Effect of sn incorporation on the thermal transformation and reducibility of M(II)Al-layered double hydroxides [M(II) = Ni or Co]

Citation
S. Velu et al., Effect of sn incorporation on the thermal transformation and reducibility of M(II)Al-layered double hydroxides [M(II) = Ni or Co], CHEM MATER, 12(3), 2000, pp. 719-730
Citations number
38
Categorie Soggetti
Apllied Physucs/Condensed Matter/Materiales Science","Material Science & Engineering
Journal title
CHEMISTRY OF MATERIALS
ISSN journal
08974756 → ACNP
Volume
12
Issue
3
Year of publication
2000
Pages
719 - 730
Database
ISI
SICI code
0897-4756(200003)12:3<719:EOSIOT>2.0.ZU;2-O
Abstract
Our recent study on the incorporation of Sn in the lattice of MgAl-layered double hydroxides (LDHs) indicated that about 30 atom % of Al3+ could be is omorphously substituted by Sn4+ to form a new MgAlSn ternary LDH. In the pr esent study, similar NiAlSn- and CoAlSn-LDHs were synthesized by a coprecip itation method. The influence of Sn on the thermal transformation and redox properties of NiAl- and CoAl-LDHs and their thermally derived products wer e investigated by X-ray powder diffraction (XRD), thermogravimetry/differen tial thermal analyses (TG/DTA), and temperature-programmed reduction (TPR) methods. The thermal transformation and reducibility of NiAlSn-LDH were dif ferent from that of the CoAlSn-LDH. Sn crystallized out as a SnO2 phase alo ng with NiO and NiAl2O4 phases from NiAlSn-LDH calcined above 900 degrees C . On the other hand, a mixture of nonstoichiometric Co-spinel and Co2SnO4 i nverse spinel phases was noticed from CoAlSn-LDH. The TPR profiles of NiAl- LDH and its calcined products exhibited peaks for the reduction of Ni2+ spe cies existing in different chemical environments while an additional peak f or the reduction of Sn4+ --> Sn-o was observed in the Sn-containing counter parts. The Sn incorporation greatly enhanced the reducibility of Ni-contain ing phases. The CoAl- and CoAlSn-LDH and their calcined products exhibited complex TPR profiles. At least three different reduction regions were ident ified. They were assigned to the reduction of Co2+-Co3+ (Co3O4-like) specie s (region I, between 250 and 450 degrees C), Co3O4-like species containing Al3+ or CoAl2O4-like species containing Co3+ (region II, 500-550 degrees C) and Co2+-Al3+ (CoAl2O4-like) species(region III, above 550 degrees C). In contrast to that observed in the Ni-containing analogues the reducibility o f Co species in these samples was found to decrease upon Sn incorporation.