Physics – Condensed Matter – Mesoscale and Nanoscale Physics
Scientific paper
2011-04-07
Phys. Rev. Letters 106, 256801 (2011)
Physics
Condensed Matter
Mesoscale and Nanoscale Physics
this version (v3) is very similar to that ultimately published in PRL
Scientific paper
10.1103/PhysRevLett.106.256801
We investigate high-field transport in graphene nanoribbons (GNRs) on SiO2, up to breakdown. The maximum current density is limited by self-heating, but can reach >3 mA/um for GNRs ~15 nm wide. Comparison with larger, micron-sized graphene devices reveals that narrow GNRs benefit from 3D heat spreading into the SiO2, which enables their higher current density. GNRs also benefit from lateral heat flow to the contacts in short devices (< ~0.3 um), which allows extraction of a median GNR thermal conductivity (TC), ~80 W/m/K at 20 C across our samples, dominated by phonons. The TC of GNRs is an order of magnitude lower than that of micron-sized graphene on SiO2, suggesting strong roles of edge and defect scattering, and the importance of thermal dissipation in small GNR devices.
Dai* Hongjie
Jena Debdeep
Liao Albert D.
Pop Eric
Tahy Kristof
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