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Mechanistic Investigation of the Formation of Nickel Nanocrystallites Embedded in Amorphous Silicon Nitride Nanocomposites. | LitMetric

AI Article Synopsis

  • The study explores how nickel (Ni) nanocrystallites are formed during the creation of amorphous silicon nitride at low temperatures (400 °C), using perhydropolysilazane (PHPS) and nickel chloride (NiCl) as key materials.
  • Nickel chloride acts as a catalyst to initiate reactions that combine silicon and nitrogen components in PHPS, ultimately creating a nanocomposite by forming silylamino groups and coordinating them with Ni(II) ions.
  • During pyrolysis, a nucleophilic reaction forms Ni-N bonds, leading to Ni nanocrystallite growth below 300 °C, which is enhanced by hydrogen-rich conditions resulting from the prior reactions, culminating in a strong SiN

Article Abstract

Herein, we report the mechanistic investigation of the formation of nickel (Ni) nanocrystallites during the formation of amorphous silicon nitride at a temperature as low as 400 °C, using perhydropolysilazane (PHPS) as a preformed precursor and further coordinated by nickel chloride (NiCl); thus, forming the non-noble transition metal (TM) as a potential catalyst and the support in an one-step process. It was demonstrated that NiCl catalyzed dehydrocoupling reactions between Si-H and N-H bonds in PHPS to afford ternary silylamino groups, which resulted in the formation of a nanocomposite precursor via complex formation: Ni(II) cation of NiCl coordinated the ternary silylamino ligands formed in situ. By monitoring intrinsic chemical reactions during the precursor pyrolysis under inert gas atmosphere, it was revealed that the Ni-N bond formed by a nucleophilic attack of the N atom on the Ni(II) cation center, followed by Ni nucleation below 300 °C, which was promoted by the decomposition of Ni nitride species. The latter was facilitated under the hydrogen-containing atmosphere generated by the NiCl-catalyzed dehydrocoupling reaction. The increase of the temperature to 400 °C led to the formation of a covalently-bonded amorphous SiN matrix surrounding Ni nanocrystallites.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9145008PMC
http://dx.doi.org/10.3390/nano12101644DOI Listing

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