English

Growth of self-integrated atomic quantum wires and junctions of a Mott semiconductor

Mesoscale and Nanoscale Physics 2023-05-24 v2 Materials Science Strongly Correlated Electrons Adaptation and Self-Organizing Systems

Abstract

Continued advances in quantum technologies rely on producing nanometer-scale wires. Although several state-of-the-art nanolithographic technologies and bottom-up synthesis processes have been used to engineer such wires, critical challenges remain in growing uniform atomic-scale crystalline wires and constructing their network structures. Here we discover a simple method to fabricate atomic-scale wires with various arrangements, including stripes, X-, Y-junctions, and nanorings. Single-crystalline atomic-scale wires of a Mott insulator, whose band gap is comparable to those of wide-gap semiconductors, are spontaneously grown on graphite substrates \DEL{and epitaxial monolayer graphene on SiC }by pulsed-laser deposition. These wires are one-unit-cell-thick and have an exact width of two- and four-unit-cells (1.4 and 2.8\,nm) and lengths up to a few μm\mu m. We show that the non-equilibrium reaction-diffusion processes may play an essential role in atomic pattern formation. Our findings offer a new perspective on the non-equilibrium self-organization phenomena on an atomic scale, paving a unique way for the quantum architecture of nano-network.

Keywords

Cite

@article{arxiv.2305.12700,
  title  = {Growth of self-integrated atomic quantum wires and junctions of a Mott semiconductor},
  author = {Tomoya Asaba and Lang Peng and Takahiro Ono and Satoru Akutagawa and Ibuki Tanaka and Hinako Murayama and Shota Suetsugu and Aleksandar Razpopov and Yuichi Kasahara and Takahito Terashima and Yuhki Kohsaka and Takasada Shibauchi and Masatoshi Ichikawa and Roser Valentí and Shin-ichi Sasa and Yuji Matsuda},
  journal= {arXiv preprint arXiv:2305.12700},
  year   = {2023}
}