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| 1 | Trimetallic nanoparticles having a Au-core structure 显示文摘 | Naoki Toshima Rei Ito Toru Matsushita | 2007 | Catalysis Today2007,122,34: | 1 |
| 2 | 显示文摘 | Izuru Suglura Makoto Komiyama Naoki Toshima | 1989 | Bull Chem Soc jpn1989,62,: | 1 |
| 3 | Trimetallic nanoparticles having a Au-core structure显示文摘 | Naoki Toshima Rei Ito Toru Matsushita | 2007 | Catalyst To- day2007,122,: | 1 |
| 4 | Polymer and micelle-protected gold/platinum bimetallic systems: Preparation, application to catalysis for visible-light-induced hydrogen evolution, and analysis of formation process with optical methods显示文摘 | Tetsu Yonezawa Naoki Toshima | 1993 | Mol Catal1993,83,12: | 1 |
| 5 | Bimetallic Nanoparticles Novel Materials for Chemical and Physical Applications显示文摘 | Naoki Toshima Tetsu Yonezawa | 1998 | New Journal of Chemistry1998,,22: | 1 |
| 6 | Laparoscopic cholecystectomy and common bile duct exploration for cholecystocholedocholithiasis with a left-sided gallbladder: Report of a case显示文摘 | Naoki Matsumura Hiromi Tokumura Akihiro Yasumoto Hiroyuki Sasaki Mitsuo Yamasaki Hiroaki Musya Shoji Fukuyama Kenichi Takahashi Takashi Toshima Yuji Funayama | 2009 | Surgery Today2009,,3: | 1 |
| 7 | Novel synthesis of polyaniline using iron(Ⅲ) catalyst and ozone显示文摘 | NAOKI TOSHIMA HU YAN MASASHI KAJITA | 2000 | Chemistry Letters2000,25,: | 1 |
| 8 | Trimetallic nanoparticles having a Au-core structure显示文摘 | Naoki Toshima Rei Ito Toru Matsushita | 2007 | Catalysis Today2007,122,34: | 1 |
| 9 | Thermal Transporting Properties of Electrically Conductive Polyaniline Films as Organic Thermoelectric Materials显示文摘 | Hu Yan Norina Sada Naoki Toshima | 2002 | Journal of Thermal Analysis and Calorimetry2002,69,: | 1 |
| 10 | Catalytic activityand structural analysis of polymer-protected gold/palladium bimetallic clusters prepared by the successive reduction of hydrogen tetrachloroaurate(Ⅲ) and palladium dichloride显示文摘 | Masafumi Harada Klyotaka Asakura Naoki Toshima | 1993 | Journal of Physical Chemistry1993,97,: | 1 |
| 11 | Novel synthesis of polyaniline using iron(Ⅲ) catalyst and ozone显示文摘 | NAOKI TOSHIMA HU YAN MASASHI KAJITA | 2000 | Chemistry Letters2000,,: | 1 |
| 12 | Oxidation of ethylene catalyzed by colloidal dispersions of poly(sodium acrylate)-protected silver nanoclusters显示文摘 | Yukihide Shiraishi Naoki Toshima | 2000 | Colloids and Surfaces A: Physicochemical and Engineering Aspects2000,,1: | 1 |
| 13 | Effect of Additional Metal Ions on Catalyses of Polymer-Stabilized Metal Nanoclusters显示文摘 | Naoki Toshima Yukihide Shiraishi Toshiharu Teranishi | 2001 | Journal of Molecular Catalysis A : Chemical2001,177,: | 1 |
| 14 | Water-resistant organic thermoelectric generator with >10μW output显示文摘Flexible p–n thermoelectric generator(TEG)technology has rapidly advanced with power enhancement and size reduction.To achieve a stable power supply and highly efficient energy conversion,absolute chemical stability of n-type materials is essential to ensuring large temperature differences between device terminals and ambient stability.With the aim of improving the long-term stability of the n-type operation of carbon nanotubes(CNTs)in air and water,this study uses cationic surfactants,such as octylene-1,8-bis(dimethyldodecylammonium bromide)(12-8-12),a gemini surfactant,to stabilize the nanotubes in a coating,which retains the n-doped state for more than 28 days after exposure to air and water in experiments.TEGs with 10 p-n units of 12-8-12/CNT(n-type)and sodium dodecylbenzene sulfonate/CNT(p-type)layers are manufactured,and their water stability is evaluated.The initial maximum output of 16.1μW(75 K temperature difference)is retained after water immersion for 40 days without using a sealant to prevent TEG module degradation.The excellent stability of these CNT-based TEGs makes them suitable for underwater applications,such as battery-free health monitoring and information gathering systems,and facilitates the development of soft electronics. | Shinichi Hata Kanto Maeshiro Misaki Shiraishi Soichiro Yasuda Yuta Shiozaki Koudai Kametani Yukou Du Yukihide Shiraishi Naoki Toshima | 2023 | Carbon Energy2023,5,4: | 0 |
| 15 | 纳米微粒与LCD:一个令人惊奇的世界显示文摘把纳米微粒加进液晶显示器(LCD)的主要媒介之中,将引发液晶材料几乎所有的物理性能发生改变,导致工作电压和响应时间均下降。这种技术可能是不需要进行化学分析来提高液晶材料性能的备选方案。 | Shunsuke Kobayashi Naoki Toshima 代永平 | 2008 | 现代显示2008,,4: | 0 |
| 16 | Green Route for Fabrication of Water-Treatable Thermoelectric Generators显示文摘Since future energy harvesting technologies require stable supply and high-efficiency energy conversion,there is an increasing demand for high-performance organic thermoelectric generators(TEGs)based on waterproof thermoelectric materials.The poor stability of n-type organic semiconductors in air and water has proved a roadblock in the development of reliable thermoelectric power generators.We developed a simple green route for preparing n-type carbon nanotubes(CNTs)by doping with cationic surfactants and fabricated films of the doped CNTs using only aqueous media.The thermoelectric properties of the CNT films were investigated in detail.The nanotubes doped using a cationic surfactant(cetyltrimethylammonium chloride(CTAC))retained an n-doped state for at least 28 days when exposed to water and air,indicating higher stability than that for contemporary CNT-based thermoelectric materials.The wrapping of the surfactant molecules around the CNTs is responsible for blocking oxygen and water from attacking the CNT walls,thus,extending the lifetime of the n-doped state of the CNTs.We also fabricated thermoelectric power conversion modules comprising CTAC-doped(n-type)and sodium dodecylbenzenesulfonate-(SDBS-)doped(p-type)CNTs and tested their stabilities in water.The modules retained 80±2:4%of their initial maximum output power(at a temperature difference of 75℃)after being submerged in water for 30 days,even without any sealing fills to prevent device degradation.The remarkable stability of our CNT-based modules can enable the development of reliable soft electronics for underwater applications. | Shinichi Hata Misaki Shiraishi Soichiro Yasuda Gergely Juhasz Yukou Du Yukihide Shiraishi Naoki Toshima | 2022 | Energy Material Advances2022,,1: | 0 |