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University of Groningen Multifunctional catalytic systems for the conversion of glycerol to lactates Tang, Zhenchen

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University of Groningen

Multifunctional catalytic systems for the conversion of glycerol to lactates Tang, Zhenchen

IMPORTANT NOTE: You are advised to consult the publisher's version (publisher's PDF) if you wish to cite from it. Please check the document version below.

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Publication date: 2019

Link to publication in University of Groningen/UMCG research database

Citation for published version (APA):

Tang, Z. (2019). Multifunctional catalytic systems for the conversion of glycerol to lactates. University of Groningen.

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List of Publications

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List of Publications

(1) Tang, Z.; Fiorilli, S. L.; Heeres, H. J.; Pescarmona, P. P. Multifunctional Heterogeneous catalysts for the selective conversion of glycerol into methyl lactate. ACS Sustainable Chem. Eng.

2018, 6, 10923-10933.

(2) Tang, Z.; Boer, D. G.; Syariati, A.; Enache, M.; Rudolf, P.; Heeres, H. J.; Pescarmona, P. P. Base-free conversion of glycerol to methyl lactate using a multifunctional catalytic system consisting of Au-Pd nanoparticles on carbon nanotubes and Sn MCM-41-XS. Submitted.

(3) Tang, Z.; Cao, H.; Heeres, H. J.; Pescarmona, P. P. Pt/ZrO2 prepared by atomic trapping: an

efficient catalyst for the conversion of glycerol to lactic acid with concomitant transfer hydrogenation of cyclohexene. Submitted.

(4) Tang, Z.; Heeres, H. J.; Pescarmona, P. P. Transfer hydrogenation from glycerol over a Ni-Co/CeO2 catalyst: a highly efficient and sustainable route to lactic acid. Submitted.

(5) Piskun, A. S.; Ftouni, J.; Tang, Z.; Weckhuysen, B. M.; Bruijnincx, P. C. A.; Heeres, H. J. Hydrogenation of levulinic acid to γ-valerolactone over anatase-supported Ru catalysts: Effect of catalyst synthesis protocols on activity. Appl. Catal. A 2018, 549, 197-206.

(6) Wang, Y.; Agarwal, S.; Tang, Z.; Heeres, H. J. Exploratory catalyst screening studies on the liquefaction of model humins from C6 sugars. RSC Adv. 2017, 7, 5136-5147.

(7) Piskun, A. S.; de Haan, J. E.; Wilbers, E.; van de Bovenkamp, H. H.; Tang, Z.; Heeres, H. J. Hydrogenation of Levulinic Acid to γ-Valerolactone in Water Using Millimeter Sized Supported Ru Catalysts in a Packed Bed Reactor. ACS Sustainable Chem. Eng. 2016, 4, 2939-2950.

(8) Yin, W.; Tang, Z.; Venderbosch, R. H.; Zhang, Z.; Cannilla, C.; Bonura, G.; Frusteri, F.; Heeres, H. J. A One-Step Synthesis of C6 Sugar Alcohols from Levoglucosan and Disaccharides Using a Ru/CMK-3 Catalyst. ACS Catal. 2016, 6, 4411-4422.

(9) Piskun, A. S.; Winkelman, J. G. M.; Tang, Z.; Heeres, H. J. Support Screening Studies on the Hydrogenation of Levulinic Acid to γ-Valerolactone in Water Using Ru Catalysts. Catalysts. 2016, 6, 131.

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List of Attended Conferences

Tang, Z.; Heeres, H. J.; Pescarmona, P. P. Selective conversion of glycerol into methyl lactate by

supported gold nanoparticles and solid Lewis acid. NCCC XVII conference, Noordwijkerhout (The Netherlands), 7-9 March 2016. (poster presentation)

Tang, Z.; Heeres, H. J.; Pescarmona, P. P. Selective conversion of glycerol into methyl lactate

promoted by supported Au nanoparticles and mesoporous Lewis acid catalysts. NCCC XVIII

conference, Noordwijkerhout (The Netherlands), 6-8 March 2017. (oral presentation)

Tang, Z.; Heeres, H. J.; Pescarmona, P. P. Design of multifunctional heterogeneous catalysts for

the selective conversion of glycerol into methyl lactate. EUROPACAT 2017 conference, Florence (Italy), 27-31 August 2017. (oral presentation)

Tang, Z.; Heeres, H. J.; Pescarmona, P. P. Base-free conversion of glycerol to methyl lactate using

a multifunctional catalytic system consisting of Au-Pd nanoparticles on carbon nanotubes and Sn-MCM-41-XS. ISGC 2019 conference, La Rochelle (France), 13-17 May 2019. (oral presentation)

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