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Taro Yamada

Showing results (61-70 of 78) with videos related to

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Angewandte Chemie (International Ed. in English)|March 22, 2017
Highly Active GaN-Stabilized Ta<sub>3</sub> N<sub>5</sub> Thin-Film Photoanode for Solar Water OxidationMiao Zhong, Takashi Hisatomi, Yutaka Sasaki, et al.
Small (Weinheim an Der Bergstrasse, Germany)|August 25, 2016
Highly Efficient Water Oxidation Photoanode Made of Surface Modified LaTiO<sub>2</sub> N ParticlesSeiji Akiyama, Mamiko Nakabayashi, Naoya Shibata, et al.
Chemical Science|June 7, 2021
Efficient photocatalytic hydrogen evolution on single-crystalline metal selenide particles with suitable cocatalystsShanshan Chen, Junie Jhon M Vequizo, Takashi Hisatomi, et al.
Chemsuschem|March 5, 2020
Efficient Water Oxidation Using Ta<sub>3</sub> N<sub>5</sub> Thin Film Photoelectrodes Prepared on Insulating Transparent SubstratesTomohiro Higashi, Hiroshi Nishiyama, Yuki Otsuka, et al.
Chemical Science|June 7, 2021
Self-activated Rh-Zr mixed oxide as a nonhazardous cocatalyst for photocatalytic hydrogen evolutionToshio Nishino, Masaki Saruyama, Zhanzhao Li, et al.
Chemical Communications (Cambridge, England)|October 12, 2017
Overall water splitting by photoelectrochemical cells consisting of (ZnSe)<sub>0.85</sub>(CuIn<sub>0.7</sub>Ga<sub>0.3</sub>Se<sub>2</sub>)<sub>0.15</sub> photocathodes and BiVO<sub>4</sub> photoanodesTomohiro Higashi, Hiroyuki Kaneko, Tsutomu Minegishi, et al.
Angewandte Chemie (International Ed. in English)|September 12, 2014
Enhancement of solar hydrogen evolution from water by surface modification with CdS and TiO2 on porous CuInS2 photocathodes prepared by an electrodeposition-sulfurization methodJiao Zhao, Tsutomu Minegishi, Li Zhang, et al.
Journal of the American Chemical Society|January 7, 2017
Particulate Photocatalyst Sheets Based on Carbon Conductor Layer for Efficient Z-Scheme Pure-Water Splitting at Ambient PressureQian Wang, Takashi Hisatomi, Yohichi Suzuki, et al.
Nature Materials|June 19, 2019
Oxysulfide photocatalyst for visible-light-driven overall water splittingQian Wang, Mamiko Nakabayashi, Takashi Hisatomi, et al.
Chemical Science|April 19, 2019
An Al-doped SrTiO<sub>3</sub> photocatalyst maintaining sunlight-driven overall water splitting activity for over 1000 h of constant illuminationHao Lyu, Takashi Hisatomi, Yosuke Goto, et al.
Pageof 8

Showing results (61-70 of 78) with videos related to

Sort By:
Pageof 8
Angewandte Chemie (International Ed. in English)|March 22, 2017
Highly Active GaN-Stabilized Ta<sub>3</sub> N<sub>5</sub> Thin-Film Photoanode for Solar Water OxidationMiao Zhong, Takashi Hisatomi, Yutaka Sasaki, et al.
Small (Weinheim an Der Bergstrasse, Germany)|August 25, 2016
Highly Efficient Water Oxidation Photoanode Made of Surface Modified LaTiO<sub>2</sub> N ParticlesSeiji Akiyama, Mamiko Nakabayashi, Naoya Shibata, et al.
Chemical Science|June 7, 2021
Efficient photocatalytic hydrogen evolution on single-crystalline metal selenide particles with suitable cocatalystsShanshan Chen, Junie Jhon M Vequizo, Takashi Hisatomi, et al.
Chemsuschem|March 5, 2020
Efficient Water Oxidation Using Ta<sub>3</sub> N<sub>5</sub> Thin Film Photoelectrodes Prepared on Insulating Transparent SubstratesTomohiro Higashi, Hiroshi Nishiyama, Yuki Otsuka, et al.
Chemical Science|June 7, 2021
Self-activated Rh-Zr mixed oxide as a nonhazardous cocatalyst for photocatalytic hydrogen evolutionToshio Nishino, Masaki Saruyama, Zhanzhao Li, et al.
Chemical Communications (Cambridge, England)|October 12, 2017
Overall water splitting by photoelectrochemical cells consisting of (ZnSe)<sub>0.85</sub>(CuIn<sub>0.7</sub>Ga<sub>0.3</sub>Se<sub>2</sub>)<sub>0.15</sub> photocathodes and BiVO<sub>4</sub> photoanodesTomohiro Higashi, Hiroyuki Kaneko, Tsutomu Minegishi, et al.
Angewandte Chemie (International Ed. in English)|September 12, 2014
Enhancement of solar hydrogen evolution from water by surface modification with CdS and TiO2 on porous CuInS2 photocathodes prepared by an electrodeposition-sulfurization methodJiao Zhao, Tsutomu Minegishi, Li Zhang, et al.
Journal of the American Chemical Society|January 7, 2017
Particulate Photocatalyst Sheets Based on Carbon Conductor Layer for Efficient Z-Scheme Pure-Water Splitting at Ambient PressureQian Wang, Takashi Hisatomi, Yohichi Suzuki, et al.
Nature Materials|June 19, 2019
Oxysulfide photocatalyst for visible-light-driven overall water splittingQian Wang, Mamiko Nakabayashi, Takashi Hisatomi, et al.
Chemical Science|April 19, 2019
An Al-doped SrTiO<sub>3</sub> photocatalyst maintaining sunlight-driven overall water splitting activity for over 1000 h of constant illuminationHao Lyu, Takashi Hisatomi, Yosuke Goto, et al.
Pageof 8