Scalable Polyimide‐Organosilicate Hybrid Films for High‐Temperature Capacitive Energy Storage

Author:

Dong Jiufeng12,Li Li12,Qiu Peiqi13,Pan Yupeng4,Niu Yujuan12,Sun Liang12,Pan Zizhao12,Liu Yuqi12,Tan Li12,Xu Xinwei12,Xu Chen4,Luo Guangfu13,Wang Qing5,Wang Hong12ORCID

Affiliation:

1. Department of Materials Science and Engineering Southern University of Science and Technology Shenzhen Guangdong 518055 China

2. Shenzhen Engineering Research Center for Novel Electronic Information Materials and Devices & Guangdong Provincial Key Laboratory of Functional Oxide Materials and Devices Southern University of Science and Technology Shenzhen Guangdong 518055 China

3. Guangdong Provincial Key Laboratory of Computational Science and Material Design Southern University of Science and Technology Shenzhen Guangdong 518055 China

4. Shenzhen Grubbs Institute and Department of Chemistry Southern University of Science and Technology Shenzhen Guangdong 518055 China

5. Department of Materials Science and Engineering The Pennsylvania State University University Park PA 16802 USA

Abstract

AbstractHigh‐temperature polymer dielectrics have broad application prospects in next‐generation microelectronics and electrical power systems. However, the capacitive energy densities of dielectric polymers at elevated temperatures are severely limited by carrier excitation and transport. Herein, a molecular engineering strategy is presented to regulate the bulk‐limited conduction in the polymer by bonding amino polyhedral oligomeric silsesquioxane (NH2‐POSS) with the chain ends of polyimide (PI). Experimental studies and density functional theory (DFT) calculations demonstrate that the terminal group NH2‐POSS with a wide‐bandgap of Eg ≈ 6.6 eV increases the band energy levels of the PI and induces the formation of local deep traps in the hybrid films, which significantly restrains carrier transport. At 200 °C, the hybrid film exhibits concurrently an ultrahigh discharged energy density of 3.45 J cm−3 and a high gravimetric energy density of 2.74 J g−1, with the charge‐discharge efficiency >90%, far exceeding those achieved in the dielectric polymers and nearly all other polymer nanocomposites. Moreover, the NH2‐POSS terminated PI film exhibits excellent charge‐discharge cyclability (>50000) and power density (0.39 MW cm−3) at 200 °C, making it a promising candidate for high‐temperature high‐energy‐density capacitors. This work represents a novel strategy to scalable polymer dielectrics with superior capacitive performance operating in harsh environments.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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