Spin excitations in nanographene-based antiferromagnetic spin-1/2 Heisenberg chains.
Options
BORIS DOI
Date of Publication
May 2025
Publication Type
Article
Division/Institute
Contributor
Zhao, Chenxiao | |
Yang, Lin | |
Henriques, João C G | |
Ferri-Cortés, Mar | |
Catarina, Gonçalo | |
Pignedoli, Carlo A | |
Ruffieux, Pascal | |
Fernández-Rossier, Joaquín |
Subject(s)
Series
Nature Materials
ISSN or ISBN (if monograph)
1476-4660
1476-1122
Publisher
Nature Research
Language
English
Publisher DOI
PubMed ID
40087538
Description
Antiferromagnetic Heisenberg chains exhibit two distinct types of excitation spectrum: gapped for integer-spin chains and gapless for half-integer-spin chains. However, in finite-length half-integer-spin chains, quantization induces a gap, requiring precise control over sufficiently long chains to study its evolution. Here we create length-controlled spin-1/2 Heisenberg chains by covalently linking Olympicenes-Olympic-ring-shaped magnetic nanographenes. With large exchange interactions, tunable lengths and negligible magnetic anisotropy, this system is ideal for investigating length-dependent spin excitations, probed via inelastic electron tunnelling spectroscopy. We observe a power-law decay of the lowest excitation energy with length L, following a 1/L dependence in the large-L regime, consistent with theory. For L = 50, a V-shaped excitation continuum confirms a gapless behaviour in the thermodynamic limit. Additionally, low-bias current maps reveal the standing wave of a single spinon in odd-numbered chains. Our findings provide evidence for the realization of a one-dimensional analogue of a gapless spin liquid within an artificial graphene lattice.
File(s)
File | File Type | Format | Size | License | Publisher/Copright statement | Content | |
---|---|---|---|---|---|---|---|
s41563-025-02166-1.pdf | text | Adobe PDF | 2.22 MB | Attribution (CC BY 4.0) | published |