Rotaxane Formation of Multicyclic Polydimethylsiloxane in a Silicone Network: A Step toward Constructing “Macro‐Rotaxanes” from High‐Molecular‐Weight Axle and Wheel Components

Author:

Ebe Minami1ORCID,Soga Asuka1,Fujiwara Kaiyu1,Ree Brian J.2ORCID,Marubayashi Hironori3ORCID,Hagita Katsumi4ORCID,Imasaki Atsushi3,Baba Miru2,Yamamoto Takuya2ORCID,Tajima Kenji2ORCID,Deguchi Tetsuo5ORCID,Jinnai Hiroshi3ORCID,Isono Takuya2ORCID,Satoh Toshifumi2ORCID

Affiliation:

1. Graduate School of Chemical Sciences and Engineering Hokkaido University Sapporo 060-8628 Japan

2. Division of Applied Chemistry, Faculty of Engineering Hokkaido University Sapporo 060-8628 Japan

3. Institute of Multidisciplinary Research for Advanced Materials Tohoku University Sendai 980-8577 Japan

4. Department of Applied Physics National Defense Academy Yokosuka 239-8686 Japan

5. Department of Physics, Faculty of Core Research Ochanomizu University Tokyo 112-8610 Japan

Abstract

AbstractRotaxanes consisting of a high‐molecular‐weight axle and wheel components (macro‐rotaxanes) have high structural freedom, and are attractive for soft‐material applications. However, their synthesis remains underexplored. Here, we investigated macro‐rotaxane formation by the topological trapping of multicyclic polydimethylsiloxanes (mc‐PDMSs) in silicone networks. mc‐PDMS with different numbers of cyclic units and ring sizes was synthesized by cyclopolymerization of a α,ω‐norbornenyl‐functionalized PDMS. Silicone networks were prepared in the presence of 10–60 wt % mc‐PDMS, and the trapping efficiency of mc‐PDMS was determined. In contrast to monocyclic PDMS, mc‐PDMSs with more cyclic units and larger ring sizes can be quantitatively trapped in the network as macro‐rotaxanes. The damping performance of a 60 wt % mc‐PDMS‐blended silicone network was evaluated, revealing a higher tan δ value than the bare PDMS network. Thus, macro‐rotaxanes are promising as non‐leaching additives for network polymers.

Funder

Japan Society for the Promotion of Science

Japan Science and Technology Agency

Hokkaido University

Creative Research Institute, Hokkaido University

Eno Scientific Foundation

Publisher

Wiley

Subject

General Chemistry,Catalysis

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