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Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies

[Image: see text] Defects are widely present in nanomaterials, and they are recognized as the active sites that tune surface properties in the local region for catalysis. Recently, the theory linking defect structures and catalytic properties of nanocatalysts has been most commonly described. In thi...

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Autores principales: Szymanski, Grzegorz S., Suzuki, Yuka, Ohba, Tomonori, Sulikowski, Bogdan, Góra-Marek, Kinga, Tarach, Karolina A., Koter, Stanislaw, Kowalczyk, Piotr, Ilnicka, Anna, Zięba, Monika, Echegoyen, Luis, Terzyk, Artur P., Plonska-Brzezinska, Marta E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8569677/
https://www.ncbi.nlm.nih.gov/pubmed/34677930
http://dx.doi.org/10.1021/acsami.1c12126
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author Szymanski, Grzegorz S.
Suzuki, Yuka
Ohba, Tomonori
Sulikowski, Bogdan
Góra-Marek, Kinga
Tarach, Karolina A.
Koter, Stanislaw
Kowalczyk, Piotr
Ilnicka, Anna
Zięba, Monika
Echegoyen, Luis
Terzyk, Artur P.
Plonska-Brzezinska, Marta E.
author_facet Szymanski, Grzegorz S.
Suzuki, Yuka
Ohba, Tomonori
Sulikowski, Bogdan
Góra-Marek, Kinga
Tarach, Karolina A.
Koter, Stanislaw
Kowalczyk, Piotr
Ilnicka, Anna
Zięba, Monika
Echegoyen, Luis
Terzyk, Artur P.
Plonska-Brzezinska, Marta E.
author_sort Szymanski, Grzegorz S.
collection PubMed
description [Image: see text] Defects are widely present in nanomaterials, and they are recognized as the active sites that tune surface properties in the local region for catalysis. Recently, the theory linking defect structures and catalytic properties of nanocatalysts has been most commonly described. In this study, we prepared boron-doped carbon nano-onions (B-CNOs) by applying an annealing treatment of ultradispersed nanodiamond particles and amorphous boron. These experimental conditions guarantee doping of CNOs with boron atoms in the entire carbon nanostructure, thereby ensuring structural homogeneity. In our research, we discuss the correlations between defective structures of B-CNOs with their catalytic properties toward SO(2) and tert-butanol dehydration. We show that there is a close relationship between the catalytic properties of the B-CNOs and the experimental conditions for their formation. It is not only the mass of the substrates used for the formation of B-CNOs that is crucial, that is, the mass ratio of NDs to amorphous B, but also the process, including temperature and gas atmosphere. As it was expected, all B-CNOs demonstrated significant catalytic activity in HSO(3)(–) oxidation. However, the subsequent annealing in an air atmosphere diminished their catalytic activity. Unfortunately, no direct relationship between the catalytic activity and the presence of heteroatoms on the B-CNO surface was observed. There was a linear dependence between catalytic activity and Raman reactivity factors for each of the B-CNO materials. In contrast to SO(2) oxidation, the B-CNO-a samples showed higher catalytic activity in tert-butanol dehydration due to the presence of Brønsted and Lewis acid sites. The occurence of three types of boron-Lewis sites differing in electron donor properties was confirmed using quantitative infrared spectroscopic measurements of pyridine adsorption.
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spelling pubmed-85696772021-11-08 Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies Szymanski, Grzegorz S. Suzuki, Yuka Ohba, Tomonori Sulikowski, Bogdan Góra-Marek, Kinga Tarach, Karolina A. Koter, Stanislaw Kowalczyk, Piotr Ilnicka, Anna Zięba, Monika Echegoyen, Luis Terzyk, Artur P. Plonska-Brzezinska, Marta E. ACS Appl Mater Interfaces [Image: see text] Defects are widely present in nanomaterials, and they are recognized as the active sites that tune surface properties in the local region for catalysis. Recently, the theory linking defect structures and catalytic properties of nanocatalysts has been most commonly described. In this study, we prepared boron-doped carbon nano-onions (B-CNOs) by applying an annealing treatment of ultradispersed nanodiamond particles and amorphous boron. These experimental conditions guarantee doping of CNOs with boron atoms in the entire carbon nanostructure, thereby ensuring structural homogeneity. In our research, we discuss the correlations between defective structures of B-CNOs with their catalytic properties toward SO(2) and tert-butanol dehydration. We show that there is a close relationship between the catalytic properties of the B-CNOs and the experimental conditions for their formation. It is not only the mass of the substrates used for the formation of B-CNOs that is crucial, that is, the mass ratio of NDs to amorphous B, but also the process, including temperature and gas atmosphere. As it was expected, all B-CNOs demonstrated significant catalytic activity in HSO(3)(–) oxidation. However, the subsequent annealing in an air atmosphere diminished their catalytic activity. Unfortunately, no direct relationship between the catalytic activity and the presence of heteroatoms on the B-CNO surface was observed. There was a linear dependence between catalytic activity and Raman reactivity factors for each of the B-CNO materials. In contrast to SO(2) oxidation, the B-CNO-a samples showed higher catalytic activity in tert-butanol dehydration due to the presence of Brønsted and Lewis acid sites. The occurence of three types of boron-Lewis sites differing in electron donor properties was confirmed using quantitative infrared spectroscopic measurements of pyridine adsorption. American Chemical Society 2021-10-22 2021-11-03 /pmc/articles/PMC8569677/ /pubmed/34677930 http://dx.doi.org/10.1021/acsami.1c12126 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Szymanski, Grzegorz S.
Suzuki, Yuka
Ohba, Tomonori
Sulikowski, Bogdan
Góra-Marek, Kinga
Tarach, Karolina A.
Koter, Stanislaw
Kowalczyk, Piotr
Ilnicka, Anna
Zięba, Monika
Echegoyen, Luis
Terzyk, Artur P.
Plonska-Brzezinska, Marta E.
Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies
title Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies
title_full Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies
title_fullStr Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies
title_full_unstemmed Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies
title_short Linking the Defective Structure of Boron-Doped Carbon Nano-Onions with Their Catalytic Properties: Experimental and Theoretical Studies
title_sort linking the defective structure of boron-doped carbon nano-onions with their catalytic properties: experimental and theoretical studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8569677/
https://www.ncbi.nlm.nih.gov/pubmed/34677930
http://dx.doi.org/10.1021/acsami.1c12126
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