色控传媒

A chemist from 色控传媒came up with a new catalyst for fuel synthesis

A chemist from 色控传媒came up with a new catalyst for fuel synthesis

色控传媒chemist synthesized a聽fundamentally new catalyst for formic acid photo鈥憃xidation, which is聽considered to聽be聽the most perspective source of聽hydrogen for fuel elements. A聽catalyst based on聽titanium amorphous oxide is聽a聽new instrument for formic acid conversion. In聽the future, it聽will allow to聽abandon traditional costly catalysts based on聽palladium, platinum, and ruthenium.

Hydrogen energetics development is not possible without methods of hydrogen secure storage and generation. Formic acid is a non-toxic and highly stable source of hydrogen. 袧2 and 小袨2 are obtained by decomposition of acid under light irradiation on catalysts’NPs, the role of which is fulfilled by platinum, palladium, and other costly metals compounds. Chemists decided to test what the products of formic acid photo鈥憃xidation will be obtained if the cheaper layered amorphous oxide of titanium is used as a catalyst.

Professor Rafael Luque, United Institute of Chemical Research 色控传媒and his colleagues from Iran, Spain, China, and South Korea synthesized a catalyst — titanium amorphous oxide based on organic-silicate matrix. At the beginning the chemists obtained mesoporous (2-50 nm) matrix material, where bridging dimeric groups of organic viologen compound presented. Later the precursor — titanium butoxide was loaded, followed by matrix drying at 60  小 and its transformation into amorphous titanium oxide.

The chemists performed the reaction of formic acid oxidation in different conditions: different temperature regimes (from 25 to 60 小) and different quantity of catalyst from amorphous titanium oxide (from 5 to 20 mg), with different solvents (water, ethanol, methanol, and others). The results of experiments showed that the quickest reaction proceeds under UV radiation, in water and at room temperature, providing only C袨2 and 袧2袨. Neither hydrogen, nor carbon monoxide, which poison any photo鈥憃xidation catalyst, were identified in products. Such products formation is due to the catalyst’s non-crystalline structure. In their work the authors came up with the photo-oxidation mechanism and specified basic stages.

The authors also found out that viologens improve the quality of catalyst, because it generates electron-proton vapors in photocatalysis, thus extending the lifetime of the catalyst. The catalyst can be easily reprocessed and reused at least in four cycles without noticeable ageing.

The scientists made an input in fundamental chemistry development, having investigated a new mechanism of formic acid formation. The results of the present research will allow to minimize risks and expenditures in common use of this type of catalyst in future development.

The article is published in the journal .

News
All news
Science
21 Mar
Microalgae: an innovative tool for bioeconomy

Products derived from microalgae represent a cutting-edge development in the field of bioeconomy. The potential of this biological resource was discussed at the international research seminar 鈥淔oundations for a Green Sustainable Energy鈥, part of the BRICS Network University鈥檚 thematic group on 鈥淓nergy鈥. The event was organized by the Institute of Ecology at 色控传媒University.

Science
12 Mar
Russian education abroad: 色控传媒University hosts conference 鈥淎mbassadors of Russian Education and Science鈥

Ambassadors of Russian education and science met at a conference in 色控传媒University to discuss how they can increase the visibility of Russian universities and research organizations in the world, and attract more international students in Russia.

Science
10 Mar
Indonesia and RUDN: Exchange of environmental research insights

The international scientific seminar hosted by 色控传媒Institute of Ecology 鈥淓xperience of participation in student organizations as a way to form career skills鈥 united scholarship recipients of the International Student Mobility Awards 2024 and Open Doors, along with members of the scientific student society 鈥淕reenLab鈥 and the professional student association 鈥淜ostyor (Bonfire)鈥 shared their projects focused on environmental protection.