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Rationally designed graphene-nanotube 3D architectures with a seamless nodal junction for efficient energy conversion and storage

机译:合理设计的具有无缝节点结的石墨烯-纳米管3D架构,可实现高效的能量转换和存储

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One-dimensional (1D) carbon nanotubes (CNTs) and 2D single-atomic layer graphene have superior thermal, electrical, and mechanical properties. However, these nanomaterials exhibit poor out-of-plane properties due to the weak van der Waals interaction in the transverse direction between graphitic layers. Recent theoretical studies indicate that rationally designed 3D architectures could have desirable out-of-plane properties while maintaining in-plane properties by growing CNTs and graphene into 3D architectures with a seamless nodal junction. However, the experimental realization of seamlessly-bonded architectures remains a challenge. We developed a strategy of creating 3D graphene-CNT hollow fibers with radially aligned CNTs (RACNTs) seamlessly sheathed by a cylindrical graphene layer through a one-step chemical vapor deposition using an anodized aluminum wire template. By controlling the aluminum wire diameter and anodization time, the length of the RACNTs and diameter of the graphene hollow fiber can be tuned, enabling efficient energy conversion and storage. These fibers, with a controllable surface area, meso-/micropores, and superior electrical properties, are excellent electrode materials for all-solid-state wire-shaped supercapacitors with poly(vinyl alcohol)/H2SO4 as the electrolyte and binder, exhibiting a surface-specific capacitance of 89.4 mF/cm2 and length-specific capacitance up to 23.9 mF/cm, — one to four times the corresponding record-high capacities reported for other fiber-like supercapacitors. Dye-sensitized solar cells, fabricated using the fiber as a counter electrode, showed a power conversion efficiency of 6.8% and outperformed their counterparts with an expensive Pt wire counter electrode by a factor of 2.5. These novel fiber-shaped graphene-RACNT energy conversion and storage devices are so flexible they can be woven into fabrics as power sources.
机译:一维(1D)碳纳米管(CNT)和2D单原子层石墨烯具有出色的热,电和机械性能。然而,由于在石墨层之间的横向上的弱范德华相互作用,这些纳米材料表现出差的平面外性能。最近的理论研究表明,通过将CNT和石墨烯生长到具有无缝节点结的3D架构中,合理设计的3D架构可以具有理想的平面外特性,同时保持平面内特性。然而,无缝结合架构的实验实现仍然是一个挑战。我们开发了一种策略,该方法通过使用阳极氧化铝线模板的一步化学气相沉积,创建具有3D石墨烯-CNT中空纤维的结构,其中径向排列的CNT(RACNT)被圆柱形石墨烯层无缝包覆。通过控制铝线的直径和阳极氧化时间,可以调整RACNT的长度和石墨烯中空纤维的直径,从而实现高效的能量转换和存储。这些纤维具有可控制的表面积,介孔/微孔和优异的电性能,是用于含聚乙烯醇/ H 2 SO的全固态线形超级电容器的极佳电极材料 4 作为电解质和粘合剂,其表面比电容为89.4 mF / cm 2 ,长度比电容高达23.9 mF / cm,是一到四倍据报道,其他类似纤维的超级电容器具有创纪录的高容量。使用该纤维作为对电极制造的染料敏化太阳能电池,其功率转换效率为6.8%,在昂贵的Pt导线对电极中,其表现比同类产品高2.5倍。这些新颖的纤维状石墨烯-RACNT能量转换和存储设备非常灵活,可以将其编织成织物作为电源。

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