Interfacial 2D Montmorillonite Nanocoatings Enable Sandwiched Polymer Nanocomposites to Exhibit Ultrahigh Capacitive Energy Storage Performance at Elevated Temperatures

材料科学 纳米复合材料 电介质 电极 钛酸钡 复合材料 聚合物纳米复合材料 聚合物 电容感应 纳米技术 储能 光电子学 功率(物理) 量子力学 操作系统 物理 计算机科学 物理化学 化学
作者
Yifei Wang,Zongze Li,Thomas Moran,Luis Ortiz,Chao Wu,Antigoni Konstantinou,Hiep H. Nguyen,Jierui Zhou,Jindong Huo,Kerry Davis‐Amendola,Peinan Zhou,Bryan D. Huey,Yang Cao
出处
期刊:Advanced Science [Wiley]
卷期号:9 (35): e2204760-e2204760 被引量:42
标识
DOI:10.1002/advs.202204760
摘要

Abstract Polymer dielectrics are essential for advanced electrical and electronic power systems due to their ultrafast charge–discharge rate. However, a long‐standing challenge is to maintain their dielectric performance at high temperatures. Here, a layered barium titanate/polyamideimide nanocomposite reinforced with rationally designed interfaces is reported for high‐temperature high‐energy‐density dielectrics. Nanocoatings composed of 2D montmorillonite nanosheets with anisotropic conductivities are interposed at two kinds of macroscopic interfaces: 1) the interfaces between adjacent layers in the nanocomposites (inside) and 2) the interfaces between the surface of the nanocomposite and the electrode (outside). By revealing the charge transport behavior with Kelvin probe force microscope, surface potential decay, and finite element simulation, it is demonstrated that the outside nanocoatings are observed to diminish charge injection from the electrode, while the inside nanocoatings can suppress the kinetic energy of hot carriers by redirecting their transport. In this interface‐reinforced nanocomposite, an ultrahigh energy density of 2.48 J cm −3 , as well as a remarkable charge–discharge efficiency >80%, is achieved at 200 °C, six times higher than that of the nanocomposite without interfacial nanocoatings. This research unveils a novel approach for the structural design of polymer nanocomposites based on engineered interfaces to achieve high‐efficient and high‐temperature capacitive energy storage.
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