Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China.
ACS Nano. 2012 Oct 23;6(10):8611-9. doi: 10.1021/nn301880w. Epub 2012 Sep 13.
The facile preparation of high-purity carbon nanofibers (CNFs) remains challenging due to the high complexity and low controllability in reaction. A novel approach using gas-induced formation of Cu crystals to control the growth of CNFs is developed in this study. By adjusting the atmospheric composition, controllable preparation of Cu nanoparticles (NPs) with specific size and shape is achieved, and they are further used as a catalyst for the growth of straight or helical CNFs with good selectivity and high yield. The preparation of Cu NPs and the formation of CNFs are completed by a one-step process. The inducing effect of N(2), Ar, H(2), and C(2)H(2) on the formation of Cu NPs is systematically investigated through a combined experimental and computational approach. The morphology of CNFs obtained under different conditions is rationalized in terms of Cu NP and CNF growth models. The results suggest that the shapes of CNFs, namely, straight or helical, depend closely on the size, shape, and facet activity of Cu NPs, while such a gas-inducing method offers a simple way to control the formation of Cu NPs.
由于反应的复杂性和可控性低,高纯度碳纳米纤维(CNF)的简易制备仍然具有挑战性。本研究提出了一种使用气体诱导形成 Cu 晶体来控制 CNF 生长的新方法。通过调整大气组成,实现了具有特定尺寸和形状的 Cu 纳米颗粒(NPs)的可控制备,并且它们进一步被用作直形或螺旋形 CNF 具有良好选择性和高收率的生长的催化剂。Cu NPs 的制备和 CNF 的形成通过一步法完成。通过组合实验和计算方法系统研究了 N(2)、Ar、H(2)和 C(2)H(2)对 Cu NPs 形成的诱导作用。根据 Cu NP 和 CNF 生长模型,对不同条件下获得的 CNF 的形态进行了合理化。结果表明,CNF 的形状,即直形或螺旋形,与 Cu NPs 的尺寸、形状和晶面活性密切相关,而这种气体诱导方法为控制 Cu NPs 的形成提供了一种简单的方法。