Search Results - "Masaki, Yoshio"

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  1. 1

    The prevalence of superior canal dehiscence syndrome as assessed by temporal bone computed tomography imaging by Masaki, Yoshio

    Published in Acta oto-laryngologica (01-03-2011)
    “…Abstract Conclusion: When a diagnosis of superior canal dehiscence syndrome (SCDS) was made based solely on CT scans, 80% of cases assessed were false…”
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    Journal Article
  2. 2

    Hierarchical Intercalation of Spiro-bipyrrolidinium Cation into Graphite Electrode from Propylene Carbonate by Qi, Jiaxing, Chen, Congcong, Wang, Yunju, Wang, Boyu, Zhang, Lei, Yoshio, Masaki, Wang, Hongyu

    Published in Chemistry letters (05-05-2022)
    “…The intercalation of spiro-(1,1′)-bipyrrolidinium (SBP) cation into a graphite electrode from propylene carbonate (PC) is performed in graphite/activated…”
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    Journal Article
  3. 3

    Cooperation of micro- and meso-porous carbon electrode materials in electric double-layer capacitors by Zheng, Cheng, Qi, Li, Yoshio, Masaki, Wang, Hongyu

    Published in Journal of power sources (01-07-2010)
    “…The capacitive characteristics of micro- and meso-porous carbon materials have been compared in cyclic voltammetric studies and galvanostatic charge–discharge…”
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    Journal Article
  4. 4

    Suppression of caloric nystagmus by virtual stare by Masaki, Yoshio

    Published in Equilibrium Research (2019)
    “…[Introduction] I conducted this experiment to examine whether virtual stare can suppress nystagmus. [Subjects] Twelve healthy adult volunteers (total 24 ears)…”
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    Journal Article
  5. 5

    WO3 hollow nanospheres for high-lithium storage capacity and good cyclability by Sasidharan, Manickam, Gunawardhana, Nanda, Yoshio, Masaki, Nakashima, Kenichi

    Published in Nano energy (01-05-2012)
    “…WO3 hollow nanosphere is reported using polymeric micelle with core–shell–corona architecture. Poly(styrene-b-[3-(methacryloylamino)propyl] trimethylammonium…”
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    Journal Article
  6. 6

    Nb2O5 hollow nanospheres as anode material for enhanced performance in lithium ion batteries by Sasidharan, Manickam, Gunawardhana, Nanda, Yoshio, Masaki, Nakashima, Kenichi

    Published in Materials research bulletin (01-09-2012)
    “…Nb2O5 hollow nanosphere constructed electrode delivers high capacity of 172mAhg−1 after 250 cycles and maintains structural integrity and excellent cycling…”
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    Journal Article
  7. 7

    Facilitating Tetrafluoroborate Intercalation into Graphite Electrodes from Ethylmethyl Carbonate‐Based Solutions by Huang, Yuhao, Fan, Hui, Kamezaki, Hisamitsu, Kang, Bo, Yoshio, Masaki, Wang, Hongyu

    Published in ChemElectroChem (03-06-2019)
    “…Kinetically facile intercalation of anions into graphite electrodes is essential for the good performance of dual‐ion batteries. The intercalation of BF4−…”
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    Journal Article
  8. 8

    Storage behavior of isomeric quaternary alkyl ammonium cations in graphite electrodes for graphite/activated carbon capacitors by Li, Jiayu, Zheng, Cheng, Qi, Li, Yoshio, Masaki, Wang, Hongyu

    Published in Electrochimica acta (10-09-2017)
    “…•Quaternary alkyl ammonium (QAA) cations as charge carriers in energy storage devices.•Three small isomeric QAA cations intercalate into graphite electrode in…”
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    Journal Article
  9. 9

    Graphite, a suitable positive electrode material for high-energy electrochemical capacitors by Wang, Hongyu, Yoshio, Masaki

    Published in Electrochemistry communications (01-09-2006)
    “…Five graphite samples have been applied as the positive electrode material in a novel graphite/activated carbon capacitor containing organic electrolytes. The…”
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    Journal Article
  10. 10

    Carbon-coated silicon as anode material for lithium ion batteries: advantages and limitations by Dimov, Nikolay, Kugino, Satoshi, Yoshio, Masaki

