Centre for Advanced Materials Technology, School of Aerospace, Mechanical and Mechatronic Engineering , University of Sydney , Sydney , NSW 2006 , Australia.
ACS Appl Mater Interfaces. 2018 Aug 8;10(31):26641-26652. doi: 10.1021/acsami.8b08031. Epub 2018 Jul 24.
Hexagonal boron nitride (h-BN) has tremendous potential for dielectric energy storage by rationally assembling with graphene. We report the fabrication of microlaminate composites consisting of alternating reduced graphene oxide (rGO) and h-BN nanosheets embedded in a polyurethane (PU) matrix using a novel, two-step bidirectional freeze casting process. Porous, highly-aligned rGO-PU aerogels having ultrahigh dielectric constants with relatively high dielectric losses and low dielectric strengths are fabricated by initial freeze casting. The losses are suppressed, whereas the dielectric strengths are restored by assembling the porous rGO-PU skeleton with electrically insulating BN-PU tunneling barrier layers in the second freeze casting routine. The ligaments bridging the conductive rGO-PU layers are effectively removed by the BN-PU barrier layers, eliminating the current leakage in the transverse direction. The resultant rGO-PU/BN-PU microlaminate composites deliver a remarkable dielectric constant of 1084 with a low dielectric loss of 0.091 at 1 kHz. By virtue of synergy arising from both the rGO-PU layers with a high dielectric constant and the BN-PU barrier layers with a high dielectric strength, the microlaminate composites present a maximum energy density of 22.7 J/cm, 44 folds of the neat rGO-PU composite acting alone. The promising overall dielectric performance based on a microlaminate structure offers a new insight into the development of next-generation dielectric materials.
六方氮化硼(h-BN)与石墨烯合理组装具有巨大的介电储能潜力。我们报告了使用新型两步双向冷冻铸造工艺制造由交替的还原氧化石墨烯(rGO)和 h-BN 纳米片嵌入聚氨酯(PU)基质组成的微层复合材料。通过初始冷冻铸造制造具有超高介电常数的多孔、高度取向的 rGO-PU 气凝胶,其介电损耗相对较高,介电强度较低。通过在第二冷冻铸造过程中用电绝缘 BN-PU 隧道势垒层组装多孔 rGO-PU 骨架,可以抑制损耗,恢复介电强度。BN-PU 势垒层有效地去除了桥接导电 rGO-PU 层的键合,消除了横向的电流泄漏。所得的 rGO-PU/BN-PU 微层复合材料在 1 kHz 时具有 1084 的显著介电常数和 0.091 的低介电损耗。由于高介电常数的 rGO-PU 层和高介电强度的 BN-PU 势垒层的协同作用,微层复合材料表现出 22.7 J/cm 的最大能量密度,是单独使用纯 rGO-PU 复合材料的 44 倍。基于微层结构的有前途的整体介电性能为开发下一代介电材料提供了新的见解。