decreases after a single SIS cycle and increases with additional cycles. In contrast, the yield stress constantly decreases as the AlOx content increases. A comparison between water uptake measurements indicates that AlOx induces water uptake from the aqueous environment, implying a "nanoeffect" stemming from AlOx-water interactions. We discuss the two mechanisms that govern the modulus of the hybrid films softening due to increased water absorption and stiffening as the AlOx volume fraction increases. The decrease in the yield stress with SIS cycles is associated with the limited mobility and extensibility of polymer chains caused by the growth of AlOx clusters. Our study highlights the significance of developing hybrid materials to withstand aqueous or humid conditions which are crucial to their performance and durability.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2023 Tipo de documento: Article