TY - JOUR
T1 - Reductive silylation of polyoxovanadate surfaces using Mashima's reagent
AU - Chakraborty, Sourav
AU - Matson, Ellen M.
N1 - Publisher Copyright:
© 2021 the Partner Organisations.
PY - 2021/10/21
Y1 - 2021/10/21
N2 - Here, we present the first example of reductive silylation for oxygen defect formation at the surface of a polyoxometalate. Upon addition of 1,4-bis(trimethylsilyl)dihydropyrazine (Pyz(SiMe3)2) to [V6O7(OMe)12]1-, quantitative formation of the oxygen-deficient vanadium oxide assembly, [V6O6(OMe)12]1- was observed. Substoichiometric reactions of Pyz(SiMe3)2 with the parent cluster revealed the mechanism of defect formation; addition of 0.5 equiv. of Pyz(SiMe3)2 to [V6O7(OMe)12]1- results in isolation of [V6O6(OSiMe3)(OMe)12]1-. This reactivity was extended to reduced and oxidized forms of the cluster, [V6O7(OMe)12]n (n = 2-, 0), revealing the consequences of modifying the oxidation states of remote transition metal ions on the stability of the siloxide functional group, and thus the extent of reactivity of the cluster surface with Pyz(SiMe3)2. The work offers a new understanding of the mechanisms of surface activation of reducible metal oxides via reductive silylation, and reveals new chemical routes for the formation of oxygen atom vacancies in polyoxometalate ions.
AB - Here, we present the first example of reductive silylation for oxygen defect formation at the surface of a polyoxometalate. Upon addition of 1,4-bis(trimethylsilyl)dihydropyrazine (Pyz(SiMe3)2) to [V6O7(OMe)12]1-, quantitative formation of the oxygen-deficient vanadium oxide assembly, [V6O6(OMe)12]1- was observed. Substoichiometric reactions of Pyz(SiMe3)2 with the parent cluster revealed the mechanism of defect formation; addition of 0.5 equiv. of Pyz(SiMe3)2 to [V6O7(OMe)12]1- results in isolation of [V6O6(OSiMe3)(OMe)12]1-. This reactivity was extended to reduced and oxidized forms of the cluster, [V6O7(OMe)12]n (n = 2-, 0), revealing the consequences of modifying the oxidation states of remote transition metal ions on the stability of the siloxide functional group, and thus the extent of reactivity of the cluster surface with Pyz(SiMe3)2. The work offers a new understanding of the mechanisms of surface activation of reducible metal oxides via reductive silylation, and reveals new chemical routes for the formation of oxygen atom vacancies in polyoxometalate ions.
UR - http://www.scopus.com/inward/record.url?scp=85117358554&partnerID=8YFLogxK
U2 - 10.1039/d1qi00920f
DO - 10.1039/d1qi00920f
M3 - Article
AN - SCOPUS:85117358554
SN - 2052-1545
VL - 8
SP - 4507
EP - 4516
JO - Inorganic Chemistry Frontiers
JF - Inorganic Chemistry Frontiers
IS - 20
ER -