| Literature DB >> 25732144 |
Bo Wu1, Taishan Wang1, Yongqiang Feng1, Zhuxia Zhang1, Li Jiang1, Chunru Wang1.
Abstract
The endohedral fullerenes lead to well-protected internal species by the fullerene cages, and even highly reactive radicals can be stabilized. However, the manipulation of the magnetic properties of these radicals from outside remains challenging. Here we report a system of a paramagnetic metallofullerene Sc3C2@C80 connected to a nitroxide radical, to achieve the remote control of the magnetic properties of the metallofullerene. The remote nitroxide group serves as a magnetic switch for the electronic spin resonance (ESR) signals of Sc3C2@C80 via spin-spin interactions. Briefly, the nitroxide radical group can 'switch off' the ESR signals of the Sc3C2@C80 moiety. Moreover, the strength of spin-spin interactions between Sc3C2@C80 and the nitroxide group can be manipulated by changing the distance between these two spin centres. In addition, the ESR signals of the Sc3C2@C80 moiety can be switched on at low temperatures through weakened spin-lattice interactions.Entities:
Year: 2015 PMID: 25732144 PMCID: PMC4366484 DOI: 10.1038/ncomms7468
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Figure 1Magnetic switch for the ESR signals of Sc3C2@C80.
(a) The structure of FSc3C2@C80PNOH. (b) The structure of FSc3C2@C80PNO·. (c) The calculated structure and spin density distributions of FSc3C2@C80PNOH. (d) The calculated structure and spin density distributions of FSc3C2@C80PNO·. (e) The ESR spectrum of FSc3C2@C80PNOH at 293 K in toluene. (f) The ESR spectrum of FSc3C2@C80PNO· at 293 K in toluene. The lamps in e and f show the ‘on’ and ‘off’ states of Sc3C2@C80 ESR signals, respectively.
Figure 2Distance-dependent ESR signals of Sc3C2@C80 derivatives.
(a–c) Structures of FSc3C2@C80PNO·, FSc3C2@C80PNO·-2 and FSc3C2@C80PNO·-3. (d–f) ESR signals of FSc3C2@C80PNO·, FSc3C2@C80PNO·-2 and FSc3C2@C80PNO·-3 at 293 K. The lamps in d–f show the strengthened ESR signals of Sc3C2@C80 moiety along with the enlarged distance from nitroxide radical.
Figure 3Temperature-dependent ESR signals of Sc3C2@C80 derivatives.
The ESR spectra of FSc3C2@C80PNO· at variable temperatures in toluene solution. The lamps represent the strengthened ESR signals of Sc3C2@C80 moiety along with the decreased temperatures.
ESR data.
| Temperature (K) | Line width of nitroxide (G) | Line width of Sc3C2@C80 (G) |
|---|---|---|
| 293 | 3.17 | — |
| 253 | 3.08 | 2.63 |
| 233 | 2.47 | 2.37 |
| 213 | 2.35 | 2.13 |
ESR, electronic spin resonance.
The ESR spectra line width of nitroxide and Sc3C2@C80 in FSc3C2@C80PNO· at variable temperatures.