Jang Moonjeong, Park Se Yeon, Kim Seong Ku, Jung Dowon, Song Wooseok, Myung Sung, Lee Sun Sook, Yoon Dae Ho, An Ki-Seok
Thin Film Materials Research Center, Korea Research Institute of Chemical Technology (KRICT), 141 Gajeong-ro, Yuseong-gu, Daejeon, 34114, Republic of Korea.
Department of Advanced Materials Sciences and Engineering, Sungkyunkwan University, Jangan-gu, Suwon, 16419, Republic of Korea.
Small. 2021 Apr;17(17):e2007213. doi: 10.1002/smll.202007213. Epub 2021 Mar 14.
Organic polymer-based dielectrics with intrinsic mechanical flexibility and good processability are excellent candidates for the dielectric layer of flexible electronics. These polymer films can become even more rigid and electrically robust when modified through cross-linking processes. Moreover, the composites formed by dispersing nanoscale inorganic fillers in a polymer matrix can exhibit further improved polarization property. However, these strategies can be challenging as homogeneous dispersion of nanomaterials in the matrix is difficult to achieve; thus, degradation of electrically insulating properties of nanocomposite layers is often observed. Here, a high-k, pinhole-free, and flexible poly(vinyl alcohol) (PVA)-based nanocomposite dielectric is presented, incorporating 2D TiO nanosheets (NSs) for the first time. Despite the attractive dielectric constant, exceptional flexibility, and electrically insulating property of PVA-TiO nanocomposites, only few studies on these materials have been reported. The organic/inorganic nanosheet hybrid layer, which reaches an unprecedentedly high dielectric constant of 43.8 (more than four times higher than that of cross-linked PVA), also exhibits an outstanding leakage current density as low as 10 A cm . Furthermore, the repeated bending tests for nanocomposite capacitors reveal their capability of operating without any deterioration of their performances even after 1000 iterations of bending cycles at a bending radius of 3 mm.
具有固有机械柔韧性和良好加工性能的有机聚合物基电介质是柔性电子器件介电层的理想候选材料。通过交联过程对这些聚合物薄膜进行改性后,它们可以变得更加坚硬且具有更强的电稳定性。此外,通过在聚合物基体中分散纳米级无机填料形成的复合材料可以表现出进一步改善的极化性能。然而,这些策略可能具有挑战性,因为纳米材料在基体中的均匀分散难以实现;因此,经常观察到纳米复合层的电绝缘性能下降。在此,首次提出了一种基于高介电常数、无针孔且柔性的聚乙烯醇(PVA)的纳米复合电介质,其中掺入了二维TiO纳米片(NSs)。尽管PVA-TiO纳米复合材料具有吸引人的介电常数、出色的柔韧性和电绝缘性能,但关于这些材料的研究报道很少。这种有机/无机纳米片杂化层的介电常数达到了前所未有的43.8(比交联PVA的介电常数高出四倍多),同时还表现出低至10 A cm 的出色漏电流密度。此外,对纳米复合电容器进行的反复弯曲测试表明,即使在3 mm弯曲半径下进行1000次弯曲循环后,它们仍能正常工作且性能没有任何下降。