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  5. Faculty of Physics: Research Data
  6. Theoretical Data: Growth of self-integrated atomic quantum wires and junctions of a Mott semiconductor
 
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Title(s)
TitleLanguage
Theoretical Data: Growth of self-integrated atomic quantum wires and junctions of a Mott semiconductor
en
 
Author(s)
NameORCIDGNDAffiliation
Razpopov, Aleksandar orcid-logo
0009-0009-6935-3297
Theoretical Physics 
 
Project(s)
TRR 288: Elastic Tuning and Response of Electronic Quantum Phases of Matter 
 
Faculty
13 Physics
 
Date Issued
08 January 2024
 
Publisher(s)
Goethe-Universität Frankfurt
 
Handle
https://gude.uni-frankfurt.de/handle/gude/327
 
DOI
10.25716/gude.06tp-x7pd
 

Type(s) of data
Dataset
 
Language(s)
en
 
Abstract(s)
AbstractLanguage
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 these 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-junctions, Y-junctions, and nanorings. Single-crystalline atomic-scale wires of a Mott insulator, whose bandgap is comparable to those of wide-gap semiconductors, are spontaneously grown on graphite substrates 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 micrometers. We show that the nonequilibrium reaction-diffusion processes may play an essential role in atomic pattern formation. Our findings offer a previously unknown perspective on the nonequilibrium self-organization phenomena on an atomic scale, paving a unique way for the quantum architecture of nano-network.
en
 
Description(s)
DescriptionLanguage
This research data includes the DFT (density functional theory) files obtained by FPLO and VASP: detailed README file is included.
en
 

Related Resource(s)
Type of identifierIdentifierType of publicationType of relation
DOI
10.1126/sciadv.abq5561
JournalArticle
IsSupplementTo
 

License
Creative Commons Attribution 4.0 International (CC BY 4.0) cclicense-logocclicense-logo
 

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31
Acquisition Date
Jun 3, 2025
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Downloads
5
Acquisition Date
Jun 3, 2025
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