Robust zero-energy modes in an electronic higher-order topological insulator

Publication date

2019-09-23

Authors

Kempkes, S. N.ISNI 0000000523925097
Slot, M. R.ISNI 0000000507443178
Van Den Broeke, J. J.ISNI 0000000492796404
Capiod, P.ISNI 0000000448738741
Benalcazar, W. A.
Vanmaekelbergh, D.ISNI 0000000394482321
Bercioux, D.
Swart, IngmarORCID 0000-0003-3201-7301ISNI 0000000390199991
Morais Smith, C.ISNI 0000000394433837

Editors

Advisors

Supervisors

Document Type

Letter
Open Access logo

License

taverne

Abstract

Quantum simulators are essential tools for understanding complex quantum materials. Platforms based on ultracold atoms in optical lattices and photonic devices have led the field so far, but the basis for electronic quantum simulators is now being developed. Here, we experimentally realize an electronic higher-order topological insulator (HOTI). We create a breathing kagome lattice by manipulating carbon monoxide molecules on a Cu(111) surface using a scanning tunnelling microscope. We engineer alternating weak and strong bonds to show that a topological state emerges at the corner of the non-trivial configuration, but is absent in the trivial one. Different from conventional topological insulators, the topological state has two dimensions less than the bulk, denoting a HOTI. The corner mode is protected by a generalized chiral symmetry, which leads to a particular robustness against perturbations. Our versatile approach to designing artificial lattices holds promise for revealing unexpected quantum phases of matter.

Keywords

Taverne, General Chemistry, General Materials Science, Condensed Matter Physics, Mechanics of Materials, Mechanical Engineering

Citation

Kempkes, S N, Slot, M R, van den Broeke, J J, Capiod, P, Benalcazar, W A, Vanmaekelbergh, D, Bercioux, D, Swart, I & Morais Smith, C 2019, 'Robust zero-energy modes in an electronic higher-order topological insulator', Nature Materials, vol. 18, no. 12, pp. 1292-1297. https://doi.org/10.1038/s41563-019-0483-4