Jin C H, Wang J Y, Chen Q, Peng L-M
Beijing National Laboratory for Condensed Matter Physics, Institute of Physics, Chinese Academy of Science, P.O. Box 603, Beijing 100080, P.R. China.
J Phys Chem B. 2006 Mar 23;110(11):5423-8. doi: 10.1021/jp057240r.
Individual amorphous carbon nanowires (a-CNWs) were fabricated inside a transmission electron microscope (TEM) by the electron beam induced deposition (EBID) method, and the a-CNWs were graphitized in situ by introducing Fe particles into these a-CNWs and controlled movement of the Fe particles in these CNWs. Detailed structural characterizations and electrical measurements were carried out, and it was found that the current-induced movement of Fe particles has significant effects in purifying the as-fabricated a-CNW, transforming the a-CNW into a graphitized-CNW (g-CNW). Two-terminal current voltage characteristics measurements showed that the g-CNW has a very good electrical conductivity with a resistivity of about 5.3 x 10(-4) Omega cm, a current carrying capacity of at least 4.35 mA, and a current density of 4.6 x 10(8) A/cm(2), and these values are comparable to those of multiwalled carbon nanotubes. Field emission characteristics of both a-CNWs and g-CNWs were also measured, and their respective Fowler-Nordheim plots were found to have basically a linear form.
通过电子束诱导沉积(EBID)方法在透射电子显微镜(TEM)内制备了单个非晶碳纳米线(a-CNWs),并通过将铁颗粒引入这些a-CNWs中并控制铁颗粒在这些碳纳米线中的移动,对a-CNWs进行原位石墨化。进行了详细的结构表征和电学测量,发现铁颗粒的电流诱导移动对纯化制备的a-CNW、将a-CNW转变为石墨化碳纳米线(g-CNW)具有显著影响。两端电流电压特性测量表明,g-CNW具有非常好的导电性,电阻率约为5.3×10⁻⁴Ω·cm,载流能力至少为4.35 mA,电流密度为4.6×10⁸ A/cm²,这些值与多壁碳纳米管的值相当。还测量了a-CNWs和g-CNWs的场发射特性,发现它们各自的福勒-诺德海姆图基本呈线性形式。