Hexagonal Hybrid Bismuthene by Molecular Interface Engineering

  • Christian Dolle
  • , Víctor Oestreicher
  • , Alberto M. Ruiz
  • , Malte Kohring
  • , Francisco Garnes-Portolés
  • , Mingjian Wu
  • , Gabriel Sánchez-Santolino
  • , Alvaro Seijas-Da Silva
  • , Marta Alcaraz
  • , Yolita M. Eggeler
  • , Erdmann Spiecker
  • , Josep Canet-Ferrer
  • , Antonio Leyva-Pérez
  • , Heiko B. Weber
  • , María Varela
  • , José J. Baldoví
  • , Gonzalo Abellán*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

12 Citations (Scopus)

Abstract

High-quality devices based on layered heterostructures are typically built from materials obtained by complex solid-state physical approaches or laborious mechanical exfoliation and transfer. Meanwhile, wet-chemically synthesized materials commonly suffer from surface residuals and intrinsic defects. Here, we synthesize using an unprecedented colloidal photocatalyzed, one-pot redox reaction a few-layers bismuth hybrid of “electronic grade” structural quality. Intriguingly, the material presents a sulfur-alkyl-functionalized reconstructed surface that prevents it from oxidation and leads to a tuned electronic structure that results from the altered arrangement of the surface. The metallic behavior of the hybrid is supported by ab initio predictions and room temperature transport measurements of individual nanoflakes. Our findings indicate how surface reconstructions in two-dimensional (2D) systems can promote unexpected properties that can pave the way to new functionalities and devices. Moreover, this scalable synthetic process opens new avenues for applications in plasmonics or electronic (and spintronic) device fabrication. Beyond electronics, this 2D hybrid material may be of interest in organic catalysis, biomedicine, or energy storage and conversion.

Original languageEnglish
Pages (from-to)12487-12498
Number of pages12
JournalJournal of the American Chemical Society
Volume145
Issue number23
DOIs
Publication statusPublished - 14 Jun 2023
Externally publishedYes

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