CNRS International-NTU-Thales Research Alliance (CINTRA), UMI 3288 , Research Techno Plaza, 50 Nanyang Drive , Singapore 637553 , Singapore.
Temasek Laboratories@NTU , 50 Nanyang Avenue , Singapore 639798 , Singapore.
ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41707-41716. doi: 10.1021/acsami.8b15240. Epub 2018 Nov 16.
Three-dimensional (3D) graphene architectures with well-controlled structure and excellent physiochemical properties have attracted considerable interest due to their potential applications in flexible electronic devices. However, the majority of the existing 3D graphene still encounters several drawbacks such as brittleness, non-uniform building units, and limited scale (millimeter or even micrometer), which severely limits its practical applications. Herein, we demonstrate a new scalable technique for the preparation of thin-layer graphite foam (GF) with controllable densities (27.2-69.2 mg cm) by carbonization of polyacrylonitrile using a template-directed thermal annealing approach. By integrating the GF with poly(dimethylsiloxane) (PDMS), macroscopic porous GF@PDMS with variable thin-layer GF contents ranging from 15.9 to 31.7% was further fabricated. Owing to the robust interconnected porous network of the GF and the synergistic effect between GF and PDMS, GF@PDMS with a 15.9% thin-layer GF content exhibited an impressive 254% increase in compressive strength over the bare GF. In addition, such 15.9% GF@PDMS can totally recover after the first compression cycle at a 95% strain and maintain ∼88% recovery even after 1000 compression cycles at an 80% strain, demonstrating its superior compressibility. Moreover, all of the as-prepared GF@PDMS samples possessed high electrical conductivity (up to 34.3 S m), relatively low thermal conductivity (0.062-0.076 W m K), and excellent electromagnetic interference shielding effectiveness (up to 36.1 dB) over a broad frequency range of 8.2-18 GHz, indicating their great potential as promising candidates for high-performance electromagnetic wave absorption in flexible electronic devices.
具有良好结构可控性和优异物理化学性能的三维(3D)石墨烯结构因其在柔性电子器件中的潜在应用而引起了广泛关注。然而,大多数现有的 3D 石墨烯仍然存在一些缺点,如脆性、不均匀的构建单元和有限的尺寸(毫米甚至微米),这严重限制了其实际应用。在此,我们通过采用模板导向热退火方法,展示了一种新的可扩展技术,用于通过碳化聚丙烯腈制备具有可控密度(27.2-69.2 mg cm)的薄层石墨泡沫(GF)。通过将 GF 与聚二甲基硅氧烷(PDMS)集成,进一步制备了具有可变薄层 GF 含量(15.9-31.7%)的宏观多孔 GF@PDMS。由于 GF 的坚固互连多孔网络和 GF 与 PDMS 之间的协同作用,具有 15.9%薄层 GF 含量的 GF@PDMS 的抗压强度比裸 GF 提高了 254%。此外,在 95%应变下进行第一次压缩循环后,这种 15.9% GF@PDMS 可以完全恢复,即使在 80%应变下进行 1000 次压缩循环后,也能保持约 88%的恢复率,表现出优异的压缩性。此外,所有制备的 GF@PDMS 样品都具有高电导率(高达 34.3 S m)、相对较低的热导率(0.062-0.076 W m K)和出色的电磁干扰屏蔽效能(高达 36.1 dB),在 8.2-18 GHz 的宽频率范围内,这表明它们作为在柔性电子器件中具有优异的电磁波吸收性能的有前途的候选材料。