Steele G A, Hüttel A K, Witkamp B, Poot M, Meerwaldt H B, Kouwenhoven L P, van der Zant H S J
Kavli Institute of NanoScience, Delft University of Technology, Post Office Box 5046, 2600 GA, Delft, Netherlands.
Science. 2009 Aug 28;325(5944):1103-7. doi: 10.1126/science.1176076. Epub 2009 Jul 23.
Nanoscale resonators that oscillate at high frequencies are useful in many measurement applications. We studied a high-quality mechanical resonator made from a suspended carbon nanotube driven into motion by applying a periodic radio frequency potential using a nearby antenna. Single-electron charge fluctuations created periodic modulations of the mechanical resonance frequency. A quality factor exceeding 10(5) allows the detection of a shift in resonance frequency caused by the addition of a single-electron charge on the nanotube. Additional evidence for the strong coupling of mechanical motion and electron tunneling is provided by an energy transfer to the electrons causing mechanical damping and unusual nonlinear behavior. We also discovered that a direct current through the nanotube spontaneously drives the mechanical resonator, exerting a force that is coherent with the high-frequency resonant mechanical motion.
在许多测量应用中,高频振荡的纳米级谐振器都很有用。我们研究了一种由悬浮碳纳米管制成的高质量机械谐振器,通过使用附近的天线施加周期性射频电势来驱动其运动。单电子电荷涨落产生了机械共振频率的周期性调制。超过10⁵的品质因数使得能够检测到由于在纳米管上添加单个电子电荷而导致的共振频率偏移。机械运动与电子隧穿的强耦合的额外证据由能量转移到电子导致机械阻尼和异常非线性行为提供。我们还发现,通过纳米管的直流电流会自发地驱动机械谐振器,施加一种与高频谐振机械运动相干的力。