Abstract
Lanthanide-doped metallofullerenes represent a unique class of single-molecule magnets (SMMs) characterized by their exceptional ability to protect spin systems. Unraveling the impact of interactions between the endohedral units and the carbon cage on the magnetic properties is important for developing high-performance SMMs. Herein, a series of dysprosium carbide cluster fullerenes (Dy-CCFs) with cages ranging from C82 to C96 were isolated, enabling systematic comparison of their magnetic properties. Magnetometry measurements revealed that cage isomerism and dysprosium carbide (Dy2C2) cluster geometry were closely related to the magnetic performance. Dy2C2@C3v(8)-C82 exhibited a broad hysteresis loop and a blocking temperature exceeding 4 K, making it the top-performing molecular magnet among the M2C2-based cluster fullerenes. Dy2C2@C2(157)-C96 showed a peanut-shaped hysteresis loop with two inflections, a feature rarely reported for cluster fullerenes. Magnetic relaxation dynamics analyses revealed that the decay path of Dy2C2@C3v(8)-C82 was best described by an Orbach mechanism, while two Orbach paths existed for Dy2C2@C2(157)-C96. Magneto-structural analyses revealed that the relative position of the pentagon on the fullerene cage, with respect to the magnetic axis connecting the Dy atom and the center of the C2 unit, was crucial for magnetic performance. Our findings demonstrate that the magnetic properties of metallofullerene molecules can be finely tuned through cage engineering.
| Original language | English |
|---|---|
| Pages (from-to) | 2798-2810 |
| Number of pages | 13 |
| Journal | CCS Chemistry |
| Volume | 8 |
| Issue number | 6 |
| DOIs | |
| Publication status | Published - Jan 2026 |
| Externally published | Yes |
Keywords
- cage engineering
- carbon pentagon
- dysprosium
- metallofullerene
- single-molecule magnet
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