CaO as Drop-In Colloidal Catalysts for the Synthesis of Higher Polyglycerols

Publication date

2015-03-23

Authors

Kirby, FionaISNI 0000000506785993
Nieuwelink, Anne Eva
Kuipers, BonnyORCID 0000-0002-0300-7190ISNI 0000000393666452
Kaiser, Anton
Bruijnincx, P.C.A.ISNI 0000000389623396
Weckhuysen, B.M.ORCID 0000-0001-5245-1426ISNI 0000000110540180

Editors

Advisors

Supervisors

Document Type

Article
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License

taverne

Abstract

Glycerol is an attractive renewable building block for the synthesis of polyglycerols, which find application in the cosmetic and pharmaceutical industries. The selective etherification of glycerol to higher oligomers was studied in the presence of CaO colloids and the data are compared with those obtained from NaOH and CaO. The materials were prepared by dispersing CaO, CaCO3, or Ca(OH)2 onto a carbon nanofiber (CNF) support. Colloidal nanoparticles were subsequently dispensed from the CNF into the reaction mixture to give CaO colloids that have a higher activity than equimolar amounts of bulk CaO and NaOH. Optimization of the reaction conditions allowed us to obtain a product with Gardner color number <2, containing no acrolein and minimal cyclic byproducts. The differences in the CaO colloids originating from CNF and bulk CaO were probed using light scattering and conductivity measurements. The results confirmed that the higher activity of the colloids originating from CaO/CNF was due to their more rapid formation and smaller size compared with colloids from bulk CaO. We thus have developed a practical method for the synthesis of polyglycerols containing low amounts of Ca.

Keywords

calcium, colloids, heterogeneous catalysis, nanostructures, oligomerization, Taverne, General Chemistry, SDG 7 - Affordable and Clean Energy

Citation

Kirby, F, Nieuwelink, A E, Kuipers, B W M, Kaiser, A, Bruijnincx, P C A & Weckhuysen, B M 2015, 'CaO as Drop-In Colloidal Catalysts for the Synthesis of Higher Polyglycerols', Chemistry - A European Journal, vol. 21, no. 13, pp. 5101-5109. https://doi.org/10.1002/chem.201405906