Journal of Inorganic Materials, Volume. 40, Issue 3, 305(2025)
[2] SINGH V, JOUNG D, ZHAI L et al. Graphene based materials: past, present and future[J]. Progress in Materials Science(2011).
[3] NOVOSELOV K S, GEIM A K, MOROZOV S V et al. Electric field effect in atomically thin carbon films[J]. Science(2004).
[4] RAO C N R, SOOD A K, SUBRAHMANYAM K S et al. Graphene: the new two-dimensional nanomaterial[J]. Angewandte Chemie International Edition(2009).
[5] ZHENG Y Q, WANG S Y. Delocalized magnetism in low dimensional graphene system[J]. Acta Physica Sinica(2022).
[6] LI Z, LI S, XU Y et al. Recent advances in magnetism of graphene from 0D to 2D[J]. Chemical Communications(2023).
[7] TUČEK J, BŁOŃSKI P, UGOLOTTI J et al. Emerging chemical strategies for imprinting magnetism in graphene and related 2D materials for spintronic and biomedical applications[J]. Chemical Society Reviews(2018).
[8] WANG W, IMPUNDU J, JIN J et al. Ferromagnetism in sp2 carbon[J]. Nano Research(2023).
[9] GEORGAKILAS V, PERMAN J A, TUCEK J et al. Broad family of carbon nanoallotropes: classification, chemistry, and applications of fullerenes, carbon dots, nanotubes, graphene, nanodiamonds, and combined superstructures[J]. Chemical Reviews(2015).
[10] RAO C N R, MATTE H S S R, SUBRAHMANYAM K S. Synthesis and selected properties of graphene and graphene mimics[J]. Accounts of Chemical Research(2013).
[11] WILSON N R, PANDEY P A, BEANLAND R et al. Graphene oxide: structural analysis and application as a highly transparent support for electron microscopy[J]. ACS Nano(2009).
[12] BELLIER N, BAIPAYWAD P, RYU N et al. Recent biomedical advancements in graphene oxide- and reduced graphene oxide-based nanocomposite nanocarriers[J]. Biomaterials Research(2022).
[13] WANG P, WANG X, TANG Q et al. Functionalized graphene oxide against U251 glioma cells and its molecular mechanism[J]. Materials Science and Engineering: C(2020).
[14] CHOUDHARY P, DAS S K. Bio-reduced graphene oxide as a nanoscale antimicrobial coating for medical devices[J]. ACS Omega(2019).
[15] WANG Y, ZHOU Y, WANG X et al. Cytocompatibility and
[16] BOUKHVALOV D W, KATSNELSON M I. sp-Electron magnetic clusters with a large spin in graphene[J]. ACS Nano(2011).
[17] CHEN J, ZHANG W, SUN Y et al. Creation of localized spins in graphene by ring-opening of epoxy derived hydroxyl[J]. Scientific Reports(2016).
[18] BAGANI K, RAY M K, SATPATI B et al. Contrasting magnetic properties of thermally and chemically reduced graphene oxide[J]. The Journal of Physical Chemistry C(2014).
[19] WANG M, HUANG W, CHAN-PARK M B et al. Magnetism in oxidized graphenes with hydroxyl groups[J]. Nanotechnology(2011).
[20] BOUKHVALOV D W. Modeling of hydrogen and hydroxyl group migration on graphene[J]. Physical Chemistry Chemical Physics(2010).
[21] PRÍAS-BARRAGÁN J J, GONZÁLEZ-HERNÁNDEZ R, HOYOS-ARIZA F A et al. Magnetism in graphene oxide nanoplatelets: the role of hydroxyl and epoxy bridges[J]. Journal of Magnetism and Magnetic Materials(2022).
[22] SINGH S, KUMAR K S, BITLA Y et al. Large low- magnetic- field magnetocapacitance effect and spin accumulation in graphene oxide[J]. IEEE Transactions on Magnetics(2022).
[23] SINHA A, RANJAN P, ALI A et al. Graphene oxide and its derivatives as potential Ovchinnikov ferromagnets[J]. Journal of Physics: Condensed Matter(2021).
[24] IONOV A N, VOLKOV M P, NIKOLAEVA M N et al. Magnetization of ultraviolet-reduced graphene oxide flakes in composites based on polystyrene[J]. Materials(2021).
[25] ENAYATI M, NEMATI A, ZARRABI A et al. The role of oxygen defects in magnetic properties of gamma-irradiated reduced graphene oxide[J]. Journal of Alloys and Compounds(2019).
[26] GUPTA S, NARAYAN J. Non-equilibrium processing of ferromagnetic heavily reduced graphene oxide[J]. Carbon(2019).
[27] QUAN L, QIN F X, LU H T et al. Sequencing dual dopants for an electromagnetic tunable graphene[J]. Chemical Engineering Journal(2021).
