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      KCI등재 SCOPUS SCIE

      A superior microwave absorption material: Ni2+-Zr4+ Co-Doped barium ferrite ceramics with large reflection loss and broad bandwidth

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      https://www.riss.kr/link?id=A106304522

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      다국어 초록 (Multilingual Abstract)

      Large reflection loss and wide bandwidth are significant targets, determining the microwave absorption ability. However, it is still a challenge to simultaneously satisfy the two conditions. As a multifunctional material, BaFe12O19 possess excellent ...

      Large reflection loss and wide bandwidth are significant targets, determining the microwave absorption ability.
      However, it is still a challenge to simultaneously satisfy the two conditions. As a multifunctional material, BaFe12O19 possess excellent electromagnetic properties in the microwave frequency band. Due to the natural resonance phenomenon of the material, BaFe12O19 can produce a large magnetic loss which correlates with Fe3+ content, and the microwave absorption characteristics of barium ferrite can be modulated by ion doping. As a typical magnetic metal, Ni coupled with high-valence state Zr4+ doping helps to produce double resonance peaks. In this work, Ni2+-Zr4+ co-doping M-type barium ferrites (BaFe12-2xNixZrxO19, BNZFO-x, x=0–0.8) were prepared conveniently by solid-state reaction method. Several necessary measurements to characterize its microwave absorption property have been operated such as morphology, magnetic performance and electromagnetic parameters. The results show that reflection loss and bandwidth can be simply tuned by tailoring Ni2+- Zr4+ content. The reflection loss peak drifts from 18 GHz to 9.76 GHz, which involves a half of the studied frequency range. The maximum reflection loss achieves −60.6 dB and the corresponding bandwidth over −10 dB is 7.68 GHz for BNZFO-0.6 ceramic with only 2.1mm thickness. Thus, the doping of Ni2+-Zr4+ ion pairs is beneficial to improve the absorbing properties of the material, and the superior microwave absorption property may originate from its inner double natural resonance in micro-scale. The excellent microwave absorption properties suggest that BNZFO-x is a promising candidate applied for designing electromagnetic shielding devices.

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      참고문헌 (Reference)

      1 P. Toneguzzo, 10 : 1032-, 1998

      2 M. M. Syazwan, 53 : 465-, 2017

      3 Y. N. Li, 9 : 2034-, 2016

      4 B. Zhao, 17 : 6044-, 2015

      5 H. Hekmatara, 16 : 24069-, 2014

      6 D. W. Wang, 41 (41): 8768-, 2015

      7 Y. Li, 111 : 130-, 2013

      8 Y. Li, 5 : 77184-, 2015

      9 Y. Li, 3 : 9276-, 2015

      10 Y. Li, 9 : 11711-, 2017

      1 P. Toneguzzo, 10 : 1032-, 1998

      2 M. M. Syazwan, 53 : 465-, 2017

      3 Y. N. Li, 9 : 2034-, 2016

      4 B. Zhao, 17 : 6044-, 2015

      5 H. Hekmatara, 16 : 24069-, 2014

      6 D. W. Wang, 41 (41): 8768-, 2015

      7 Y. Li, 111 : 130-, 2013

      8 Y. Li, 5 : 77184-, 2015

      9 Y. Li, 3 : 9276-, 2015

      10 Y. Li, 9 : 11711-, 2017

      11 Y. Li, 9 : 8591-, 2017

      12 Y. Cheng, 27 : 772-, 2016

      13 T. Zheng, 98 : 552-, 2018

      14 J. G. Wu, 84 : 335-, 2016

      15 Y. P. Duan, 22 : 18291-, 2012

      16 Y. L. Zhang, 11 : 1426-, 2018

      17 J. Li, 44 : 6953-, 2018

      18 C. Y. Liu, 5 : 3461-, 2017

      19 W. J. Xing, 731 : 279-, 2018

      20 H. Nikmanesh, 708 : 99-, 2017

      21 R. K. Mudsainiyan, 40 : 16617-, 2014

      22 C. Y. Liu, 4 : 9532-9543, 2016

      23 H. Sözeri, 40 : 8645-, 2014

      24 R. C. Pullar, 57 : 1191-, 2012

      25 A. Grusková, 63 : 156-, 2012

      26 F. S. Wen, 115 : 14025-, 2011

      27 G. H. Mu, 91 : 043110-, 2007

      28 M. R. Meshram, 271 : 207-, 2004

      29 M. S. Cao, 4 : 6949-, 2012

      30 Y. Li, 110 : 99-, 2016

      31 Y. Li, 6 : 24837-, 2016

      32 M. S. Cao, 14 (14): 1800987-, 2018

      33 W. Q. Cao, 3 (3): 10017-, 2015

      34 X. F. Zhang, 89 : 053115-, 2006

      35 Q. L. Liu, 93 : 013110-, 2008

      36 B. Ünal, 42 : 17317-, 2016

      37 D. Estevez, 132 : 486-, 2018

      38 S. Torkian, 43 : 6987-, 2017

      39 S. Chakraborty, 443 : 244-, 2017

      40 Y. Ren, 693 : 1257-, 2017

      41 Y. Ding, 9 : 2018-, 2016

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2008-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2007-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2003-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.8 0.18 1.17
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.92 0.77 0.297 0.1
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