Skip to main navigation Skip to search Skip to main content

Alkali-Metal Interlocking of 2D V4O10 Sheets Defines Discretized Interlayer Shear Relationships

  • John Ponis
  • , Kenna Ashen
  • , Sarbajeet Chakraborty
  • , George Agbeworvi
  • , Michelle Smeaton
  • , Chengdong Wang
  • , Amanda Jessel
  • , Douglas Fabini
  • , Fanni Juranyi
  • , Diana Quintero-Castro
  • , Nick Shepelin
  • , Dariusz Gawryluk
  • , Katherine Jungjohann
  • , Shruti Hariyani
  • , Xiaofeng Qian
  • , Sarbajit Banerjee
  • Texas A&M University
  • ETH Zurich
  • Paul Scherrer Institute

Research output: Contribution to journalArticlepeer-review

1 Scopus Citations

Abstract

Low-dimensional materials manifest structural anisotropy, quantum confinement, and tightly bound excitonic states, which make them attractive building blocks that can be assembled within three-dimensional laterally stitched heterostructures, stacked van der Waals solids, and complex moire superlattices. Ion intercalation in the galleries between layered materials provides a means of modifying interlayer separation and coupling, but it is also known to drive the shearing of the layers. In this article, we explore the distinct ligand coordination environments afforded by vanadyl oxygens of singular [V4O10] sheets and examine how the size, polarizability, and stoichiometry of Group I cations sandwiched between such layers determine the interlocking of the sheets in stacked structures. Based on the topochemical insertion of alkali-metal ions into the layered ?-V2O5, we identify seven types of guest ion coordination sites discretized into four distinct regimes of interlayer shear in units of half octahedral widths. The coordination preferences of intercalated cations govern how they interlock 2D [V4O10] sheets and engender specific shear conformations. We present evidence that static and dynamic disorder in guest ion arrangement modulate the magnetic structure of the intercalated compounds based on electrostatic polarization, localization of charge and spin density, and lattice distortion. The results illustrate the use of topochemical ion insertion to modulate stacking relationships and magnetic transition characteristics.
Original languageAmerican English
Pages (from-to)8174-8189
Number of pages16
JournalJournal of the American Chemical Society
Volume148
Issue number8
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5K00-99795

Keywords

  • chemical structure
  • ions
  • layered materials
  • mathematical methods
  • two dimensional materials

Fingerprint

Dive into the research topics of 'Alkali-Metal Interlocking of 2D V4O10 Sheets Defines Discretized Interlayer Shear Relationships'. Together they form a unique fingerprint.

Cite this