[28] TUČEK J, BŁOŃSKI P, SOFER Z et al. Sulfur doping induces strong ferromagnetic ordering in graphene: effect of concentration and substitution mechanism[J]. Advanced Materials(2016).
[29] CHENG H, HU C, ZHAO Y et al. Graphene fiber: a new material platform for unique applications[J]. NPG Asia Materials(2014).
[30] WANG X, GUO M, LIU Y et al. Reduced graphene oxide fibers for guidance growth of trigeminal sensory neurons[J]. ACS Applied Bio Materials(2021).
[31] DONG Z, JIANG C, CHENG H et al. Facile fabrication of light, flexible and multifunctional graphene fibers[J]. Advanced Materials(2012).
[32] WYCHOWANIEC J K, LITOWCZENKO J, TADYSZAK K. Fabricating versatile cell supports from nano- and micro-sized graphene oxide flakes[J]. Journal of the Mechanical Behavior of Biomedical Materials(2020).
[33] GONZÁLEZ-MAYORGA A, LÓPEZ-DOLADO E, GUTIÉRREZ M C et al. Favorable biological responses of neural cells and tissue interacting with graphene oxide microfibers[J]. ACS Omega(2017).
[34] GUO W, ZHANG X, YU X et al. Self-powered electrical stimulation for enhancing neural differentiation of mesenchymal stem cells on graphene-poly(3,4-ethylenedioxythiophene) hybrid microfibers[J]. ACS Nano(2016).
[35] ZHAO Y, LIU Y, LU C et al. Reduced graphene oxide fibers combined with electrical stimulation promote peripheral nerve regeneration[J]. International Journal of Nanomedicine(2024).
[36] SUN Y, XU J, QIAO W et al. Constructing two-, zero-, and one-dimensional integrated nanostructures: an effective strategy for high microwave absorption performance[J]. ACS Applied Materials & Interfaces(2016).
[37] HUMMERS W S, OFFEMAN R E. Preparation of graphitic oxide[J]. Journal of the American Chemical Society(1958).
[38] CHEN H, MÜLLER M B, GILMORE K J et al. Mechanically strong, electrically conductive, and biocompatible graphene paper[J]. Advanced Materials(2008).
[39] WANG C, LI D, TOO C O et al. Electrochemical properties of graphene paper electrodes used in lithium batteries[J]. Chemistry of Materials(2009).
[40] LEE A Y, YANG K, ANH N D et al. Raman study of D* band in graphene oxide and its correlation with reduction[J]. Applied Surface Science(2021).
[41] LÓPEZ-DÍAZ D, HOLGADO M L, GARCÍA-FIERRO J L et al. Evolution of the Raman spectrum with the chemical composition of graphene oxide[J]. The Journal of Physical Chemistry C(2017).
[42] SUDESH, KUMAR N, DAS S et al. Effect of graphene oxide doping on superconducting properties of bulk MgB2[J]. Superconductor Science and Technology(2013).
[43] TANG L A L, LEE W C, SHI H et al. Highly wrinkled cross-linked graphene oxide membranes for biological and charge- storage applications[J]. Small(2012).
[44] ACIK M, LEE G, MATTEVI C et al. The role of oxygen during thermal reduction of graphene oxide studied by infrared absorption spectroscopy[J]. The Journal of Physical Chemistry C(2011).
[45] MAJCHRZYCKI Ł, AUGUSTYNIAK-JABŁOKOW M A, STRZELCZYK R et al. Magnetic centres in functionalized graphene[J]. Acta Physica Polonica A(2015).
[46] OVCHINNIKOV A A, SPECTOR V N. Organic ferromagnetics. New results[J]. Synthetic Metals(1988).
[47] DAI Z, YU X, WANG Y et al. Magnetic carbon fiber/reduced graphene oxide film for electromagnetic microwave absorption[J]. Ceramics International(2023).
[48] SAHA S K, BASKEY M, MAJUMDAR D. Graphene quantum sheets: a new material for spintronic applications[J]. Advanced Materials(2010).
[49] VIANELLI A, CANDINI A, TREOSSI E et al. Observation of different charge transport regimes and large magnetoresistance in graphene oxide layers[J]. Carbon(2015).
[50] WANG S W, LIN H E, LIN H D et al. Transport behavior and negative magnetoresistance in chemically reduced graphene oxide nanofilms[J]. Nanotechnology(2011).
[51] GÓMEZ-NAVARRO C, WEITZ R T, BITTNER A M et al. Electronic transport properties of individual chemically reduced graphene oxide sheets[J]. Nano Letters(2007).
Get Citation
Copy Citation Text
Yue WANG, Xin WANG, Xianli YU.
Category:
Received: Aug. 12, 2024
Accepted: --
Published Online: Apr. 24, 2025
The Author Email: Xin WANG (Wang_xin@jlu.edu.cn), Xianli YU (yuxianli@jlu.edu.cn)