Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Ko Ariga is active.

Publication


Featured researches published by Ko Ariga.


Journal of Nanoscience and Nanotechnology | 2018

An Isomorphously Substituted Fe-BEA Zeolite with High Fe Content: Facile Synthesis and Characterization

Yusuke Naraki; Ko Ariga; Hideyuki Oka; Hirokazu Kurashige; Tsuneji Sano

An isomorphously substituted Al-free Fe-BEA zeolite with extremely high Fe content (~7 wt.%) was synthesized by a facile and industrially friendly method using an excess amount of NaOH. The obtained Fe-BEA zeolite was highly crystalline and showed a well-facetted bipyramidal morphology, similarly to beta zeolites synthesized in a fluoride medium. The chemical states of Fe in the above zeolite were investigated by diffuse reflectance ultraviolet-visible (UV-Vis) absorption spectroscopy, electron paramagnetic resonance (EPR) spectroscopy, and X-ray absorption fine structure (XAFS) spectroscopy. The observed chemical states were similar to those of the Fe-BEA zeolite synthesized in the presence of fluoride (Fe-BEA-F). Considering the fact that more than 88% of the micropore volume of the calcined Fe-BEA zeolite was retained after hydrothermal treatment at 1000 °C for 5 h, and 53% of the tetrahedrally coordinated Fe3+ was retained after hydrothermal treatment at 700 °C for 20 h, the obtained Fe-BEA zeolite was concluded to be highly hydrothermally stable. The synthesized zeolite was evaluated in the selective catalytic reduction of NOx by ammonia (NH3-SCR), exhibiting greater catalytic activity than Fe-BEA-F throughout the reaction temperature range. Moreover, the potential of this catalyst as a hydrocarbon adsorbent for cold-start emission control was characterized by dynamic adsorption-desorption of toluene. Interestingly, only 66% of adsorbed toluene was desorbed from the Fe-BEA zeolite (cf. 96% for commercial beta zeolite), even though the gas stream did not contain oxygen, suggesting that hydrocarbon oxidation involved oxygen stored inside the Fe-BEA zeolite.


Archive | 2009

Chabazite-type zeolite and process for production of same

Ko Ariga; Hidekazu Aoyama


Archive | 2012

B-TYPE IRON SILICATE COMPOSITION AND METHOD FOR REDUCING NITROGEN OXIDES

Yusuke Naraki; Ko Ariga


Archive | 2005

beta-ZEOLITE AND METHOD OF REMOVING NITROGEN OXIDES BY USING THE SAME

Ko Ariga; Masao Nakano; Hiroshi Ogawa; Koichi Sato; 雅雄 中野; 公一 佐藤; 宏 小川; 耕 有賀


Archive | 2006

Beta-type zeolite for scr catalyst and method for removing nitrogen oxide by using the same

Hidekazu Aoyama; Ko Ariga; Hiroshi Ogawa; Keisuke Tokunaga; 宏 小川; 敬助 徳永; 耕 有賀; 英和 青山


Archive | 2007

ß-ZEOLITE FOR SCR CATALYST AND METHOD FOR PURIFYING NITROGEN OXIDES USING SAME

Keisuke Tokunaga; Hiroshi Ogawa; Ko Ariga; Hidekazu Aoyama


Archive | 2007

type zeolite for scr catalyst and method for converting nitrogen oxide using the zeolite

Keisuke Tokunaga; Hiroshi Ogawa; Ko Ariga; Hidekazu Aoyama


Archive | 2011

CHABAZITE-TYPE ZEOLITE AND METHOD FOR PRODUCING SAME, COPPER LOADED LOW-SILICA ZEOLITE AND NOX REDUCTIVE REMOVAL CATALYST CONTAINING THE ZEOLITE, AND METHOD OF NOX REDUCTIVE REMOVAL USING THIS CATALYST

Ko Ariga; Hidekazu Aoyama; Yuuki Ito


Archive | 2006

Nitrogen oxide purification catalyst and method

Hidekazu Aoyama; Ko Ariga; Yusuke Naraki; 耕 有賀; 祐介 楢木; 英和 青山


Archive | 2011

Chabazite type zeolite and process for production thereof, copper-carrying low-silica zeolite, nox reductive elimination catalyst including said zeolite, and method for reductive elimination of nox employing said catalyst

Ko Ariga; Hidekazu Aoyama; Yuuki Ito

Collaboration


Dive into the Ko Ariga's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar

Hideyuki Oka

Japan Advanced Institute of Science and Technology

View shared research outputs
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge