Journal of Radiation Research and Radiation Processing, Volume. 42, Issue 1, 010205(2024)

Effect of graphene quantum dots on the radiation resistance of epoxy resin

Jinxia HOU, Shengkai LIU, Xiaoyuan PEI, Wei WANG, Yue YIN, Xinke ZHOU, and Zhiwei XU*
Author Affiliations
  • School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China
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    References(23)

    [1] L F Zheng, L N Wang, Z Z Wang et al. Effects of γ-ray irradiation on the fatigue strength, thermal conductivities and thermal stabilities of the glass fibres/epoxy resins composites. Acta Metallurgica Sinica (English Letters), 31, 105-112(2018).

    [2] S Joshi, V Snehalatha, K Sivasubramanian et al. Radiation stability of epoxy-based gamma shielding material. Journal of Materials Engineering and Performance, 28, 7332-7341(2019).

    [3] Le CHANG, Yan ZHANG, Yujian LIU et al. Study on the damage mechanism for epoxy resin under gamma irradiation. Thermosetting Resin, 31, 10-14(2016).

    [4] W Xia, T Wang, L Song et al. Graphene/epoxy composite coating damage under γ-ray irradiation and corrosion protection. Journal of Inorganic Materials, 33, 35(2018).

    [5] E G Barathi Dassan, A Anjang Ab Rahman, M S Z Abidin et al. Carbon nanotube–reinforced polymer composite for electromagnetic interference application: a review. Nanotechnology Reviews, 9, 768-788(2020).

    [6] V K Tiwari, P K Kulriya, D K Avasthi et al. Radiation-resistant behavior of poly(vinylidene fluoride)/layered silicate nanocomposites. ACS Applied Materials & Interfaces, 1, 311-318(2009).

    [7] Y Liu, S Q Zhang, X Y Pei et al. Free radical scavenging behavior of multidimensional nanomaterials in γ-irradiated epoxy resin and mechanical and thermal performance of γ-irradiated composites. Composites Part C: Open Access, 4, 100095(2021).

    [8] M Bacon, S J Bradley, T Nann. Graphene quantum dots. Particle & Particle Systems Characterization, 31, 415-428(2014).

    [9] J L Zhu, Y F Tang, G Wang et al. Green, rapid, and universal preparation approach of graphene quantum dots under ultraviolet irradiation. ACS Applied Materials & Interfaces, 9, 14470-14477(2017).

    [10] Q A Liu, B D Guo, Z Y Rao et al. Strong two-photon-induced fluorescence from photostable, biocompatible nitrogen-doped graphene quantum dots for cellular and deep-tissue imaging. Nano Letters, 13, 2436-2441(2013).

    [11] L S Li, X Yan. Colloidal graphene quantum dots. The Journal of Physical Chemistry Letters, 1, 2572-2576(2010).

    [12] M Nafiujjaman, H Joon, K S Kwak et al. Synthesis of nitrogen- and chlorine-doped graphene quantum dots for cancer cell imaging. Journal of Nanoscience and Nanotechnology, 18, 3793-3799(2018).

    [13] X T Zheng, A Ananthanarayanan, K Q Luo et al. Glowing graphene quantum dots and carbon dots: properties, syntheses, and biological applications. Small, 11, 1620-1636(2015).

    [14] M X Sun, Q Y Fang, D Xie et al. Heterostructured graphene quantum dot/WSe2/Si photodetector with suppressed dark current and improved detectivity. Nano Research, 11, 3233-3243(2018).

    [15] S S Liu, W Wang, Y L Hu et al. Hetero-shaped coral-like catalysts through metal-support interaction between nitrogen-doped graphene quantum dots and PtPd alloy for oxygen reduction reaction. Electrochimica Acta, 364, 137314(2020).

    [16] L F Wang, Y Li, Y M Wang et al. Chlorine-doped graphene quantum dots with enhanced anti- and pro-oxidant properties. ACS Applied Materials & Interfaces, 11, 21822-21829(2019).

    [17] C Shen, S Y Ge, Y Y Pang et al. Facile and scalable preparation of highly luminescent N, S co-doped graphene quantum dots and their application for parallel detection of multiple metal ions. Journal of Materials Chemistry B, 5, 6593-6600(2017).

    [18] Y M Wang, W H Kong, L F Wang et al. Optimizing oxygen functional groups in graphene quantum dots for improved antioxidant mechanism. Physical Chemistry Chemical Physics, 21, 1336-1343(2019).

    [19] Y Q Dong, J W Shao, C Q Chen et al. Blue luminescent graphene quantum dots and graphene oxide prepared by tuning the carbonization degree of citric acid. Carbon, 50, 4738-4743(2012).

    [20] M R Loos, L A F Coelho, S H Pezzin et al. The effect of acetone addition on the properties of epoxy. Polímeros, 18, 76-80(2008).

    [21] S Jana, W H Zhong. FTIR study of ageing epoxy resin reinforced by reactive graphitic nanofibers. Journal of Applied Polymer Science, 106, 3555-3563(2007).

    [22] L M Jiao, Y Wang, Z H Wu et al. Effect of gamma and neutron irradiation on properties of boron nitride/epoxy resin composites. Polymer Degradation and Stability, 190, 109643(2021).

    [23] Z Y Ji, F Zhang, H B Chen et al. Study on the species and stability of free radicals in bisphenol-a based epoxy resin induced by γ irradiation up to 1000 kGy. Radiation Physics and Chemistry, 197, 110220(2022).

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    Jinxia HOU, Shengkai LIU, Xiaoyuan PEI, Wei WANG, Yue YIN, Xinke ZHOU, Zhiwei XU. Effect of graphene quantum dots on the radiation resistance of epoxy resin[J]. Journal of Radiation Research and Radiation Processing, 2024, 42(1): 010205

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    Paper Information

    Category: Research Articles

    Received: Sep. 13, 2023

    Accepted: Oct. 31, 2023

    Published Online: Mar. 27, 2024

    The Author Email: XU Zhiwei (徐志伟)

    DOI:10.11889/j.1000-3436.2023-0076

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