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Synthesis of Ar@C60 using molecular surgery.

Sally Bloodworth1, Gabriela Hoffman1, Mark C Walkey1

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Researchers synthesized argon-filled fullerenes (Ar@C60) using high-pressure filling and photochemical methods. This process achieved over 95% encapsulation, enabling detailed structural analysis of noble gas endohedral fullerenes.

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Area of Science:

  • Fullerene chemistry
  • Noble gas encapsulation
  • Supramolecular chemistry

Background:

  • Endohedral fullerenes, where atoms or molecules are encapsulated within fullerene cages, are of significant interest.
  • Previous methods for encapsulating noble gases like argon within fullerenes have faced challenges in efficiency and yield.
  • Characterization of such endohedral complexes is crucial for understanding their properties and potential applications.

Purpose of the Study:

  • To develop an efficient synthesis route for argon-filled fullerenes (Ar@C60).
  • To achieve high encapsulation yields of argon within the C60 cage.
  • To enable detailed structural characterization of the synthesized Ar@C60 complex.

Main Methods:

  • High-pressure argon gas filling of an open fullerene precursor.
  • Photochemical desulfinylation reaction to close the fullerene cage.
  • Recycling High-Performance Liquid Chromatography (HPLC) for purification and enrichment.
  • Solution 13C Nuclear Magnetic Resonance (NMR) spectroscopy for characterization.

Main Results:

  • Achieved >95% encapsulation of argon within the C60 cage in the initial synthesis step.
  • Quantitative incorporation of argon into the endohedral fullerene product through recycling HPLC.
  • Obtained a mass recovery of tens of milligrams of Ar@C60.
  • Provided the first detailed characterization of the fine structure in the solution 13C NMR spectrum of Ar@C60.

Conclusions:

  • The described method provides an efficient and scalable route for synthesizing Ar@C60.
  • High encapsulation yields and product purity are achievable.
  • The detailed NMR characterization confirms the successful synthesis and provides insights into the electronic environment of the encapsulated argon.