TY - JOUR
T1 - Quantized edge modes in atomic-scale point contacts in graphene
AU - Kinikar, Amogh
AU - Phanindra Sai, T.
AU - Bhattacharyya, Semonti
AU - Agarwala, Adhip
AU - Biswas, Tathagata
AU - Sarker, Sanjoy K.
AU - Krishnamurthy, H. R.
AU - Jain, Manish
AU - Shenoy, Vijay B.
AU - Ghosh, Arindam
PY - 2017/6/6
Y1 - 2017/6/6
N2 - The zigzag edges of single- or few-layer graphene are perfect one-dimensional conductors owing to a set of gapless states that are topologically protected against backscattering. Direct experimental evidence of these states has been limited so far to their local thermodynamic and magnetic properties, determined by the competing effects of edge topology and electron-electron interaction. However, experimental signatures of edge-bound electrical conduction have remained elusive, primarily due to the lack of graphitic nanostructures with low structural and/or chemical edge disorder. Here, we report the experimental detection of edge-mode electrical transport in suspended atomic-scale constrictions of single and multilayer graphene created during nanomechanical exfoliation of highly oriented pyrolytic graphite. The edge-mode transport leads to the observed quantization of conductance close to multiples of G0 = 2e2 /h. At the same time, conductance plateaux at G0/2 and a split zero-bias anomaly in non-equilibrium transport suggest conduction via spin-polarized states in the presence of an electron-electron interaction.
AB - The zigzag edges of single- or few-layer graphene are perfect one-dimensional conductors owing to a set of gapless states that are topologically protected against backscattering. Direct experimental evidence of these states has been limited so far to their local thermodynamic and magnetic properties, determined by the competing effects of edge topology and electron-electron interaction. However, experimental signatures of edge-bound electrical conduction have remained elusive, primarily due to the lack of graphitic nanostructures with low structural and/or chemical edge disorder. Here, we report the experimental detection of edge-mode electrical transport in suspended atomic-scale constrictions of single and multilayer graphene created during nanomechanical exfoliation of highly oriented pyrolytic graphite. The edge-mode transport leads to the observed quantization of conductance close to multiples of G0 = 2e2 /h. At the same time, conductance plateaux at G0/2 and a split zero-bias anomaly in non-equilibrium transport suggest conduction via spin-polarized states in the presence of an electron-electron interaction.
UR - http://www.scopus.com/inward/record.url?scp=85017033435&partnerID=8YFLogxK
U2 - 10.1038/nnano.2017.24
DO - 10.1038/nnano.2017.24
M3 - Article
AN - SCOPUS:85017033435
SN - 1748-3387
VL - 12
SP - 564
EP - 568
JO - Nature Nanotechnology
JF - Nature Nanotechnology
IS - 6
ER -