Literature DB >> 30089919

Engineering of robust topological quantum phases in graphene nanoribbons.

Oliver Gröning1, Shiyong Wang2,3, Xuelin Yao4, Carlo A Pignedoli2, Gabriela Borin Barin2, Colin Daniels5, Andrew Cupo5, Vincent Meunier5, Xinliang Feng6, Akimitsu Narita4, Klaus Müllen4, Pascal Ruffieux2, Roman Fasel2,7.   

Abstract

Boundaries between distinct topological phases of matter support robust, yet exotic quantum states such as spin-momentum locked transport channels or Majorana fermions1-3. The idea of using such states in spintronic devices or as qubits in quantum information technology is a strong driver of current research in condensed matter physics4-6. The topological properties of quantum states have helped to explain the conductivity of doped trans-polyacetylene in terms of dispersionless soliton states7-9. In their seminal paper, Su, Schrieffer and Heeger (SSH) described these exotic quantum states using a one-dimensional tight-binding model10,11. Because the SSH model describes chiral topological insulators, charge fractionalization and spin-charge separation in one dimension, numerous efforts have been made to realize the SSH Hamiltonian in cold-atom, photonic and acoustic experimental configurations12-14. It is, however, desirable to rationally engineer topological electronic phases into stable and processable materials to exploit the corresponding quantum states. Here we present a flexible strategy based on atomically precise graphene nanoribbons to design robust nanomaterials exhibiting the valence electronic structures described by the SSH Hamiltonian15-17. We demonstrate the controlled periodic coupling of topological boundary states18 at junctions of graphene nanoribbons with armchair edges to create quasi-one-dimensional trivial and non-trivial electronic quantum phases. This strategy has the potential to tune the bandwidth of the topological electronic bands close to the energy scale of proximity-induced spin-orbit coupling19 or superconductivity20, and may allow the realization of Kitaev-like Hamiltonians3 and Majorana-type end states21.

Entities:  

Year:  2018        PMID: 30089919     DOI: 10.1038/s41586-018-0375-9

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  25 in total

Review 1.  Covalent on-surface polymerization.

Authors:  Leonhard Grill; Stefan Hecht
Journal:  Nat Chem       Date:  2020-01-29       Impact factor: 24.427

2.  Controlling a Chemical Coupling Reaction on a Surface: Tools and Strategies for On-Surface Synthesis.

Authors:  Sylvain Clair; Dimas G de Oteyza
Journal:  Chem Rev       Date:  2019-03-15       Impact factor: 60.622

3.  Circumventing the stability problems of graphene nanoribbon zigzag edges.

Authors:  James Lawrence; Alejandro Berdonces-Layunta; Shayan Edalatmanesh; Jesús Castro-Esteban; Tao Wang; Alejandro Jimenez-Martin; Bruno de la Torre; Rodrigo Castrillo-Bodero; Paula Angulo-Portugal; Mohammed S G Mohammed; Adam Matěj; Manuel Vilas-Varela; Frederik Schiller; Martina Corso; Pavel Jelinek; Diego Peña; Dimas G de Oteyza
Journal:  Nat Chem       Date:  2022-09-26       Impact factor: 24.274

Review 4.  Nanographenes and Graphene Nanoribbons as Multitalents of Present and Future Materials Science.

Authors:  Yanwei Gu; Zijie Qiu; Klaus Müllen
Journal:  J Am Chem Soc       Date:  2022-06-07       Impact factor: 16.383

5.  On-surface Synthesis of a Chiral Graphene Nanoribbon with Mixed Edge Structure.

Authors:  Ashok Keerthi; Carlos Sánchez-Sánchez; Okan Deniz; Pascal Ruffieux; Dieter Schollmeyer; Xinliang Feng; Akimitsu Narita; Roman Fasel; Klaus Müllen
Journal:  Chem Asian J       Date:  2020-10-12

Review 6.  Atomically precise graphene nanoribbons: interplay of structural and electronic properties.

Authors:  R S Koen Houtsma; Joris de la Rie; Meike Stöhr
Journal:  Chem Soc Rev       Date:  2021-06-08       Impact factor: 54.564

7.  Charge transport mechanism in networks of armchair graphene nanoribbons.

Authors:  Nils Richter; Zongping Chen; Alexander Tries; Thorsten Prechtl; Akimitsu Narita; Klaus Müllen; Kamal Asadi; Mischa Bonn; Mathias Kläui
Journal:  Sci Rep       Date:  2020-02-06       Impact factor: 4.379

8.  Understanding Topological Insulators in Real Space.

Authors:  Angel Martín Pendás; Francisco Muñoz; Carlos Cardenas; Julia Contreras-García
Journal:  Molecules       Date:  2021-05-17       Impact factor: 4.411

9.  Ballistic tracks in graphene nanoribbons.

Authors:  Johannes Aprojanz; Stephen R Power; Pantelis Bampoulis; Stephan Roche; Antti-Pekka Jauho; Harold J W Zandvliet; Alexei A Zakharov; Christoph Tegenkamp
Journal:  Nat Commun       Date:  2018-10-24       Impact factor: 14.919

10.  Controlled Quantum Dot Formation in Atomically Engineered Graphene Nanoribbon Field-Effect Transistors.

Authors:  Maria El Abbassi; Mickael L Perrin; Gabriela Borin Barin; Sara Sangtarash; Jan Overbeck; Oliver Braun; Colin J Lambert; Qiang Sun; Thorsten Prechtl; Akimitsu Narita; Klaus Müllen; Pascal Ruffieux; Hatef Sadeghi; Roman Fasel; Michel Calame
Journal:  ACS Nano       Date:  2020-04-06       Impact factor: 15.881

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