• NUCLEAR TECHNIQUES
  • Vol. 48, Issue 2, 020502 (2025)
Xiaojuan ZHEN1, Yifan HUANG2,*, Zhanzu FENG3, Dan LUO1..., Chengshi GONG1, Kai JIANG1, Duolong PAN1 and Shengsheng YANG3|Show fewer author(s)
Author Affiliations
  • 1School of Electronic Engineering, Lanzhou City University, Lanzhou 730070, China
  • 2Institute of Special Environment Physical Sciences, Harbin Institute of Technology, Shenzhen 518055, China
  • 3Science and Technology on Vacuum Technology and Physics Laboratory, Lanzhou Institute of Physics, Lanzhou 730000, China
  • show less
    DOI: 10.11889/j.0253-3219.2025.hjs.48.240290 Cite this Article
    Xiaojuan ZHEN, Yifan HUANG, Zhanzu FENG, Dan LUO, Chengshi GONG, Kai JIANG, Duolong PAN, Shengsheng YANG. The 500 keV electron irradiation effect on free-standing reduced graphene oxide film[J]. NUCLEAR TECHNIQUES, 2025, 48(2): 020502 Copy Citation Text show less
    References

    [1] GAO Hong, XING Yan, LIU Botian et al. Progress of nanotechnology research in NASA[J]. Spacecraft Environment Engineering, 33, 562-569(2016).

    [2] Farooq N, Rehman Z U, Hareem A et al. Graphene oxide and based materials: synthesis, properties, and applications–A comprehensive review[J]. MatSci Express, 1, 185-231(2024).

    [3] Zhao J, Ji P X, Li Y Q et al. Ultrahigh-mobility semiconducting epitaxial graphene on silicon carbide[J]. Nature, 625, 60-65(2024).

    [4] LIU Yu, LIU Yong, ZUO Chunyan et al. Progress of graphene in space applications[J]. Aerospace Materials & Technology, 47, 1-7(2017).

    [5] Novoselov K S, Falko V I, Colombo L et al. A road map for graphene[J]. Nature, 490, 192-200(2012).

    [6] WEN Feng, DU Jiangping, ZHAO Yumeng et al. Preparation process and performance of graphene oxide-doped UO2 pellets[J]. Nuclear Techniques, 47, 060607(2024).

    [7] Shi J D, Ma G Z, Li G L et al. Tribological behavior of graphene/DLC coatings after AO and UV irradiation in vacuum environment[J]. Materials Letters, 349, 134760(2023).

    [8] WANG Nan, YAN Shaojiu, PENG Sikan et al. Research progress on 3D printed graphene materials synthesis technology and its application in energy storage field[J]. Journal of Materials Engineering, 45, 112-125(2017).

    [9] LIANG Yu, CHEN Kaifeng, HUANG Congshu et al. Application research progress of graphene functional coatings[J]. Equipment Environmental Engineering, 16, 95-101(2019).

    [10] Guo Y, Dun C C, Xu J W et al. Ultrathin, washable, and large-area graphene papers for personal thermal management[J]. Small, 13, 1702645(2017).

    [11] WU Kai, ZHANG Tiejun, YAO Wei et al. Research progress of new high performance aerospace materials[J]. Aerospace Materials & Technology, 47, 1-9(2017).

    [12] LIU Yuming, LI Man, LIU Xiangpeng et al. Effect of atomic oxygen on electric properties of graphene films[J]. Journal of Materials Engineering, 45, 9-13(2017).

    [13] SHEN Zicai, JIANG Haifu, XU Kunbo et al. Damage mechanisms and their correlations of spacecraft materials in space environments[J]. Aerospace Materials & Technology, 46, 1-8(2016).

    [14] Feng W W, Reifsnider K L, Sendeckyj G P et al. Influence of simulated space environment on the behavior of carbon-fiber-reinforced plastics with ±45° ply orientations: Part 2[J]. Journal of Composites Technology and Research, 6, 126(1984).

    [15] Femi-Oyetoro J D, Yao K, Roccapriore K et al. Effects of high-dosage focused electron-beam irradiation at energies≤30 keV on graphene on SiO2[J]. Applied Surface Science, 469, 325-330(2019).

    [16] Malinský P, Cutroneo M, Macková A et al. Graphene oxide layers modified by irradiation with 1.2 MeV He+ ions[J]. Surface and Coatings Technology, 342, 220-225(2018).

    [17] Passornraprasit N, Siripongpreda T, Ninlapruk S et al. γ-irradiation crosslinking of graphene oxide/cellulose nanofiber/poly (acrylic acid) hydrogel as a urea sensing patch[J]. International Journal of Biological Macromolecules, 213, 1037-1046(2022).

    [18] Wu K H, Cheng H H, Mohammad A A et al. Electron-beam writing of deoxygenated micro-patterns on graphene oxide film[J]. Carbon, 95, 738-745(2015).

    [19] Wang W X, Wang S F, Zhang S W et al. Effects of substrates on proton irradiation damage of graphene[J]. RSC Advances, 10, 12060-12067(2020).

    [20] Tyagi C, Tripathi A, Dey A B et al. Structural changes induced in graphene oxide film by low energy ion beam irradiation[J]. Radiation Physics and Chemistry, 192, 109923(2022).

