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A Permanently Porous Chalcogen-Bonded Organic Framework

  • Brian Eckstein
  • , Hannah Martin
  • , Michael Moghadasnia
  • , Arijit Halder
  • , Parker Brodale
  • , Pierre Le Magueres
  • , Patrick Butler
  • , Katherine Forrest
  • , Logan Ritter
  • , Ryan Klein
  • , Hyun Moon
  • , Cheng Li
  • , Scott Massimi
  • , Yongqiang Cheng
  • , Christopher Hendon
  • , Graeme Day
  • , Brian Space
  • , Craig Brown
  • , C. Michael McGuirk
  • Colorado School of Mines
  • University of Oregon
  • Rigaku Corporation
  • University of Southampton
  • North Carolina State University
  • United States Department of Commerce
  • University of Delaware
  • Oak Ridge National Laboratory

Research output: Contribution to journalArticlepeer-review

1 Scopus Citations

Abstract

The nature of connectivity between constituent atomic or molecular building blocks is fundamental in shaping the properties and functionality of materials. The extrapolation of emergent interatomic interactions to enable functional materials has driven transformative technological advancements. However, the bonding interactions used in material design have been largely static since the emergence of dynamic covalent chemistry ~30 years ago. Here we demonstrate that non-covalent chalcogen bonding (Ch-bonding) is a distinct mode of interatomic connectivity for constructing functional materials by design. This is established by leveraging self-complementary assembly of 1,2,5-telluradiazole moieties to construct a honeycomb-type permanently porous Ch-bonded organic framework, assembled and stabilized solely through non-covalent Te...N contacts. Empirical and computational studies of electronic structure, structural healing and lattice dynamics highlight the pi-type electronic communication, controlled assembly and modulated lattice dynamics in Trip3Tez-I arising directly from the unique nature of the Te...N Ch-bonding that holds substantial implications for next generation crystalline semiconductors. In addition to introducing a distinct class of permanently porous frameworks, this work establishes Ch-bonding as a programmable molecular tool for constructing functional materials with distinct properties.
Original languageAmerican English
Number of pages22
JournalNature Synthesis
DOIs
StatePublished - 2026

NLR Publication Number

  • NLR/JA-5900-100906

Keywords

  • Ch-bonding
  • non-covalent chalcogen bonding
  • permanently porous frameworks

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