Curriculum Vitaes
Profile Information
- Affiliation
- Professor, Faculty of Science and Technology, Department of Materials and Life Sciences, Sophia University
- Degree
- 博士(工学)(Mar, 2002, 東京農工大学)
- Contact information
- masahi-f
sophia.ac.jp - Other name(s) (e.g. nickname)
- Yoshizawa
- Researcher number
- 50433793
- J-GLOBAL ID
- 200901014332520864
- researchmap Member ID
- 6000003382
(Subject of research)
Developement of fast proton conductive plastic crystals
Research Interests
7Research Areas
1Awards
4Papers
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Journal of Environmental Chemical Engineering, 13(5) 118859-118859, Oct, 2025 Peer-reviewed
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Electrochimica Acta, 534 146549-146549, Sep, 2025 Peer-reviewedInvitedLast authorCorresponding author
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Electrochimica Acta, 527 146269-146269, Jul, 2025 Peer-reviewedInvitedLast authorCorresponding author
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Physical Chemistry Chemical Physics, 27(28) 15126-15136, Jul, 2025 Peer-reviewedLast authorCorresponding author
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ACS Applied Energy Materials, 9(8) 5738-5744, May 12, 2025 Peer-reviewed
Misc.
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機能材料, 45(3) 56-64, Mar 7, 2025 InvitedLast authorCorresponding author
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ChemRxiv, May 13, 2024 Last authorCorresponding authorIonic plastic crystals (IPCs), which are soft crystals with plasticity and ionic conductivity, are expected to be applied as solid electrolytes in battery applications. Further improvement of ionic conductivity is necessary for practical use as an electrolyte for energy storage devices. Materials Informatics (MI) is a method of incorporating information science in materials development. In this research, MI is being used to develop IPCs with high ionic conductivity. By using informatics science in addition to chemical knowledge, this research can be carried out efficiently and innovatively. The synthesis of eight new compounds resulted in six of them being solid at room temperature, while two of them were in a liquid state, namely ionic liquids. We evaluated the phase transition temperatures and ionic conductivity for each compound. Notably, N-ethyl-N-methylpyrrolidinium trifluoromethyltrifluoroborate ([C2mpyr][CF3BF3]) exhibited a high ionic conductivity of 1.75×10-4 S cm-1 at 25 oC, which is one of the highest values reported among IPCs to date. The combination of an experimental and MI based approach revealed an improved understanding of the relationship between ion size and ionic conductivity for a series of pyrrolidinium-based IPCs, and it is expected that further improvements to this approach will yield greater understanding of structure-property relationships.
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ChemRxiv, Feb 14, 2024 Last authorCorresponding authorCellulose is attracting attention for the development of environmentally friendly, carbon-neutral, sustainable materials. Cellulose derivatives with cationic groups have the potential for applications in various fields, e.g., electrolytes. However, the current situation is marked by a low degree of cationic group incorporation and a need for more efficient synthesis methods. In this study, cationic cellulose was synthesized using an epoxy derivative, 2,3-epoxypropyltrimethylammonium chloride (EPTMAC), in an aqueous pyrrolidinium hydroxide solution. Since an aqueous pyrrolidinium hydroxide solution is a strong alkaline solution, the solution not only exhibits a high cellulose solubility at room temperature but also facilitates the reaction between cellulose and the epoxy derivative. We investigated the influence of reaction time, temperature, cellulose concentration, cationic reagent concentration, and the selection of a precipitation solvent for purification on the degree of substitution (DS) value of cationic cellulose. The structure of the obtained cationic cellulose was examined using 1H NMR, 1H-1H TOCSY, 1H-13C HSQC measurements, and Fourier-transform infrared spectroscopy (FT-IR). As a result of increasing cellulose and EPTMAC concentrations, the DS value increased, reaching a maximum value of 1.9. Solubility tests indicated that the cationic cellulose with chloride counter-anions exhibited notable solubility even in ethanol when the DS values were over 1.2. Cationic cellulose with bis(trifluoromethylsulfonyl)amide (TFSA) anion synthesized with a view to battery applications was insoluble in water and exhibited a film-forming property. Thus, the solubility of cationic cellulose could be controlled by varying the anionic species.
