Published October 2017 | Version v1
Journal article

Structural, optical and magnetic investigation of Gd implanted CeO2 nanocrystals

  • 1. Nanoscience's African Network - NANOAFNET, Materials Research Group (MRG), iThemba LABS-National Research Foundation (NRF), 1 Old Faure Road, 7129, P O Box 722, Somerset West, Western Cape Province (South Africa)
  • 2. Nanoscience's/Nanotechnology Laboratories, College of Graduate Studies, University of South Africa (UNISA), Muckleneuk Ridge, P O Box 392, Pretoria (South Africa)
  • 3. National Isotope Centre, GNS Science, PO Box 31312, Lower Hutt 5010 (New Zealand)
  • 4. Nanoscience's African Network (NANOAFNET), Materials Research Group (MRG), iThemba LABS-National Research Foundation NRF, 1 Old Faure Road, 7129, P O Box 722, Somerset West, Western Cape Province (South Africa)
  • 5. Department of Physics, University of Botswana, Private Bag 0022, Gaborone (Botswana)

Description

Highlights: • XRD patterns showed formation of new phases. • SEM micrographs revealed hexagonal structure. • PL spectrum has wider broad peak ranging from 390 to 770 nm. • Raman spectra 460–470 cm−1 which is attributed to oxygen ions into CeO2. • CeO2 having an optical bandgap 3.3 eV and n-type carrier density. Gadolinium implanted cerium oxide (Gd-CeO2) nanocomposites is an important candidate which have unique hexagonal structure and high K- dielectric constant. Gd-CeO2 nanoparticles were synthesized using hydrothermal method. X-ray diffraction (XRD) results showed that the peaks are consistent with pure phase cubic structure the XRD pattern also confirmed crystallinity and phase purity of the sample. Nanocrystals sizes were found to be up to 25 nm as revealed by XRD and SEM. It is suggested that Gd gives an affirmative effect on the ion influence behavior of Gd-CeO2. XRD patterns showed formation of new phases and SEM micrographs revealed hexagonal structure. Photoluminescence measurement (PL) reveals the systematic shift of the emission band towards lower wavelength thereby ascertaining the quantum confinement effect (QCE). The PL spectrum has wider broad peak ranging from 390 nm to 770 nm and a sharp one centered on at 451.30 nm which is in tune with Gd ions. In the Raman spectra showed intense band observed between 460 cm−1 and 470 cm−1 which is attributed to oxygen ions into CeO2. Room temperature ferromagnetism was observed in un-doped and Gd implanted and annealed CeO2 nanocrystals. In the recent studies, ceria based materials have been considered as one of the most promising electrolytes for reduced temperature SOFC (solid oxide fuel cell) system due to their high ionic conductivities allowing its use in stainless steel supported fuel cells. CeO2 having an optical bandgap 3.3 eV and n-type carrier density which make it a promising candidate for various technological application such as buffer layer on silicon on insulator devices.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.nimb.2017.02.055

Additional details

Identifiers

DOI
10.1016/j.nimb.2017.02.055;
PII
S0168583X17301763;

Publishing Information

Journal Title
Nuclear Instruments and Methods in Physics Research. Section B, Beam Interactions with Materials and Atoms
Journal Volume
409
Journal Page Range
p. 147-152
ISSN
0168-583X
CODEN
NIMBEU

Conference

Title
20. international conference on ion beam modification of materials
Acronym
IBMM 2016
Dates
30 Oct - 4 Nov 2016
Place
Wellington (New Zealand)

Optional Information

Copyright
Copyright (c) 2017 Elsevier B.V. All rights reserved.