Zobrazeno 1 - 10
of 27
pro vyhledávání: '"Juntaro, Seki"'
Autor:
Naohiko Kato, Yasuaki Kawai, Natsumi Nojiri, Masahito Shiozawa, Yoshihiro Kikuzawa, Nobuaki Suzuki, Satoru Kosaka, Yuichi Kato, Juntaro Seki, Tsuyoshi Hamaguchi, Yasuhiko Takeda
Publikováno v:
ACS Omega, Vol 9, Iss 10, Pp 11646-11657 (2024)
Externí odkaz:
https://doaj.org/article/43bbc3477cfe41b3bfd14c412ac21401
Autor:
Yoko Hase, Yasuhiro Komori, Takayoshi Kusumoto, Takashi Harada, Juntaro Seki, Tohru Shiga, Kazuhide Kamiya, Shuji Nakanishi
Publikováno v:
Nature Communications, Vol 10, Iss 1, Pp 1-9 (2019)
Understanding the fundamental chemistry in Li-O2 battery holds importance to the development of superior energy devices. Here the authors report that the oxygen reduction reaction in Li-O2 battery exhibits negative differential resistance, which can
Externí odkaz:
https://doaj.org/article/b075596446654e6fb2a4cbe45f61465a
Autor:
Yoko Hase, Takeshi Uyama, Kiho Nishioka, Juntaro Seki, Kota Morimoto, Nobuhiro Ogihara, Yoshiharu Mukouyama, Shuji Nakanishi
Publikováno v:
Journal of the American Chemical Society. 144:1296-1305
Autor:
Yoko Hase, Yasuhiro Komori, Takayoshi Kusumoto, Takashi Harada, Juntaro Seki, Tohru Shiga, Kazuhide Kamiya, Shuji Nakanishi
Publikováno v:
Nature Communications, Vol 10, Iss 1, Pp 1-1 (2019)
The original version of this Article contained an error in the title, which was previously incorrectly given as ‘Negative differential resistance as a critical indicator for the discharge capacity of lithium-oxygene batteries’. The correct versio
Externí odkaz:
https://doaj.org/article/54dd81504eef47abab64dc1c74c477fe
Autor:
Masanori Inaba, Yuji Kamitaka, Juntaro Seki, Yu Morimoto, Noritomo Suzuki, Yasuji Kimoto, Satoru Kosaka, Kensaku Kodama
Publikováno v:
Electrocatalysis. 12:188-198
Platinum thin films on non-precious stable support materials are a promising form as oxygen reduction reaction (ORR) catalyst in the face of the tradeoff issue between the activity and durability for conventional Pt-based nanoparticles. However, supp
Autor:
Kiho Nishioka, Yoko Hase, Juntaro Seki, Takayoshi Kusumoto, Yasuhiro Komori, Kazuhide Kamiya, Shuji Nakanishi
Publikováno v:
The Journal of Physical Chemistry Letters. 11:7657-7663
Enhancement of the discharge capacity of lithium-oxygen batteries (LOBs) while maintaining a high cell voltage is an important challenge to overcome and set the energy density closer to ideal. Both the cell voltage and discharge capacity of an LOB co
Autor:
Tomiko M. Suzuki, Juntaro Seki, Ayako Oshima, Toshitaka Ishizaki, Yoriko Matsuoka, Kosuke Kitazumi, Satoru Kosaka, Keita Sekizawa, Naoko Takahashi, Takeshi Morikawa, Noritake Isomura, Keiichiro Oh-ishi
Publikováno v:
Chemical Communications. 56:15008-15011
Oxide-derived Cu-Ni (3-32 at%-Ni) alloy nanoparticles with a size of 10 nm enhance selectivity for ethylene and ethanol formation over oxide-derived Cu nanoparticles by electrochemical CO2 reduction. X-ray absorption spectroscopy measurements suggest
Autor:
Naoko Takahashi, Juntaro Seki, Sebastian Proch, Shuhei Yoshino, Kensaku Kodama, Yu Morimoto, Kousuke Kitazumi
Publikováno v:
Electrocatalysis. 11:14-24
“Approximate” Pt layers hold great promise to be highly active and durable oxygen reduction reaction (ORR) catalysts. Electrodeposition of such layers on relevant catalyst supports, for example TiOx, requires the application of a “Pt-on-Pt” d
Publikováno v:
Electrocatalysis. 10:591-603
An “approximate” Pt monolayer is a desirable morphology for oxygen reduction reaction (ORR) catalysts with high mass activity. Such structures can, reliably, be synthesized on gold by monolayer-limited CO- or over-potential deposited hydrogen (Ho
Autor:
Shuji Nakanishi, Takashi Harada, Takayoshi Kusumoto, Yasuhiro Komori, Juntaro Seki, Tohru Shiga, Yoko Hase, Kazuhide Kamiya
Publikováno v:
Nature Communications, Vol 10, Iss 1, Pp 1-9 (2019)
Nature Communications
Nature Communications
In non-aqueous lithium-oxygen batteries, the one-electron reduction of oxygen and subsequent lithium oxide formation both occur during discharge. This lithium oxide can be converted to insulating lithium peroxide via two different pathways: a second