Negatively Charged Nanosheets Significantly Enhance the Energy-Storage Capability of Polymer-Based Nanocomposites.

Bao, Zhiwei; Hou, Chuangming; Shen, Zhonghui; Sun, Haoyang; Zhang, Genqiang; Luo, Zhen; Dai, Zhizhan; Wang, Chengming et al. · Adv Mater · 2020

basic_science · Level V

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Abstract

Polymer-based dielectric materials play a key role in advanced electronic devices and electric power systems. Although extensive research has been devoted to improve their energy-storage performances, it is a great challenge to increase the breakdown strength of polymer nanocomposites in terms of achieving high energy density and good reliability under high voltages. Here, a general strategy is proposed to significantly improve their breakdown strength and energy storage by adding negatively charged Ca<sub>2</sub> Nb<sub>3</sub> O<sub>10</sub> nanosheets. A dramatically enhanced breakdown strength (792 MV m<sup>-1</sup> ) and the highest energy density (36.2 J cm<sup>-3</sup> ) among all flexible polymer-based dielectrics are observed in poly(vinylidene fluoride)-based nanocomposite capacitors. The strategy generalizability is verified by the similar substantial enhancements of breakdown strength and energy density in polystyrene-based nanocomposites. Phase-field simulations demonstrate that the further enhanced breakdown strength is ascribed to the local electric field, produced by the negatively charged Ca<sub>2</sub> Nb<sub>3</sub> O<sub>10</sub> nanosheets sandwiched with the positively charged polyethyleneimine, which suppresses the secondary impact-ionized electrons and blocks the breakdown path in nanocomposites. The results demonstrate a new horizon of high-energy-density flexible capacitors.