Adding extra C60 cages to one edge of a fullerene nanoribbon is predicted to create unpaired electrons and an antiferromagnetic spin-1/2 chain, according to first-principles calculations.
Symmetry-induced magnetism in fullerene monolayers
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abstract
Using molecular orbital theory, we introduce magnetism in pure-carbon, charge-neutral fullerene monolayers which are otherwise non-magnetic. By controlling either molecular or lattice symmetry, we can realise highly-tuneable magnetic fullerene monolayers. We demonstrate a general design principle based on group theory analysis and explain the origin of magnetism using two representative systems with $S_4$ and $C_3$ molecular symmetries. Moreover, for building blocks that lack appropriate molecular symmetry, we can enforce crystalline symmetry to induce magnetism as well. Finally, we discuss the experimental feasibility of realising our proposed magnetic fullerene monolayers by examining a previously synthesised C$_{60}$ system. Our work opens a new direction in introducing magnetism in non-magnetic building blocks by enforcing either molecular or lattice symmetry.
fields
cond-mat.mtrl-sci 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
citing papers explorer
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Designing Antiferromagnetic Spin-1/2 Chains in Janus Fullerene Nanoribbons
Adding extra C60 cages to one edge of a fullerene nanoribbon is predicted to create unpaired electrons and an antiferromagnetic spin-1/2 chain, according to first-principles calculations.