Cyclophane-based shielding strategy for singly dispersed graphene nanoribbons

Publikation: Beitrag in FachzeitschriftForschungsartikelBeigetragenBegutachtung

Beitragende

  • Jin Jiang Zhang - , Center for Advancing Electronics Dresden (cfaed), Professur für Molekulare Funktionsmaterialien (cfaed), Max Planck Institute of Micostructure Physics, Xi'an Jiaotong University (Autor:in)
  • Jian Zhang - , National Center for Nanoscience and Technology (Autor:in)
  • Guanzhao Wen - , Max-Planck-Institut für Polymerforschung (Autor:in)
  • Silvio Osella - , Universität Warschau (Autor:in)
  • Zhenlin Qiu - , Technische Universität Dresden (Autor:in)
  • Steffen Böckmann - , Westfälische Wilhelms-Universität Münster (Autor:in)
  • Xu Wang - , Sichuan University (Autor:in)
  • Britta Maib - , Friedrich-Alexander-Universität Erlangen-Nürnberg (Autor:in)
  • Yubin Fu - , Max Planck Institute of Micostructure Physics (Autor:in)
  • Xiuling Yu - , Technische Universität Dresden (Autor:in)
  • Michael Ryan Hansen - , Westfälische Wilhelms-Universität Münster (Autor:in)
  • Janina Maultzsch - , Friedrich-Alexander-Universität Erlangen-Nürnberg (Autor:in)
  • Michel Calame - , Swiss Federal Laboratories for Materials Science and Technology (Empa), Universität Basel (Autor:in)
  • Mickael L. Perrin - , Swiss Federal Laboratories for Materials Science and Technology (Empa), ETH Zürich (Autor:in)
  • Hai I. Wang - , Max-Planck-Institut für Polymerforschung, Utrecht University (Autor:in)
  • Mischa Bonn - , Max-Planck-Institut für Polymerforschung (Autor:in)
  • Ji Ma - , CAS - Institute of Chemistry, University of Chinese Academy of Sciences (UCAS) (Autor:in)
  • Klaus Müllen - , Max-Planck-Institut für Polymerforschung (Autor:in)
  • Xinliang Feng - , Professur für Molekulare Funktionsmaterialien (gB MPI-MSP), Center for Advancing Electronics Dresden (cfaed), Max Planck Institute of Micostructure Physics (Autor:in)

Abstract

Structurally precise graphene nanoribbons (GNRs) hold great promise for nanoelectronic devices owing to their tunable bandgaps and unique electronic properties. However, their practical integration into single-ribbon devices remains impeded by strong inter-ribbon aggregation. Here we introduce a cyclophane-based shielding strategy that not only sterically protects the GNR backbone but also imparts internal strain, enabling singly dispersed GNRs while simultaneously modulating their optoelectronic properties, as demonstrated by the synthesis and investigation of three cyclophane-shielded GNRs 1a–c and model nanographenes with varying cyclic chain lengths. Terahertz spectroscopy reveals a marked increase in short-range charge carrier mobility—from 190 to 330 cm2V−1s−1 —as the chain length shortens, attributed to both reduced effective mass and increased scattering time. The resulting singly dispersed cyclophane-shielded GNRs enable the fabrication of single-electron transistors showing a clear Coulomb blockade behaviour at low temperatures. This work provides a generalizable strategy for engineering solution-processable GNRs compatible with quantum device applications. (Figure presented.)

Details

OriginalspracheEnglisch
FachzeitschriftNature chemistry
PublikationsstatusElektronische Veröffentlichung vor Drucklegung - Juni 2026
Peer-Review-StatusJa