Please use this identifier to cite or link to this item: https://libjncir.jncasr.ac.in/xmlui/handle/10572/2589
Title: Multifunctional and robust covalent organic framework-nanoparticle hybrids
Authors: Pachfule, Pradip
Panda, Manas K.
Kandambeth, Sharath
Shivaprasad, S. M.
Diaz Diaz, David
Banerjee, Rahul
Keywords: Physical Chemistry
Energy & Fuels
Materials Science
Cross-Coupling Reactions
Supported Palladium Catalysts
Metal Nanoparticles
Heterogeneous Catalysis
Pd Nanoparticles
Copper-Free
Coordination Polymers
Sonogashira Reaction
Reusable Catalyst
Hydrogen Storage
Issue Date: 2014
Publisher: Royal Society of Chemistry
Citation: Pachfule, P; Panda, MK; Kandambeth, S; Shivaprasad, SM; Diaz, DD; Banerjee, R, Multifunctional and robust covalent organic framework-nanoparticle hybrids. Journal of Materials Chemistry A 2014, 2 (21) 7944-7952, http://dx.doi.org/10.1039/c4ta00284a
Journal of Materials Chemistry A
2
21
Abstract: Highly dispersed Pd(0) nanoparticles were successfully immobilized into a stable, crystalline and porous covalent organic framework (COF), TpPa-1, by a solution infiltration method using NABH(4) as a reducing agent. High resolution and dark field TEM images confirmed the uniform loading of the Pd(0) nanoparticles into the TpPa-1 matrix without aggregation. This hybrid material exhibited excellent catalytic activity towards the Cu free Sonogashira, Heck and sequential one pot Heck-Sonogashira cross-coupling reactions under basic conditions, and with superior performance compared to commercially available Pd supported on activated charcoal (i.e., 1, 5 and 10 wt%). Additionally, the precursor Pd(II)-doped COF also displayed competitive catalytic activity for the intramolecular oxidative biaryl synthesis under acidic conditions. Both catalysts were found to be highly stable under the reaction conditions showing negligible metal leaching, non-sintering behavior, and good recyclability. To the best of our knowledge, the organic support used in this work, TpPa-1, constitutes the first COF matrix that can hold both Pd(0) nanoparticles and Pd(II) complex without aggregation for catalytic purposes under both highly acidic and basic conditions.
Description: Restricted Access
URI: https://libjncir.jncasr.ac.in/xmlui/10572/2589
ISSN: 2050-7488
Appears in Collections:Research Articles (Shivaprasad, S. M.)

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