4.8 Article

3D-Printed Fe/gamma-Al2O3 Monoliths from MOF-Based Boehmite Inks for the Catalytic Hydroxylation of Phenol

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 14, 期 1, 页码 920-932

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c19755

关键词

3D printing; MOF; ceramics; catalysis; hydroxylation of phenol

资金

  1. Spanish Government [RTI2018-095052-BI00]
  2. Community of Madrid [S2018/EMT-4341, PEJ-2019-AI/IND-14385]
  3. CSIC project I-COOP+ 2019 [COOPB20405]
  4. European Social Fund [PEJ-2019-AI/IND-14385]

向作者/读者索取更多资源

The study focuses on the synthesis of dihydroxybenzenes (DHBZ) from the hydroxylation of phenol, using 3D printed Fe/gamma-Al2O3 monoliths as catalysts. The unique printing strategy allows the production of catalytic monoliths with improved DHBZ synthesis performance, demonstrating higher reaction efficiencies compared to conventional processes.
The synthesis of dihydroxybenzenes (DHBZ), essential chemical reagents in numerous industrial processes, with a high degree of selectivity and yield from the hydroxylation of phenol is progressively attracting great interest in the catalysis field. Furthermore, the additive manufacturing of catalysts to produce 3D printed monoliths would provide additional benefits to enhance the DHBZ synthesis performance. Herein, 3D cellular Fe/gamma-Al2O3 monoliths with a total porosity of 88% and low density (0.43 g.cm(-3)) are printed by Robocasting from pseudoplastic Fe-metalorganic frameworks (Fe-MOF)-based aqueous boehmite inks to develop catalytic monoliths containing a Fe network of dispersed clusters (<= 5 mu m), nanoclusters (<50 nm), and nanoparticles (similar to 20 nm) into the porous ceramic skeleton. The hydroxylation of phenol in the presence of hydrogen peroxide is carried out at different reaction temperatures (65-85 degrees C) in a flow reactor filled with eight stacked 3D Fe/gamma-Al2O3 monoliths and with the following operating conditions: C-phenol,C-0 = 0.33 M, C-phe(nol,0)/C-H2O2,C-0 = 1:1 molar, W-R = 2.2 g, and space time (tau = W.Q(L)(-1)) = 0-147 g(cat).h.L-1. The scaffolds present a good mechanical resistance (similar to 1 MPa) to be employed in a catalytic reactor and do not show any cracks or damage after the chemical reaction. DHBZ selectivity (S-DHBZ) of 100% with a yield (Y-DHBZ) of 32% due to the presence of the Fe network in the monoliths is reported at 85 degrees C, which represents an improved synthesis performance as compared to that obtained by using the conventional Enichem process and the well-known titanium silicalite-1 catalysts (S-DHBZ = 99.1% and Y-DHBZ = 29.6% at 80 degrees C). This printing strategy allows manufacturing novel 3D structured catalysts for the synthesis of critical chemical compounds with higher reaction efficiencies.

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