Preparation of palladated porous nitrogen-doped carbon using halloysite as porogen: disclosing its utility as a hydrogenation catalyst

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作者
Samahe Sadjadi
Masoumeh Malmir
Giuseppe Lazzara
Giuseppe Cavallaro
Majid M. Heravi
机构
[1] Faculty of Petrochemicals,Gas Conversion Department
[2] Iran Polymer and Petrochemicals Institute,Department of Chemistry, School of Science
[3] Alzahra University,Dipartimento di Fisica e Chimica
[4] Università degli Studi di Palermo,undefined
[5] Viale delle Scienze,undefined
[6] pad. 17,undefined
[7] Consorzio Interuniversitario Nazionale per la Scienza e Tecnologia dei Materiali,undefined
[8] INSTM,undefined
[9] Via G. Giusti,undefined
[10] 9,undefined
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Scientific Reports | / 10卷
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摘要
In this article, halloysite nanoclay (Hal) was used as porogen for the synthesis of nitrogen doped porous carbon material with high specific surface area and pore volume. To this purpose, polymerization of melamine and terephthalaldehyde (MT) was performed in the presence of amine-functionalized carbon coated Hal (Hal@Glu-2N) that was prepared from hydrothermal treatment of Hal and glucose. Then, the prepared nanocomposite was palladated and carbonized to afford Pd@Hal@C. To further improve the textural properties of the nanocomposite, and introduce more pores in its structure, Hal nanotubes were etched. The characterization of the resulting compound, Pd@C, and comparing it with Pd@Hal@C, showed that etching of Hal significantly increased the specific surface area and pore volume in Pd@C. Pd@C was successfully used as a heterogeneous catalyst for promoting hydrogenation of nitroarens in aqueous media using hydrogen with atmospheric pressure as a reducing agent. The comparison of the structural features and catalytic activity of the catalyst with some control catalysts, including, Pd@Hal, Pd@Hal@Glu, Pd@Hal@Glu-MT and Pd@Hal@C confirmed that nitrogen groups in C could improve the Pd anchoring and suppress its leaching, while etching of Hal and introduction of more pores could enhance the catalytic activity through facilitating the mass transfer.
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