Scalable Dual In Situ Synthesis of Polyester Nanocomposites for High‐Energy Storage

Author:

Luo Fei‐Yan1,Li Yan‐Tong1,Zhang Jia‐Yu1,He Li1,Li Jia‐Le1,Sun Nan1,Li Gui‐Lin2,Jiang Yong2,Zhou Ke2,Liang Qian‐Qian2,Guo Lei2,Wei Hong‐Yuan3,Wei Xian‐Hua1,Zhou Yuan‐Lin1,Yuan Jinkai4,Zhang Quan‐Ping1ORCID

Affiliation:

1. State Key Laboratory of Environment‐friendly Energy Materials School of Materials and Chemistry Southwest University of Science and Technology No. 59 Qinglong Road Mianyang 621010 China

2. Sichuan EM Technology Co., Ltd No. 188 Sanxing Road Mianyang 621000 China

3. Tianjin Airtech Advanced Materials Co., Ltd No. 161, Chagugang Town, Wuqing District Tianjin 301721 China

4. Sorbonne Université CNRS Laboratoire de Chimie de la Matière Condensée de Paris LCMCP, UMR 7574 Paris 75005 France

Abstract

AbstractIncorporating ultralow loading of nanoparticles into polymers has realized increases in dielectric constant and breakdown strength for excellent energy storage. However, there are still a series of tough issues to be dealt with, such as organic solvent uses, which face enormous challenges in scalable preparation. Here, a new strategy of dual in situ synthesis is proposed, namely polymerization of polyethylene terephthalate (PET) synchronizes with growth of calcium borate nanoparticles, making polyester nanocomposites from monomers directly. Importantly, this route is free of organic solvents and surface modification of nanoparticles, which is readily accessible to scalable synthesis of polyester nanocomposites. Meanwhile, uniform dispersion of as ultralow as 0.1 wt% nanoparticles and intense bonding at interfaces have been observed. Furthermore, the PET‐based nanocomposite displays obvious increases in both dielectric constant and breakdown strength as compared to the neat PET. Its maximum discharged energy density reaches 15 J cm−3 at 690 MV m−1 and power density attains 218 MW cm−3 under 150 Ω resistance at 300 MV m−1, which is far superior to the current dielectric polymers that can be produced at large scales. This work presents a scalable, safe, low‐cost, and environment‐friendly route toward polymer nanocomposites with superior capacitive performance.

Funder

National Natural Science Foundation of China

Science and Technology Department of Sichuan Province

Publisher

Wiley

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