• Journal of Radiation Research and Radiation Processing
  • Vol. 42, Issue 6, 060204 (2024)
Hanqin WENG1,2,3,*, Baoying ZHANG2, Xuan WANG1, Xin XIAO1..., Shinichi YAMASHITA3, Mozhen WANG2 and Xuewu GE2|Show fewer author(s)
Author Affiliations
  • 1Sino-French Institute of Nuclear Engineering and Technology,Sun Yat-sen University,Zhuhai 519082,China
  • 2Key Laboratory of Precision and Intelligent Chemistry,Department of Polymer Science and Engineering,University of Science and Technology of China,Hefei 230026,China
  • 3Nuclear Professional School,School of Engineering,The University of Tokyo,2-22 Shirakata-shirane,Tokai-mura,Naka-gun,Ibaraki 319-1188,Japan
  • show less
    DOI: 10.11889/j.1000-3436.2024-0101 Cite this Article
    Hanqin WENG, Baoying ZHANG, Xuan WANG, Xin XIAO, Shinichi YAMASHITA, Mozhen WANG, Xuewu GE. Dual-responsive reduced graphene oxides prepared by radiation-initiated living radical grafting polymerization[J]. Journal of Radiation Research and Radiation Processing, 2024, 42(6): 060204 Copy Citation Text show less
    References

    [1] J T Robinson, S M Tabakman, Y Y Liang et al. Ultrasmall reduced graphene oxide with high near-infrared absorbance for photothermal therapy. Journal of the American Chemical Society, 133, 6825-6831(2011).

    [2] S H Hu, Y W Chen, W T Hung et al. Quantum-dot-tagged reduced graphene oxide nanocomposites for bright fluorescence bioimaging and photothermal therapy monitored in situ. Advanced Materials, 24, 1748-1754(2012).

    [3] M M Yan, Y J Liu, X H Zhu et al. Nanoscale reduced graphene oxide-mediated photothermal therapy together with IDO inhibition and PD-L1 blockade synergistically promote antitumor immunity. ACS Applied Materials & Interfaces, 11, 1876-1885(2019).

    [4] Y W Yang, J Zan, Y Shuai et al. In situ growth of a metal―organic framework on graphene oxide for the chemo-photothermal therapy of bacterial infection in bone repair. ACS Applied Materials & Interfaces, 14, 21996-22005(2022).

    [5] W Zhang, Z Y Guo, D Q Huang et al. Synergistic effect of chemo-photothermal therapy using PEGylated graphene oxide. Biomaterials, 32, 8555-8561(2011).

    [6] I K Moon, J Lee, R S Ruoff et al. Reduced graphene oxide by chemical graphitization. Nature Communications, 1, 73(2010).

    [7] S Stankovich, D A Dikin, R D Piner et al. Synthesis of graphene-based nanosheets via chemical reduction of exfoliated graphite oxide. Carbon, 45, 1558-1565(2007).

    [8] Y S Ye, Y N Chen, J S Wang et al. Versatile grafting approaches to functionalizing individually dispersed graphene nanosheets using RAFT polymerization and click chemistry. Chemistry of Materials, 24, 2987-2997(2012).

    [9] P P Zhang, K Jiang, C N Ye et al. Facile synthesis of V-shaped copolymer brushes grafted onto the surface of graphene oxide via coupling reactions. Chemical Communications, 47, 9504-9506(2011).

    [10] B Zhang, Y Chen, X D Zhuang et al. Poly(N-vinylcarbazole) chemically modified graphene oxide. Journal of Polymer Science Part A: Polymer Chemistry, 48, 2642-2649(2010).

    [11] K Jiang, C N Ye, P P Zhang et al. One-pot controlled synthesis of homopolymers and diblock copolymers grafted graphene oxide using couplable RAFT agents. Macromolecules, 45, 1346-1355(2012).

    [12] J Q Liu, W R Yang, L Tao et al. Thermosensitive graphene nanocomposites formed using pyrene-terminal polymers made by RAFT polymerization. Journal of Polymer Science Part A: Polymer Chemistry, 48, 425-433(2010).

    [13] J Q Liu, L Tao, W R Yang et al. Synthesis,characterization,and multilayer assembly of pH sensitive graphene-polymer nanocomposites. Langmuir, 26, 10068-10075(2010).

    [14] L Cui, J Q Liu, R Wang et al. A facile“graft from”method to prepare molecular-level dispersed graphene–polymer composites. Journal of Polymer Science Part A: Polymer Chemistry, 50, 4423-4432(2012).

    [15] B Zhang, Y Chen, L Q Xu et al. Growing poly(N-vinylcarbazole) from the surface of graphene oxide via RAFT polymerization. Journal of Polymer Science Part A: Polymer Chemistry, 49, 2043-2050(2011).

    [16] H M Etmimi, M P Tonge, R D Sanderson. Synthesis and characterization of polystyrene-graphite nanocomposites via surface RAFT-mediated miniemulsion polymerization. Journal of Polymer Science Part A: Polymer Chemistry, 49, 1621-1632(2011).

