Compact localized boundary states in a quasi-1D electronic diamond-necklace chain

Publication date

2023-02-28

Authors

Kempkes, S. N.ISNI 0000000523925097
Capiod, P.ISNI 0000000448738741
Ismaili, S.
Mulkens, J.
Eek, LumenORCID 0009-0009-1233-4378ISNI 0000000512526728
Swart, IngmarORCID 0000-0003-3201-7301ISNI 0000000390199991
de Morais Smith, CristianeISNI 0000000394433837

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Article
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cc_by

Abstract

Zero-energy modes localized at the ends of one-dimensional (1D) wires hold great potential as qubits for fault-tolerant quantum computing. However, all the candidates known to date exhibit a wave function that decays exponentially into the bulk and hybridizes with other nearby zero-modes, thus hampering their use for braiding operations. Here, we show that a quasi-1D diamond-necklace chain exhibits an unforeseen type of robust boundary state, namely compact localized zero-energy modes that do not decay into the bulk. We find that this state emerges due to the presence of a latent symmetry in the system. We experimentally realize the diamond-necklace chain in an electronic quantum simulator setup.

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Citation

Kempkes, S N, Capiod, P, Ismaili, S, Mulkens, J, Eek, L, Swart, I & Morais Smith, C 2023, 'Compact localized boundary states in a quasi-1D electronic diamond-necklace chain', Quantum Frontiers, vol. 2, no. 1. https://doi.org/10.1007/s44214-023-00026-0