Skip to content
JournalsWorldThe Global Research Discovery Platform
SCHOLARLY PUBLICATION ✓ Open Access

Chaotic Dirac Billiard in Graphene Quantum Dots

Leonid A. Ponomarenko, Fred Schedin, Mikhail I. Katsnelson, Rui Yang, Ernie W. Hill, Kostya S. Novoselov, Andre K. Geim

📄 Abstract

The exceptional electronic properties of graphene, with its charge carriers mimicking relativistic quantum particles and its formidable potential in various applications, have ensured a rapid growth of interest in this new material. We report on electron transport in quantum dot devices carved entirely from graphene. At large sizes (>100 nanometers), they behave as conventional single-electron transistors, exhibiting periodic Coulomb blockade peaks. For quantum dots smaller than 100 nanometers, the peaks become strongly nonperiodic, indicating a major contribution of quantum confinement. Random peak spacing and its statistics are well described by the theory of chaotic neutrino billiards. Short constrictions of only a few nanometers in width remain conductive and reveal a confinement gap of up to 0.5 electron volt, demonstrating the possibility of molecular-scale electronics based on graphene.

📤 Share this page

Found this useful? Share it with your network.

✓ Link copied! Paste it on ResearchGate / Academia.edu