    [17] Ying LI, Rui LEI, Wenkai XU et al. Preparation and properties of magnetic oxidized graphene 17β-estradiol molecularly imprinted composite membrane. Journal of Materials Engineering, 49, 170-177(2021).

    [18] A Badri, M R Whittaker, P B Zetterlund. Modification of graphene/graphene oxide with polymer brushes using controlled/living radical polymerization. Journal of Polymer Science Part A: Polymer Chemistry, 50, 2981-2992(2012).

    [19] N A Shaibie, N A Ramli, N D F Mohammad Faizal et al. Poly(N-isopropylacrylamide)-based polymers: recent overview for the development of temperature-responsive drug delivery and biomedical applications. Macromolecular Chemistry and Physics, 224, 2300157(2023).

    [20] G Chen, Y Wang, H Q Weng et al. Selective separation of Pd(II) on pyridine-functionalized graphene oxide prepared by radiation-induced simultaneous grafting polymerization and reduction. ACS Applied Materials & Interfaces, 11, 24560-24570(2019).

    [21] Chi ZHAO, Hanqin WENG, Mozhen WANG et al. Pyridine-modified fibrous mesoporous silica microspheres prepared through radiation-induced grafting polymerization and their adsorption property to U(Ⅵ). Journal of Radiation Research and Radiation Processing, 35, 050301(2017).

    [22] J T Lai, D Filla, R Shea. Functional polymers from novel carboxyl-terminated trithiocarbonates as highly efficient RAFT agents. Macromolecules, 35, 6754-6756(2002).

    [23] P K Ang, S Wang, Q L Bao et al. High-throughput synthesis of graphene by intercalation-exfoliation of graphite oxide and study of ionic screening in graphene transistor. ACS Nano, 3, 3587-3594(2009).

    [24] P Zhang, Y Z Chen, H Q Weng et al. Reduced graphene oxide composite aerogel prepared by europium-assisting radiation reduction as a broad-spectrum adsorbent for organic pollutants. Journal of Materials Chemistry A, 11, 2804-2813(2023).

    [25] H Q Weng, Y Wang, F H Li et al. Recovery of platinum group metal resources from high-level radioactive liquid wastes by non-contact photoreduction. Journal of Hazardous Materials, 458, 131852(2023).

    [26] C H Zhu, Z B Hai, C H Cui et al. In situ controlled synthesis of thermosensitive poly(N-isopropylacrylamide)/Au nanocomposite hydrogels by gamma radiation for catalytic application. Small, 8, 930-936(2012).

    [27] M Barsbay, O Güven, M H Stenzel et al. Verification of controlled grafting of styrene from cellulose via radiation-induced RAFT polymerization. Macromolecules, 40, 7140-7147(2007).

    [28] M Kumar, A Panda, S Sabharwal. Reactions of N-isopropylacrylamide with some reducing and oxidising radicals in aqueous solutions: a pulse radiolysis study. Radiation Physics and Chemistry, 59, 287-293(2000).

    [29] Á Sáfrány, L Wojnárovits. First steps in radiation-induced hydrogel synthesis: radical formation and oligomerization in dilute aqueous N-isopropylacrylamide solutions. Radiation Physics and Chemistry, 67, 707-715(2003).

    [30] Á Sáfrány, L Wojnárovits. Electron-beam initiated crosslinking in poly(N-isopropylacrylamide) aqueous solution. Radiation Physics and Chemistry, 69, 289-293(2004).

    [31] A Acharya, H R Mohan, S Sabharwal. Radiation chemical studies on thermosensitive N-isopropylacrylamide and its polymer in aqueous solutions. Journal of Radiation Research, 44, 335-343(2003).

    [32] J Kim, F Kim, J X Huang. Seeing graphene-based sheets. Materials Today, 13, 28-38(2010).

    [33] M Acik, G Lee, C Mattevi et al. Unusual infrared-absorption mechanism in thermally reduced graphene oxide. Nature Materials, 9, 840-845(2010).

    [34] D Li, M B Müller, S Gilje et al. Processable aqueous dispersions of graphene nanosheets. Nature Nanotechnology, 3, 101-105(2008).

    [35] L M Zhang, J G Xia, Q H Zhao et al. Functional graphene oxide as a nanocarrier for controlled loading and targeted delivery of mixed anticancer drugs. Small, 6, 537-544(2010).

    [36] Z B Zha, X L Yue, Q S Ren et al. Uniform polypyrrole nanoparticles with high photothermal conversion efficiency for photothermal ablation of cancer cells. Advanced Materials, 25, 777-782(2013).

    Hanqin WENG, Baoying ZHANG, Xuan WANG, Xin XIAO, Shinichi YAMASHITA, Mozhen WANG, Xuewu GE. Dual-responsive reduced graphene oxides prepared by radiation-initiated living radical grafting polymerization[J]. Journal of Radiation Research and Radiation Processing, 2024, 42(6): 060204
    Download Citation