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Cross-Linking and Charging Molecular Magnetoelectronics

  • Yulong Huang
  • , Yuxuan Chen
  • , Yong Hu
  • , Travis Mitchell
  • , Lu An
  • , Zheng Li
  • , Jason Benedict
  • , Huashan Li
  • , Shenqiang Ren
  • SUNY Buffalo
  • Sun Yat-Sen University

Research output: Contribution to journalArticlepeer-review

5 Scopus citations

Abstract

Magnetoelectrics are witnessing an ever-growing success toward the voltage-controlled magnetism derived from inorganic materials. However, these inorganic materials have predominantly focused on the ferroelectromagnetism at solid-to-solid interfaces and suffered several drawbacks, including the interface-sensitive coupling mediators, high-power electric field, and limited chemical tunability. Here, we report a promising design strategy to shift the paradigm of next-generation molecular magnetoelectrics, which relies on the integration between molecular magnetism and electric conductivity though an in situ cross-linking strategy. Following this approach, we demonstrate a versatile and efficient synthesis of flexible molecular-based magnetoelectronics by cross-linking of magnetic coordination networks that incorporate conducting chain building blocks. The as-grown compounds feature an improved critical temperature up to 337 K and a room-temperature magnetism control of low-power electric field. It is envisaged that the cross-linking of molecular interfaces is a feasible method to couple and modulate magnetism and electron conducting systems.

Original languageEnglish
Pages (from-to)4099-4105
Number of pages7
JournalNano Letters
Volume21
Issue number9
DOIs
StatePublished - May 12 2021

Keywords

  • Voltage-controlled magnetism
  • cross-linking
  • magnetoelectronic coupling
  • molecular materials

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