    [21] Ma P C, Zeng J, Yan X Y et al. Significant enhancement in sensitivity of graphene gas detectors induced by highly charged ion irradiation[J]. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 522, 14-20(2022).

    [22] Olejniczak A, Rymzhanov R A. From nanohole to ultralong straight nanochannel fabrication in graphene oxide with swift heavy ions[J]. Nature Communications, 14, 889(2023).

    [23] Farhan A, Zahid M, Tahir N et al. Investigation of boron-doped graphene oxide anchored with copper sulphide flowers as visible light active photocatalyst for methylene blue degradation[J]. Scientific Reports, 13, 9497(2023).

    [24] Sivaselvam S, Mohankumar A, Narmadha R et al. Effect of gamma-ray irradiated reduced graphene oxide (rGO) on environmental health: an in-vitro and in-vivo studies[J]. Environmental Pollution, 318, 120933(2023).

    [25] Zhang B W, Li L F, Wang Z Q et al. Radiation induced reduction: an effective and clean route to synthesize functionalized graphene[J]. Journal of Materials Chemistry, 22, 7775-7781(2012).

    [26] Liu G, Wang Y J, Pu X J et al. One-step synthesis of high conductivity silver nanoparticle-reduced graphene oxide composite films by electron beam irradiation[J]. Applied Surface Science, 349, 570-575(2015).

    [27] Coleman C, Erasmus R, Bhattacharyya S. Nanoscale deformations in graphene by laser annealing[J]. Applied Physics Letters, 109, 253102(2016).

    [28] Park C S. Disorder induced transition of electrical properties of graphene by thermal annealing[J]. Results in Physics, 9, 1534-1536(2018).

    [29] Souibgui M, Ajlani H, Cavanna A et al. Raman study of annealed two-dimensional heterostructure of graphene on hexagonal boron nitride[J]. Superlattices and Microstructures, 112, 394-403(2017).

    [30] Titantah J T, Lamoen D. sp3/sp2 characterization of carbon materials from first-principles calculations: X-ray photoelectron versus high energy electron energy-loss spectroscopy techniques[J]. Carbon, 43, 1311-1316(2005).

    [31] Zhen X J, Huang Y F, Yang S S et al. The effect of 500 keV proton irradiation on reduced graphene oxide paper[J]. Materials Letters, 260, 126880(2020).

    [32] Jeet K, Jindal V K, Bharadwaj L M et al. Damaged carbon nanotubes get healed by ion irradiation[J]. Journal of Applied Physics, 108, 034302(2010).

    [33] Hopkins A R, Labatete-Goeppinger A C, Kim H et al. Space survivability of carbon nanotube yarn material in low Earth orbit[J]. Carbon, 107, 77-86(2016).

    [34] Tyagi C, Khan S A, Ojha S et al. Effect of carbon ion-beam irradiation on graphene oxide film[J]. Vacuum, 154, 259-263(2018).

    [35] He J L, Fang L. Controllable synthesis of reduced graphene oxide[J]. Current Applied Physics, 16, 1152-1158(2016).

    [36] Wang L P, Fan X Q, Li W et al. Space irradiation-induced damage to graphene films[J]. Nanoscale, 9, 13079-13088(2017).

    [37] Voitsihovska O O, Rudenko R M, Povarchuk V Y et al. The effect of electron irradiation on the electrical properties of reduced graphene oxide paper[J]. Materials Letters, 236, 334-336(2019).

    [38] XU Jiangwei, ZHANG Chao, MAO Fei et al. Progress on theoretical simulation study of the influence of electronic energy loss on the irradiation defects of materials[J]. Nuclear Techniques, 46, 120504(2023).

    [39] Ilyin A M, Guseinov N R, Nemkaeva R R et al. Bridge-like radiation defects in few-layer graphene[J]. Nuclear Instruments and Methods in Physics Research Section B: Beam Interactions with Materials and Atoms, 315, 192-196(2013).

    [40] Stobinski L, Lesiak B, Malolepszy A et al. Graphene oxide and reduced graphene oxide studied by the XRD, TEM and electron spectroscopy methods[J]. Journal of Electron Spectroscopy and Related Phenomena, 195, 145-154(2014).

    [41] Malinský P, Macková A, Florianová M et al. The structural and compositional changes of graphene oxide induced by irradiation with 500 keV helium and gallium ions[J]. Physica Status Solidi (b), 256, 1800409(2019).

    [42] Kumar S, Kumar A, Tripathi A et al. Engineering of electronic properties of single layer graphene by swift heavy ion irradiation[J]. Journal of Applied Physics, 123, 161533(2018).

    [43] YE Junzhang, GU Yu, LI Jihao et al. Preparation of a freestanding graphene oxide forward osmosis membrane by electron-beam irradiation and its acid recovery performance[J]. Journal of Radiation Research and Radiation Processing, 37, 050202(2019).

    Xiaojuan ZHEN, Yifan HUANG, Zhanzu FENG, Dan LUO, Chengshi GONG, Kai JIANG, Duolong PAN, Shengsheng YANG. The 500 keV electron irradiation effect on free-standing reduced graphene oxide film[J]. NUCLEAR TECHNIQUES, 2025, 48(2): 020502
    Download Citation