Nature Communications (Jan 2025)

Two-dimensional anion-rich NaCl2 crystal under ambient conditions

  • Ruobing Yi,
  • Jie Jiang,
  • Yizhou Yang,
  • Yueyu Zhang,
  • Siyan Gao,
  • Yimin Zhao,
  • Jiahao Hu,
  • Xuchang Su,
  • Xinming Xia,
  • Bingquan Peng,
  • Fangfang Dai,
  • Pei Li,
  • Zhao Guan,
  • Haijun Yang,
  • Fangyuan Zhu,
  • Jiefeng Cao,
  • Zhe Wang,
  • Haiping Fang,
  • Lei Zhang,
  • Liang Chen

DOI
https://doi.org/10.1038/s41467-024-55512-3
Journal volume & issue
Vol. 16, no. 1
pp. 1 – 7

Abstract

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Abstract The two-dimensional (2D) “sandwich” structure composed of a cation plane located between two anion planes, such as anion-rich CrI3, VS2, VSe2, and MnSe2, possesses exotic magnetic and electronic structural properties and is expected to be a typical base for next-generation microelectronic, magnetic, and spintronic devices. However, only a few 2D anion-rich “sandwich” materials have been experimentally discovered and fabricated, as they are vastly limited by their conventional stoichiometric ratios and structural stability under ambient conditions. Here, we report a 2D anion-rich NaCl2 crystal with sandwiched structure confined within graphene oxide membranes with positive surface potential. This 2D crystal has an unconventional stoichiometry, with Na:Cl ratio of approximately 1:2, resulting in a molybdenite-2H-like structure with cations positioned in the middle and anions in the outer layer. The 2D NaCl2 crystals exhibit room-temperature ferromagnetism with clear hysteresis loops and transition temperature above 320 K. Theoretical calculations and X-ray magnetic circular dichroism (XMCD) spectra reveal the ferromagnetism originating from the spin polarization of electrons in the Cl elements of these crystals. Our research presents a simple and general approach to fabricating advanced 2D unconventional stoichiometric materials that exhibit half-metal and ferromagnetism for applications in electronics, magnetism, and spintronics.