Deboshree Mukherjee

Burdwan, West Bengal
Grant Category: Fulbright-Nehru Postdoctoral Research Fellowships
Project Title: Development of Highly Efficient MOF-Stabilized Single Atom Catalyst for Preferential Oxidation of Carbon Monoxide: Insight of Structure-Activity Relationship by Operando and In-Situ Techniques.
Field of Study: Chemistry
Home Institution: The University of Burdwan, Burdwan, West Bengal
Host Institution: Brookhaven National Laboratory , New York, NY
Grant Start Month: September 2023
Duration of Grant: Twenty-four months

Brief Bio:

Dr. Deboshree Mukherjee is Dr. D. S. Kothari Post-Doctoral Research Fellow at the Department of Chemistry, University of Burdwan, West Bengal. Earlier, she worked as Research Associate atthe Center of Excellence in Advance Materials, NIT Durgapur, West Bengal. She completed her Ph.D. from CSIR-Indian Institute of Chemical Technology, Hyderabad in 2019. Her doctoral research was in the area of heterogeneous catalysis.

Dr. Mukherjee’s research interest lies in the design and development of novel nanomaterials for catalytic oxidation-reduction processes for environmental remediation, biodiesel and other fine chemicals production, photocatalytic advanced oxidation processes, and nanozyme applications. She has published several research articles in high impact international journals, review articles, popular journal articles, and book chapters during her Ph.D. and post-doctoral work. She was awarded the junior research fellowship (JRF) by the Government of India after she qualified the CSIR-UGC NET examination and the prestigious Dr. D. S. Kothari Post-Doctoral research fellowship by the UGC, Government of India.

During her Fulbright-Nehru Postdoctoral Research fellowship, Dr. Mukherjee is focusing on the design and development of metal organic framework supported single atom catalyst (SAC) for preferential oxidation of carbon monoxide in hydrogen rich stream for proton exchange membrane (PEM) fuel cell application. In SAC, all catalytically active metal centers are atomically dispersed on a stable support. The SACs are superior to metal or metal oxide nanocatalysts in terms of high metal atom utilization efficiency, unique electronic properties and special size quantum effects, resulting in improved catalytic performance.

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