In-Situ X-Ray Diffraction Study of the Evolution of NiO Microstructure Under 120 MeV Au Ion Irradiation

被引:2
|
作者
Mallick, P. [1 ]
Dash, B. N. [2 ,4 ]
Kulriya, P. K. [3 ]
Agarwal, D. C. [3 ]
Avasthi, D. K. [3 ]
Kanjilal, D. [3 ]
Mishra, N. C. [4 ]
机构
[1] North Orissa Univ, Dept Phys, Baripada 757003, India
[2] Salipur Coll, Dept Phys, Salipur 754202, India
[3] Interuniv Accelerator Ctr, New Delhi 110067, India
[4] Utkal Univ, Dept Phys, Bhubaneswar 751004, Orissa, India
关键词
Ion Irradiation; Nanoparticles; Electronic Excitation; Thermal Spike Model; In-Situ XRD; NiO; SWIFT HEAVY-IONS; THIN-FILMS; TRACK FORMATION; SPIKE MECHANISM; LATENT TRACKS; GRAIN-GROWTH; SOLIDS;
D O I
10.1166/asl.2014.5371
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Modification of the microstructure of 300 nm thick NiO thin film deposited by pulsed laser deposition method under 120 MeV Au ion irradiation was studied by in-situ X-ray diffraction(XRD) at 300 K. Irradiation led to different effects on the crystallinity of the films at different ion fluences. In the low fluence regime, crystalline quality of the films improved with consequent increase in the XRD peak intensity and decrease of the full width at half maximum (FWHM) of the XRD peaks with increasing ion fluence up to 3 x 10(11) ions cm(-2). At higher ion fluences, the crystalline quality decreased. Thermal spike model with a transient temperature profile exceeding the melting temperature inside the track explains the second effect and a temperature radially decreasing away from the track region, but still high enough to anneal out the pre-existing defects in the region surrounding the ion tracks explains the first effect. Radius of the ion tracks (similar to 1.9 nm) calculated by fitting the fluence dependence of XRD peak intensity agrees with the value (2 nm) predicted by the inelastic thermal spike model. Low density of the disordered material in the track region created due to the electronic energy loss of the energetic ions exceeding the threshold value for track formation was found to produce radial compressive strain on the crystalline matrix around the ion tracks leading to shifting of XRD peaks towards higher angles with increasing ion fluence. Fitting the variation of the strain with ion fluence to Poisson relation yielded radius of the strained region as 6.9 nm. Our study thus suggests three modes of materials modification under the attendant ion beam: (i) annealing of defects in regions surrounding the ion tracks, (ii) creation of columnar defects along the ion path and (iii) a strained matrix around each ion track.
引用
收藏
页码:607 / 611
页数:5
相关论文
共 50 条
  • [21] Laboratory X-ray Diffraction Complex for In Situ Investigations of Structural Phase Evolution of Materials under Gaseous Atmosphere
    Syrtanov, Maxim
    Garanin, Georgiy
    Kashkarov, Egor
    Pushilina, Natalia
    Kudiiarov, Viktor
    Murashkina, Tatyana
    METALS, 2020, 10 (04)
  • [22] Using exploratory factor analysis to examine consecutive in-situ X-ray diffraction measurements
    Westphal, Torsten
    Bier, Thomas A.
    Takahashi, Keisuke
    Wahab, Mirco
    POWDER DIFFRACTION, 2015, 30 (04) : 340 - 348
  • [23] Probing the Deformation Mechanisms of Nanocrystalline Silver by In-Situ Tension and Synchrotron X-ray Diffraction
    Sun, Baoru
    Shen, Tongde
    METALS, 2020, 10 (12) : 1 - 14
  • [24] In-situ X-ray Diffraction Analysis on the Role of Hardening Accelerator in Early Hydration of Cement
    Yu X.
    Yu C.
    Jiang Q.
    Ran Q.
    Liu J.
    Yang B.
    Cailiao Daobao/Materials Reports, 2020, 34 (01): : 02058 - 02062
  • [25] Study of InAs/GaAs(001) nanoisland growth process by in-situ and real-time X-ray diffraction
    Takahasi, Masamitu
    Kaizu, Toshiyuki
    Mizuki, Jun'ichiro
    E-JOURNAL OF SURFACE SCIENCE AND NANOTECHNOLOGY, 2006, 4 (426-430) : 426 - 430
  • [26] A study of recrystallization and phase transitions in intermetallic titanium aluminides by in-situ high-energy X-ray diffraction
    Liss, K. -D.
    Bartels, A.
    Clemens, H.
    Bystrzanowski, S.
    Stark, A.
    Buslaps, T.
    Schimansky, F. -P.
    Gerling, R.
    Schreyer, A.
    THERMEC 2006, PTS 1-5, 2007, 539-543 : 1519 - +
  • [27] Electrocrystallization of Pt layers onto Au substrates; an X-ray diffraction study
    Molina, IY
    Plyasova, LM
    Cherepanova, SV
    Savinova, ER
    Tsirlina, GA
    ZEITSCHRIFT FUR KRISTALLOGRAPHIE, 2006, : 293 - 298
  • [28] In situ X-ray diffraction study of a TiO2 nanopowder Spark Plasma Sintering under very high pressure
    Cottrino, Sandrine
    Gaudisson, Thomas
    Pailhes, Stephane
    Ferrara, Emanuela Archina
    Mishra, Shashank
    Daniele, Stephane
    Mezouar, Mohamed
    Largeteau, Alain
    Le Godec, Yann
    Le Floch, Sylvie
    JOURNAL OF THE EUROPEAN CERAMIC SOCIETY, 2023, 43 (07) : 2783 - 2793
  • [29] In-situ microstructural evolution during quenching and partitioning of a high-carbon steel by high-temperature X-Ray Diffraction
    Hosseini, Nazanin
    Forouzan, Farnoosh
    Vuorinen, Esa
    MATERIALS TODAY COMMUNICATIONS, 2022, 31
  • [30] In Situ X-ray Diffraction and Spectro-Microscopic Study of ALD Protected Copper Films
    Dogan, Guel
    Sanli, Umut T.
    Hahn, Kersten
    Mueller, Lutz
    Gruhn, Herbert
    Silber, Christian
    Schuetz, Gisela
    Grevent, Corinne
    Keskinbora, Kahraman
    ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (29) : 33377 - 33385