Kharlamova Marianna V, Sauer Markus, Saito Takeshi, Sato Yuta, Suenaga Kazu, Pichler Thomas, Shiozawa Hidetsugu
Faculty of Physics, University of Vienna, Strudlhofgasse 4, 1090 Vienna, Austria.
Nanoscale. 2015 Jan 28;7(4):1383-91. doi: 10.1039/c4nr05586a.
Controlled doping of carbon nanotubes is elemental for their electronic applications. Here we report an approach to tune the polarity and degree of doping of single-walled carbon nanotubes via filling with nickelocene followed by encapsulated reactions. Using Raman, photoemission spectroscopy and transmission electron microscopy, we show that nickelocene molecules transform into nickel carbides, nickel and inner carbon nanotubes with reaction temperatures as low as 250 °C. The doping efficiency is determined for each chemical component. Synchronous charge transfer among the molecular components allows bipolar doping of the carbon nanotubes to be achieved in a broad range of ±0.0012 e(-) per carbon.
对碳纳米管进行可控掺杂对其电子应用至关重要。在此,我们报告一种通过填充二茂镍并随后进行包封反应来调节单壁碳纳米管掺杂极性和程度的方法。利用拉曼光谱、光电子能谱和透射电子显微镜,我们表明二茂镍分子在低至250°C的反应温度下转变为碳化镍、镍和内部碳纳米管。确定了每种化学成分的掺杂效率。分子成分之间的同步电荷转移使得能够在每碳原子±0.0012 e(-)的宽范围内实现碳纳米管的双极掺杂。