Isolated Iridium Sites on Potassium‐Doped Carbon‐nitride wrapped Tellurium Nanostructures for Enhanced Glycerol Photooxidation

Author:

Kumar Pawan1ORCID,Askar Abdelrahman2ORCID,Wang Jiu1,Roy Soumyabrata3ORCID,Kancharlapalli Srinivasu45ORCID,Wang Xiyang6ORCID,Joshi Varad7,Hu Hangtian1,Kannimuthu Karthick1,Trivedi Dhwanil1,Bollini Praveen7ORCID,Wu Yimin A.6ORCID,Ajayan Pulickel M.3ORCID,Adachi Michael M.2ORCID,Hu Jinguang1ORCID,Kibria Md Golam1ORCID

Affiliation:

1. Department of Chemical and Petroleum Engineering University of Calgary 2500 University Drive, NW Calgary Alberta T2N 1N4 Canada

2. School of Engineering Science Simon Fraser University Burnaby BC V5A 1S6 Canada

3. Department of Materials Science and Nanoengineering Rice University Houston TX 77005 USA

4. Theoretical Chemistry Section Chemistry Division Bhabha Atomic Research Centre Trombay Mumbai 400085 India

5. Homi Bhabha National Institute Anushaktinagar Mumbai 400094 India

6. Department of Mechanical and Mechatronics Engineering Waterloo Institute for Nanotechnology Materials Interface Foundry University of Waterloo Waterloo Ontario N2L 3G1 Canada

7. William A. Brookshire Department of Chemical and Biomolecular Engineering University of Houston Houston TX 77204 USA

Abstract

AbstractMany industrial processes such transesterification of fatty acid for biodiesel production, soap manufacturing and biosynthesis of ethanol generate glycerol as a major by‐product that can be used to produce commodity chemicals. Photocatalytic transformation of glycerol is an enticing approach that can exclude the need of harsh oxidants and extraneous thermal energy. However, the product yield and selectivity remain poor due to low absorption and unsymmetrical site distribution on the catalyst surface. Herein, tellurium (Te) nanorods/nanosheets (TeNRs/NSs) wrapped potassium‐doped carbon nitride (KCN) van der Waal (vdW) heterojunction (TeKCN) is designed to enhance charge separation and visible‐NIR absorption. The iridium (Ir) single atom sites decoration on the TeKCN core‐shell structure (TeKCNIr) promotes selective oxidation of glycerol to glyceraldehyde with a conversion of 45.6% and selectivity of 61.6% under AM1.5G irradiation. The catalytic selectivity can reach up to 88% under 450 nm monochromatic light. X‐ray absorption spectroscopy (XAS) demonstrates the presence of undercoordinated IrN2O2 sites which improved catalytic selectivity for glycol oxidation. Band energies and computational calculations reveal faile charge transfer in the TeKCNIr heterostructure. EPR and scavenger tests discern that superoxide (O2•−) and hydroxyl (•OH) radicals are prime components driving glycerol oxidation.

Funder

Canada Foundation for Innovation

National Research Council

Canadian Institutes of Health Research

Canadian Light Source

Canada First Research Excellence Fund

Natural Sciences and Engineering Research Council of Canada

Publisher

Wiley

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