Scaling of Resistance and Electron Mean Free Path of Single-Walled Carbon Nanotubes
Meninder Purewal, Byung Hee Hong, Anirudhh Ravi, Bhupesh Chandra, James Hone, Philip Kim
Abstract
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Meninder Purewal, Byung Hee Hong, Anirudhh Ravi, Bhupesh Chandra, James Hone, Philip Kim
Abstract
Open-access reader
We present an experimental investigation on the scaling of resistance in individual single-walled carbon nanotube devices with channel lengths that vary 4 orders of magnitude on the same sample. The electron mean free path is obtained from the linear scaling of resistance with length at various temperatures. The low temperature mean free path is determined by impurity scattering, while at high temperature, the mean free path decreases with increasing temperature, indicating that it is limited by electron-phonon scattering. An unusually long mean free path at room temperature has been experimentally confirmed. Exponentially increasing resistance with length at extremely long length scales suggests anomalous localization effects.
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We present an experimental investigation on the scaling of resistance in individual single-walled carbon nanotube devices with channel lengths that vary 4 orders of magnitude on the same sample. The electron mean free path is obtained from the linear scaling of resistance with length at various temperatures. The low temperature mean free path is determined by impurity scattering, while at high temperature, the mean free path decreases with increasing temperature, indicating that it is limited by electron-phonon scattering. An unusually long mean free path at room temperature has been experimentally confirmed. Exponentially increasing resistance with length at extremely long length scales suggests anomalous localization effects.
Key concepts: Mean free path, Scaling, Scattering, Carbon nanotube, Path length, Materials science, Condensed matter physics, Weak localization