Magnetism in carbon-based fiber materials

被引:2
|
作者
Ranade, Varun [1 ]
Gautam, Sanjeev [1 ]
Chae, Keun Hwa [2 ]
机构
[1] Panjab Univ, Dr SSB Univ Inst Chem Engn & Technol, Adv Funct Mat Lab, Chandigarh 160014, India
[2] Korea Inst Sci & Technol, Adv Anal & Data Ctr, Seoul 02792, South Korea
关键词
Carbon-based magnets; Magnetic polymers; FERROMAGNETIC EXCHANGE; TEMPERATURE; GRAPHENE; SILK; NANOCELLULOSE; NANOPARTICLES; PERFORMANCE; NANOTUBES; FULLERENE;
D O I
10.1016/j.jmmm.2023.171210
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Metal-free ferromagnetic materials have gained significant attention as an appealing alternative to traditional inorganic magnets due to their biocompatibility, biodegradability, low production cost, flexibility, solubility in organic solvents, and electrical insulation properties. These features make them highly desirable for biomedical and spintronic applications. The origin of magnetism in these materials is linked to the presence of unpaired electrons, defects, or functional groups that induce local magnetic moments. However, achieving ferromagnetic interaction among persistent carbon radicals within a molecule has been a challenging endeavor. Various strategies have been explored to induce ferromagnetism in carbon-based materials, including defect induction, steric hindrance, and doping with trivalent or pentavalent species like Boron (B) and Nitrogen (N). These approaches have successfully led to the development of organic magnets in different dimensions, ranging from 0D to 3D.Recent advancements in synthesizing organic magnets exhibiting ferromagnetism above room temperature have reignited interest among physicists and chemists in the realm of organic spintronic materials. Furthermore, the integration of magnetic nanoparticles into carbon nanotubes has been a prominent research focus. Understanding the underlying mechanisms of magnetism in carbon-based polymers, such as graphene, carbon nanotubes, and fullerenes, has been the subject of extensive studies over the past few decades. This article presents a critical review of recent research on carbon-based magnetic polymers, including their limitations and applications. The emergence of magnetism in carbon-based 2D materials holds immense potential for spintronics and high-density data storage applications, contributing to the advancement of quantum computing and empowering artificial intelligence.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Carbon-based optical limiting materials
    Yan Wang
    Mingzhe Lv
    Jin Guo
    Tingfeng Wang
    Junfeng Shao
    Dong Wang
    YingWei Yang
    Science China(Chemistry), 2015, (12) : 1782 - 1791
  • [32] Thermal properties of carbon-based materials
    Watkins, Evan
    Parekh, Mihir
    Bhattacharya, Sriparna
    Rao, Rahul
    Rao, Apparao M.
    MATERIALS CHEMISTRY AND PHYSICS, 2024, 322
  • [33] Carbon-Based Composite Absorbing Materials
    Lu, Shuiqing
    Liu, Yichang
    Xie, Zhipeng
    Zhang, Da
    Yang, Bin
    Liang, Feng
    PROGRESS IN CHEMISTRY, 2024, 36 (04) : 556 - 574
  • [34] A study on the cytotoxicity of carbon-based materials
    Saha, Dipendu
    Heldt, Caryn L.
    Gencoglu, Maria F.
    Vijayaragavan, K. Saagar
    Chen, Jihua
    Saksule, Ashish
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2016, 68 : 101 - 108
  • [35] Nanoscale Raman characterization of carbon-based materials
    Krayev, Andrey
    Bashkirov, Sergey
    Evplov, Dmitry
    Gavrilyuk, Vasily
    Zhizhimontov, Vladimir
    Chaigneau, Marc
    Saunin, Sergey
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 251
  • [36] Hydrogen storage in carbon-based nanostructured materials
    Biris, A. R.
    Lupu, D.
    Dervishi, E.
    Li, Z.
    Saini, V.
    Saini, D.
    Trigwell, S.
    Mazumder, M. K.
    Sharma, R.
    Biris, A. S.
    PARTICULATE SCIENCE AND TECHNOLOGY, 2008, 26 (04) : 297 - 305
  • [37] Radiation effects in graphite and carbon-based materials
    Burchell, TD
    MRS BULLETIN, 1997, 22 (04) : 29 - 35
  • [38] Irradiation behavior of carbon-based composite materials
    Virgilev, YS
    Ponomarev, OV
    Ponomareva, EV
    INORGANIC MATERIALS, 1996, 32 (09) : 971 - 979
  • [39] Special issue on carbon-based materials - Preface
    Prassides, K
    NEW DIAMOND AND FRONTIER CARBON TECHNOLOGY, 2002, 12 (05):
  • [40] Carbon-based Electrode Materials for DNA Electroanalysis
    Dai Kato
    Osamu Niwa
    Analytical Sciences, 2013, 29 : 385 - 392