Department of Applied Chemistry, National Chiao Tung University, Hsinchu, 300, Taiwan.
Department of Materials Science and Engineering, National Chiao Tung University, Hsinchu, 300, Taiwan.
Sci Rep. 2017 Sep 11;7(1):11243. doi: 10.1038/s41598-017-11741-9.
We report an affordable wet chemical route for the reproducible hybrid graphite-diamond nanowires (G-DNWs) growth from cysteamine functionalized diamond nanoparticles (ND-Cys) via pH induced self-assembly, which has been visualized through SEM and TEM images. Interestingly, the mechanistic aspects behind that self-assembly directed G-DNWs formation was discussed in details. Notably, above self-assembly was validated by AFM and TEM data. Further interrogations by XRD and Raman data were revealed the possible graphite sheath wrapping over DNWs. Moreover, the HR-TEM studies also verified the coexistence of less perfect sp graphite layer wrapped over the sp diamond carbon and the impurity channels as well. Very importantly, conductivity of hybrid G-DNWs was verified via fabrication of a single G-DNW. Wherein, the better conductivity of G-DNW portion L2 was found as 2.4 ± 1.92 × 10 mS/cm and revealed its effective applicability in near future. In addition to note, temperature dependent carrier transport mechanisms and activation energy calculations were reported in details in this work. Ultimately, to demonstrate the importance of our conductivity measurements, the possible mechanism behind the electrical transport and the comparative account on electrical resistivities of carbon based materials were provided.
我们报告了一种经济实惠的湿化学路线,用于通过半胱氨酸功能化金刚石纳米粒子(ND-Cys)的 pH 诱导自组装,从胱氨酸功能化金刚石纳米粒子(ND-Cys)中可重复地生长杂交石墨-金刚石纳米线(G-DNWs),这已经通过 SEM 和 TEM 图像可视化。有趣的是,详细讨论了自组装引导 G-DNWs 形成的机制方面。值得注意的是,上述自组装通过 AFM 和 TEM 数据得到了验证。进一步的 XRD 和拉曼数据分析揭示了可能在 DNWs 上包裹石墨鞘。此外,高分辨率 TEM 研究还证实了较少完美的 sp 石墨层包裹在 sp 金刚石碳上以及杂质通道的共存。非常重要的是,通过制造单个 G-DNW 验证了杂交 G-DNW 的导电性。其中,发现 G-DNW 部分 L2 的导电性更好,为 2.4±1.92×10 mS/cm,并显示出其在不久的将来的有效适用性。此外,在这项工作中详细报道了温度相关的载流子输运机制和激活能计算。最终,为了证明我们的电导率测量的重要性,提供了电传输背后的可能机制以及对基于碳的材料的电阻率的比较说明。