BaTiO3 Catalyzed Ultrasonic‐Driven Piezoelectric‐Induced Reversible Addition‐Fragmentation Chain‐Transfer Polymerization in Aqueous Media

Author:

Zhang Yu1,Zhang Junle2,Xu Shuo1,Shi Ge1,He Yanjie1,Qiao Xiaoguang13ORCID,Pang Xinchang1

Affiliation:

1. Henan Joint International Research Laboratory of Living Polymerizations and Functional Nanomaterials Henan Key Laboratory of Advanced Nylon Materials and Application School of Materials Science and Engineering Zhengzhou University Zhengzhou 450001 China

2. Faculty of Engineering Huanghe Science and Technology College Zhengzhou 450063 China

3. College of Materials Engineering Henan International Joint Laboratory of Rare Earth Composite Materials Henan Engineering Technology Research Center for Fiber Preparation and Modification Henan University of Engineering Zhengzhou 451191 China

Abstract

AbstractCompared with normal stimulus such as light and heat, ultrasonic possesses much deeper penetration into tissues and organs and has lower scattering in heterogeneous systems as a noninvasive stimulus. Reversible addition‐fragmentation chain‐transfer polymerization (RAFT) in aqueous media is performed in a commercial ultrasonic wash bath with 40 kHz frequency ultrasonic, in the presence of piezoelectric tetragonal BaTiO3 (BTO) nanoparticles. Owing to the electron transfer from BTO under the ultrasonic action, the water can be decomposed to produce hydroxyl radical (HO•) and initiate the RAFT polymerization (piezo‐RAFT). The piezo‐RAFT polymerization exhibits features of controllable and livingness, such as linear increase of molar mass and narrow molar mass distributions (Mw/Mn < 1.20). Excellent temporal control of the polymerization and the chain fidelity of polymers are illustrated by “ON and OFF” experiment and chain extension, separately. Moreover, this ultrasonic‐driven piezoelectric‐induced RAFT polymerization in aqueous media can be directly used for the preparation of piezoelectric hydrogel which have potential application for stress sensor.

Funder

National Natural Science Foundation of China

Publisher

Wiley

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