4.6 Article

Synthesis and Magnetic Properties of Carbon Doped and Reduced SrTiO3 Nanoparticles

期刊

CRYSTALS
卷 12, 期 9, 页码 -

出版社

MDPI
DOI: 10.3390/cryst12091275

关键词

nanoparticles; strontium titanate; p-impurities and oxygen vacancies; magnetism

资金

  1. Czech Science Foundation [20-21864S]
  2. Czech Research Infrastructures [LM2018096]
  3. MEYS CR [LM2018110]
  4. European Structural and Investment Funds
  5. Czech Ministry of Education and Youth and Sports Project [SOLID21 CZ.02.1.01/0.0/0.0/16_019/0000760]

向作者/读者索取更多资源

This study reports the synthesis, structural, and magnetic properties of undoped, carbon-doped, and reduced SrTiO3 nanoparticles. The results suggest that both oxygen vacancies and carbon doping contribute to the magnetization, and surface-related defects and oxygen deficiency are crucial for the emergence of magnetism.
We report on the studies of the synthesis, structural, and magnetic properties of undoped SrTiO3 (STO), carbon-doped STO:C, and reduced STO STO:R nanoparticles. Fine (similar to 20-30 nm) and coarse (similar to 100 nm) nanoparticles with a single phase of cubic perovskite-type structure were sintered by thermal decomposition of SrTiO(C2O4)(2). Magnetization loops of fine STO:C and STO:R nanoparticles at low temperatures and an almost linear decrease in magnetization with temperature indicate the realization of a soft, ferromagnetic state in them, with a pronounced disorder effect characteristic of doped dilute magnetic semiconductors. Oxidation and particle size increase suppress the magnetic manifestations, demonstrating the importance of surface-related defects and oxygen deficiency in the emergence of magnetism. It was found that oxygen vacancies and doping with carbon make similar contributions to the magnetization, while complementary electron paramagnetic resonance, together with magnetization measurement studies, show that the most probable state of oxygen vacancies, which determine the appearance of magnetic properties, are charged F+ oxygen vacancies and C-impurity centers, which tend to segregate on the surface of nanoparticles.

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