Sign in to use this feature.

Years

Between: -

Subjects

remove_circle_outline
remove_circle_outline
remove_circle_outline

Journals

Article Types

Countries / Regions

Search Results (3)

Search Parameters:
Keywords = nickel(II) perrhenate

Order results
Result details
Results per page
Select all
Export citation of selected articles as:
24 pages, 4914 KB  
Article
Research on the Production of Methyltrioxorhenium and Heterogenous Catalysts from Waste Materials
by Joanna Malarz, Karolina Goc, Mateusz Ciszewski, Karolina Pianowska, Patrycja Wróbel, Łukasz Hawełek, Dorota Kopyto and Katarzyna Leszczyńska-Sejda
Crystals 2025, 15(8), 717; https://doi.org/10.3390/cryst15080717 - 8 Aug 2025
Viewed by 1425
Abstract
This paper presents the research results on the synthesis of rhenium catalysts MTO, Re2O7/Al2O3, and M-Re2O7/Al2O3 (where M = Ni, Ag, Co, Cu) from rhenium compounds (ammonium perrhenate, [...] Read more.
This paper presents the research results on the synthesis of rhenium catalysts MTO, Re2O7/Al2O3, and M-Re2O7/Al2O3 (where M = Ni, Ag, Co, Cu) from rhenium compounds (ammonium perrhenate, perrhenic acid, nickel(II) perrhenate, cobalt(II) perrhenate, zinc perrhenate, silver perrhenate, and copper(II) perrhenate) derived from waste materials. Methyltrioxorhenium (MTO) was obtained from silver perrhenate with a yield of over 80%, whereas when using nickel(II), cobalt(II), and zinc perrhenates, the product was contaminated with tin compounds and the yield did not exceed 17%. The Re2O7/Al2O3 and M-Re2O7/Al2O3 catalysts were obtained from the above-mentioned rhenium compounds. Alumina obtained in a calcination process of aluminum nitrate nonahydrate was used as a support. The catalysts were characterized in terms of their chemical and phase composition and physicochemical properties. Catalytic activity in model reactions, such as cyclohexene epoxidation and hex-1-ene homometathesis, was also studied. MTO obtained from silver perrhenate showed >70% activity in the epoxidation reaction, thus surpassing commercial MTO (1.0 mol% MTO, room temperature, and reaction time—2 h). Ag-Re2O7/Al2O3, Cu-Re2O7/Al2O3, and H-Re2O7/Al2O3 catalysts were inactive, while Co-Re2O7/Al2O3 and Ni-Re2O7/Al2O3 showed low activity (<43%) in the hex-1-ene homometathesis reaction. Only Re2O7/Al2O3 catalysts achieved >70% activity in this reaction (2.5 wt% Re, room temperature, and reaction time—2 h). The results indicate the potential of using rhenium compounds derived from waste materials to synthesize active catalysts for chemical processes. Full article
Show Figures

Figure 1

18 pages, 7025 KB  
Article
A New Method of Obtaining High Purity Nickel(II) Perrhenate from Waste
by Katarzyna Leszczyńska-Sejda, Grzegorz Benke, Dorota Kopyto, Joanna Malarz, Mateusz Ciszewski and Karolina Goc
Crystals 2023, 13(10), 1465; https://doi.org/10.3390/cryst13101465 - 7 Oct 2023
Cited by 3 | Viewed by 2876
Abstract
The article presents a new method of producing anhydrous nickel(II) perrhenate of high purity, entirely from waste from the national Cu industry. This method consists mainly of the reaction of water-washed nickel(II) oxide (obtained by purification in a mixture of alcohols, and subsequent [...] Read more.
The article presents a new method of producing anhydrous nickel(II) perrhenate of high purity, entirely from waste from the national Cu industry. This method consists mainly of the reaction of water-washed nickel(II) oxide (obtained by purification in a mixture of alcohols, and subsequent roasting of the Ni-containing sulfate semi-finished products (NSP) at 1200 °C) with perrhenic acid (obtained using the ion exchange method). After the dissolution of nickel(II) oxide in the acid (at a temperature in the range of 60–80 °C) and obtaining a pH of 5–8, the solution is sent to evaporate to dryness, also at a temperature not exceeding 80 °C. The obtained crude nickel(II) perrhenate is washed with methanol and subsequently dried at 160 °C to obtain its anhydrous form, with the following composition: 10.5% of Ni; 66.6% of Re; <5 ppm of Bi, As, Zn and Cu; <10 ppm Co, Mg, Fe, K, Pb, Na, Ca and Mo. Importantly, this composition allows for the use of the compound for the production of superalloys and catalysts. A patent application and a technological scheme were prepared for the developed method. It consists of seven technological operations, including six based on processes in the field of hydrometallurgy, and one in the field of pyrometallurgy (roasting). Full article
(This article belongs to the Topic Advances in Inorganic Synthesis)
Show Figures

Figure 1

10 pages, 8280 KB  
Article
Production of High-Purity Anhydrous Nickel(II) Perrhenate for Tungsten-Based Sintered Heavy Alloys
by Katarzyna Leszczyńska-Sejda, Grzegorz Benke, Dorota Kopyto, Tomasz Majewski and Michał Drzazga
Materials 2017, 10(4), 448; https://doi.org/10.3390/ma10040448 - 24 Apr 2017
Cited by 10 | Viewed by 4417
Abstract
This paper presents a method for the production of high-purity anhydrous nickel(II) perrhenate. The method comprises sorption of nickel(II) ions from aqueous nickel(II) nitrate solutions, using strongly acidic C160 cation exchange resin, and subsequent elution of sorbed nickel(II) ions using concentrated perrhenic acid [...] Read more.
This paper presents a method for the production of high-purity anhydrous nickel(II) perrhenate. The method comprises sorption of nickel(II) ions from aqueous nickel(II) nitrate solutions, using strongly acidic C160 cation exchange resin, and subsequent elution of sorbed nickel(II) ions using concentrated perrhenic acid solutions. After the neutralization of the resulting rhenium-nickel solutions, hydrated nickel(II) perrhenate is then separated and then dried at 160 °C to obtain the anhydrous form. The resulting compound is reduced in an atmosphere of dissociated ammonia in order to produce a Re-Ni alloy powder. This study provides information on the selected properties of the resulting Re-Ni powder. This powder was used as a starting material for the production of 77W-20Re-3Ni heavy alloys. Microstructure examination results and selected properties of the produced sintered heavy alloys were compared to sintered alloys produced using elemental W, Re, and Ni powders. This study showed that the application of anhydrous nickel(II) perrhenate in the production of 77W-20Re-3Ni results in better properties of the sintered alloys compared to those made from elemental powders. Full article
(This article belongs to the Section Manufacturing Processes and Systems)
Show Figures

Figure 1

Back to TopTop