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ChemRxiv, Jan 17, 2024 Last authorCorresponding authorCellulose is one of the main components of plant cell walls, abundant on earth, and is a non-edible material that can be acquired at a low cost. Furthermore, there has been increasing interest in its use in environmentally friendly, carbon-neutral, sustainable materials. It is expected that the applications of cellulose will expand with the development of a simple processing method. Previously, it was demonstrated that cellulose can be dissolved in a non-heated, short-duration process using an aqueous pyrrolidinium hydroxide solution. In this study, we dissolved cellulose in aqueous N-butyl-N-methylpyrrolidinium hydroxide solution ([C4mpyr][OH]/H2O) and investigated the cellulose regeneration process based on changes in solubility upon application of CO2 gas. We investigated the effect of transformation of the anion chemical structure on cellulose solubility by flowing CO2 gas into [C4mpyr][OH]/H2O and conducted pH, FT-IR, and 13C NMR measurements. We observed that the changes in anion structure allowed for the modulation of cellulose solubility in [C4mpyr][OH]/H2O, thus establishing a simple and safe cellulose regeneration process. This regeneration process was also applied to enable the production of cellulose hydrogels. The hydrogel formed using this approach was revealed to be of a higher mechanical strength than that of an analogous hydrogel produced using the same dissolution solvent with addition of a cross-linker. The ability to produce cellulose-based hydrogels of different mechanical properties is expected to expand the possible applications.
Books and Other Publications
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技術情報協会, Nov 30, 2023 (ISBN: 9784861049927)
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シーエムシー出版, Aug 26, 2022 (ISBN: 9784781316741)
Presentations
491Professional Memberships
7Research Projects
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革新的GX技術創出事業(GteX), 国立研究開発法人科学技術振興機構, Oct, 2023 - Mar, 2028
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Grants-in-Aid for Scientific Research, Japan Society for the Promotion of Science, Apr, 2023 - Mar, 2026
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物質・デバイス領域共同研究課題, Apr, 2025 - Mar, 2026
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未利用木質バイオマスをセルロース源として活用するための新規バイオマスプラスチックの製造方法の構築と製品開発に関する調査研究, 福島国際研究教育機構, Feb, 2025 - Mar, 2026
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科学研究費助成事業, 日本学術振興会, Apr, 2023 - Mar, 2026
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学術研究特別推進費「重点領域研究」, 上智大学, Jul, 2022 - Mar, 2025
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科学研究費助成事業, 日本学術振興会, Jul, 2022 - Mar, 2025
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研究開発・調査助成, 八洲環境技術振興財団, Apr, 2022 - Mar, 2023
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理工学部申請型(応募制), 上智大学, Jul, 2021 - Mar, 2022
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学術研究特別推進費「自由課題研究」, 上智大学, Apr, 2020 - Mar, 2022
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科学研究費助成事業, 日本学術振興会, Apr, 2019 - Mar, 2022
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学術研究特別推進費「自由課題研究」, 上智大学, Apr, 2019 - Mar, 2022
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Discovery Projects, Australian Research Council, 2020 - 2022
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研究助成, 公益財団法人 村田学術振興財団, Jun, 2020 - May, 2021
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二国間交流事業, 日本学術振興会, Apr, 2019 - Mar, 2021
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学術研究特別推進費「自由課題研究」, 上智大学, Apr, 2018 - Mar, 2020
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国際シンポジウム助成, 公益財団法人徳山科学技術振興財団, Mar, 2018
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第40回国際交流助成, 公益財団法人東京応化科学技術振興財団, Mar, 2018
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学術研究特別推進費「重点領域研究」, 上智大学, Apr, 2015 - Mar, 2018
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国際研究集会助成, 公益財団法人井上科学振興財団, Jan, 2018
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開催助成, 公益財団法人中部電気利用基礎研究振興財団, Sep, 2017
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科研費(基盤研究C), Apr, 2014 - Mar, 2017
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戦略的創造研究推進事業 先端的低炭素化技術開発(ALCA), 2016 - 2017
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第33回(平成29年度)研究会(学会)助成, 公益財団法人村田学術振興財団, 2017
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JST研究成果展開事業マッチングプランナープログラム「探索試験」, 2015 - 2016
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公益財団法人 村田学術振興財団, 2015 - 2016
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公益財団法人 村田学術振興財団, 2016
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公益財団法人 住友電工グループ社会貢献基金, Apr, 2013 - Mar, 2015
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Development of liquid zwitterion-type lithium ion conductive polymers with controlled nano-structureGrants-in-Aid for Scientific Research, Japan Society for the Promotion of Science, Apr, 2012 - Mar, 2014
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公益財団法人 東電記念財団, 2014
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公益財団法人 加藤科学振興会, 2014
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公益財団法人 徳山科学技術振興財団, 2014
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上智大学, 2009 - 2011
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上智大学, 2008 - 2010
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Grants-in-Aid for Scientific Research, Japan Society for the Promotion of Science, 2006 - 2008
Industrial Property Rights
23Social Activities
12Other
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Jun, 2018 - Jun, 2018I was the chairperson of 16th International Symposium on Polymer Electrolytes