posted on 2021-01-12, 15:48authored byEkaterina K. Khrapova, Valery L. Ugolkov, Elena A. Straumal, Sergey A. Lermontov, Vasily A. Lebedev, Daniil A. Kozlov, Tatyana S. Kunkel, Alexandre Nominé, Stephanie Bruyere, Jaafar Ghanbaja, Thierry Belmonte, Andrei A. Krasilin
Here we report on the thermal properties of Mg−Ni‐phyllosilicate nanoscrolls as a promising precursor for production of Ni/silicate composite catalysts. Spontaneous scrolling of the phyllosilicate layer originating from size difference between metal‐oxygen and silica sheets provides high surface area of the catalyst. Metal nanoparticles can be obtained directly from the matrix by H2 reduction. The phyllosilicate structure passed through a number of transformations including partial dehydroxylation with formation of sepiolite‐like phase followed by silicate or oxide crystallization. Temperature ranges of these transitions overlapped with the reduction process sophisticating the H2 consumption profiles. In particular, some amount of Ni2+ got sealed up by the sepiolite structural features, that opened a path for the tuning of Ni0 : Ni2+ ratio of the catalyst. An increase of Ni content in the system yielded a decrease in the metal nanoparticles sizes due to both high intensity of nucleation and type of residual matrix. Ni nanoparticles size distribution and specific surface area of the composite catalysts governed conversion rate of hexene‐1 and acetone hydrogenation. In the view of the turnover frequency MgNi2Si2O5(OH)4 precursors were slightly more preferable than pure Ni3Si2O5(OH)4.
Funding
Acquisition and Use of Genitive Construction in Samoan
Directorate for Social, Behavioral & Economic Sciences
Russian Science Foundation, French Ministry of Higher Education
Rights
This is the peer reviewed author version of the following articleThermal behavior of Mg-Ni-phyllosilicate nanoscrolls and performance of the resulting composites in hexene-1 and acetone hydrogenation: 2021, ChemNanoMat, which has been published in final form at https://doi.org/10.1002/cnma.202000573 This article may be used for non-commercial purposes in accordance with Wiley Terms and Conditions for Self-Archiving. http://olabout.wiley.com/WileyCDA/Section/id-828039.html#terms