    Published in Electrochimica acta (15-05-2003)
    “…Carbon coating of silicon powder was studied as a means of preparation of silicon-based anode material for lithium ion batteries. Carbon-coated silicon has…”
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    Journal Article
  11. 11

    Feasibility of quaternary alkyl ammonium-intercalated graphite as negative electrode materials in electrochemical capacitors by Wang, Hongyu, Yoshio, Masaki

    Published in Journal of power sources (15-02-2012)
    “…► Quaternary alkyl ammonium cations intercalate into graphite negative electrodes in graphite/activated carbon capacitors. ► The cycle performance of a…”
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    Journal Article
  12. 12

    The study of electrochemical properties and lithium deposition of graphite at low temperature by Park, Gumjae, Gunawardhana, Nanda, Nakamura, Hiroyoshi, Lee, Yun-Sung, Yoshio, Masaki

    Published in Journal of power sources (01-02-2012)
    “…► The graphite samples are electrochemically investigated at 25 °C and −5 °C. ► The graphite with high graphitization shows a big reduced capacity by…”
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    Journal Article
  13. 13

    Structural interpretation of chemically synthesized ZnO nanorod and its application in lithium ion battery by Kundu, Samapti, Sain, Sumanta, Yoshio, Masaki, Kar, Tanusree, Gunawardhana, Nanda, Pradhan, Swapan Kumar

    Published in Applied surface science (28-02-2015)
    “…•ZnO nanorods are synthesized at room temperature via a simple chemical route.•Growth direction of ZnO nanorods has been determined along 〈002〉.•ZnO nanorods…”
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    Journal Article
  14. 14

    Performance of AC/graphite capacitors at high weight ratios of AC/graphite by Wang, Hongyu, Yoshio, Masaki

    Published in Journal of power sources (01-03-2008)
    “…The effect of negative to positive electrode materials’ weight ratio on the electrochemical performance of both activated carbon (AC)/AC and AC/graphite…”
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    Journal Article
  15. 15

    Non-porous activated mesophase carbon microbeads as a negative electrode material for asymmetric electrochemical capacitors by Zheng, Cheng, Gao, Jichao, Yoshio, Masaki, Qi, Li, Wang, Hongyu

    Published in Journal of power sources (01-06-2013)
    “…Non-porous activated (mesophase carbon microbeads) MCMBs have been prepared by calcinations at 1100 °C and then activated with KOH at 800 °C in a nitrogen…”
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    Journal Article
  16. 16

    Functional electrolytes: Novel type additives for cathode materials, providing high cycleability performance by Abe, Koji, Ushigoe, Yoshihiro, Yoshitake, Hideya, Yoshio, Masaki

    Published in Journal of power sources (01-02-2006)
    “…We present the results of novel type additives to improve the cathode cycleability performance. Benzene derivatives (biphenyl and o-terphenyl) and heterocyclic…”
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    Journal Article Conference Proceeding
  17. 17

    Spherical Carbon-Coated Natural Graphite as a Lithium-Ion Battery-Anode Material by Yoshio, Masaki, Wang, Hongyu, Fukuda, Kenji

    Published in Angewandte Chemie International Edition (15-09-2003)
    “…Lithium‐ion batteries are the most convenient form of electrical storage. But their natural‐graphite anodes are not compatible with propylene carbonate‐based…”
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    Journal Article
  18. 18

    From symmetric AC/AC to asymmetric AC/graphite, a progress in electrochemical capacitors by Wang, Hongyu, Yoshio, Masaki, Thapa, Arjun Kumar, Nakamura, Hiroyoshi

    Published in Journal of power sources (20-06-2007)
    “…Graphitic carbon instead of activated carbon has been employed as the positive electrode material in the activated carbon (AC)/carbon capacitors using organic…”
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    Journal Article
  19. 19

    Suppression of Li deposition on surface of graphite using carbon coating by thermal vapor deposition process by Park, Gumjae, Gunawardhana, Nanda, Nakamura, Hiroyoshi, Lee, YunSung, Yoshio, Masaki

    Published in Journal of power sources (15-11-2011)
    “…► Carbon coated natural graphite prepared by TVD. ► Increased lithium intercalation into graphite. ► Suppression of lithium deposition on the surface of…”
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    Journal Article
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