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Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature

The adsorption of atmospheric dinitrogen (N(2)) on transition metal sites is an important topic in chemistry, which is regarded as the prerequisite for the activation of robust N≡N bonds in biological and industrial fields. Metal hydride bonds play an important part in the adsorption of N(2), while...

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Autores principales: Gao, Min, Ding, Yong-Qi, Ma, Jia-Bi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9266966/
https://www.ncbi.nlm.nih.gov/pubmed/35805983
http://dx.doi.org/10.3390/ijms23136976
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author Gao, Min
Ding, Yong-Qi
Ma, Jia-Bi
author_facet Gao, Min
Ding, Yong-Qi
Ma, Jia-Bi
author_sort Gao, Min
collection PubMed
description The adsorption of atmospheric dinitrogen (N(2)) on transition metal sites is an important topic in chemistry, which is regarded as the prerequisite for the activation of robust N≡N bonds in biological and industrial fields. Metal hydride bonds play an important part in the adsorption of N(2), while the role of hydrogen has not been comprehensively studied. Herein, we report the N(2) adsorption on the well-defined Y(2)C(4)H(0,1)(−) cluster anions under mild conditions by using mass spectrometry and density functional theory calculations. The mass spectrometry results reveal that the reactivity of N(2) adsorption on Y(2)C(4)H(−) is 50 times higher than that on Y(2)C(4)(−) clusters. Further analysis reveals the important role of the H atom: (1) the presence of the H atom modifies the charge distribution of the Y(2)C(4)H(−) anion; (2) the approach of N(2) to Y(2)C(4)H(−) is more favorable kinetically compared to that to Y(2)C(4)(−); and (3) a natural charge analysis shows that two Y atoms and one Y atom are the major electron donors in the Y(2)C(4)(−) and Y(2)C(4)H(−) anion clusters, respectively. This work provides new clues to the rational design of TM-based catalysts by efficiently doping hydrogen atoms to modulate the reactivity towards N(2).
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spelling pubmed-92669662022-07-09 Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature Gao, Min Ding, Yong-Qi Ma, Jia-Bi Int J Mol Sci Article The adsorption of atmospheric dinitrogen (N(2)) on transition metal sites is an important topic in chemistry, which is regarded as the prerequisite for the activation of robust N≡N bonds in biological and industrial fields. Metal hydride bonds play an important part in the adsorption of N(2), while the role of hydrogen has not been comprehensively studied. Herein, we report the N(2) adsorption on the well-defined Y(2)C(4)H(0,1)(−) cluster anions under mild conditions by using mass spectrometry and density functional theory calculations. The mass spectrometry results reveal that the reactivity of N(2) adsorption on Y(2)C(4)H(−) is 50 times higher than that on Y(2)C(4)(−) clusters. Further analysis reveals the important role of the H atom: (1) the presence of the H atom modifies the charge distribution of the Y(2)C(4)H(−) anion; (2) the approach of N(2) to Y(2)C(4)H(−) is more favorable kinetically compared to that to Y(2)C(4)(−); and (3) a natural charge analysis shows that two Y atoms and one Y atom are the major electron donors in the Y(2)C(4)(−) and Y(2)C(4)H(−) anion clusters, respectively. This work provides new clues to the rational design of TM-based catalysts by efficiently doping hydrogen atoms to modulate the reactivity towards N(2). MDPI 2022-06-23 /pmc/articles/PMC9266966/ /pubmed/35805983 http://dx.doi.org/10.3390/ijms23136976 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gao, Min
Ding, Yong-Qi
Ma, Jia-Bi
Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature
title Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature
title_full Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature
title_fullStr Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature
title_full_unstemmed Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature
title_short Experimental and Theoretical Study of N(2) Adsorption on Hydrogenated Y(2)C(4)H(−) and Dehydrogenated Y(2)C(4)(−) Cluster Anions at Room Temperature
title_sort experimental and theoretical study of n(2) adsorption on hydrogenated y(2)c(4)h(−) and dehydrogenated y(2)c(4)(−) cluster anions at room temperature
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9266966/
https://www.ncbi.nlm.nih.gov/pubmed/35805983
http://dx.doi.org/10.3390/ijms23136976
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