On physical analysis of phthalocyanine iron (II) using topological descriptor and curve fitting models

A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in chemical systems. This work investigates the use of edge partitions to decipher molecular connection patterns. The main goal is to use topological...

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Published inScientific reports Vol. 14; no. 1; pp. 18611 - 16
Main Authors Hanif, Muhammad Farhan, Mahmood, Hasan, Ahmad, Shahbaz, Fiidow, Mohamed Abubakar
Format Journal Article
LanguageEnglish
Published London Nature Publishing Group UK 10.08.2024
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ISSN2045-2322
2045-2322
DOI10.1038/s41598-024-69517-x

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Abstract A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in chemical systems. This work investigates the use of edge partitions to decipher molecular connection patterns. The main goal is to use topological indices that capture important topological features to create a connection between the thermodynamic properties and structural characteristics of chemical molecules. We specifically examine the complex web of atoms and links that make up the Fe phthalocyanine chemical graph. Moreover, our study demonstrates a relationship between the calculated topological indices and the thermodynamic properties of Fe phthalocyanine (Phthalocyanine Iron (II)). This work offers insight into the thermodynamic consequences of molecule structures. It advances the subject of chemical graph theory, providing a useful perspective for future applications in catalysis and materials science.
AbstractList A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in chemical systems. This work investigates the use of edge partitions to decipher molecular connection patterns. The main goal is to use topological indices that capture important topological features to create a connection between the thermodynamic properties and structural characteristics of chemical molecules. We specifically examine the complex web of atoms and links that make up the Fe phthalocyanine chemical graph. Moreover, our study demonstrates a relationship between the calculated topological indices and the thermodynamic properties of Fe phthalocyanine (Phthalocyanine Iron (II)). This work offers insight into the thermodynamic consequences of molecule structures. It advances the subject of chemical graph theory, providing a useful perspective for future applications in catalysis and materials science.
A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in chemical systems. This work investigates the use of edge partitions to decipher molecular connection patterns. The main goal is to use topological indices that capture important topological features to create a connection between the thermodynamic properties and structural characteristics of chemical molecules. We specifically examine the complex web of atoms and links that make up the Fe phthalocyanine chemical graph. Moreover, our study demonstrates a relationship between the calculated topological indices and the thermodynamic properties of Fe phthalocyanine (Phthalocyanine Iron (II)). This work offers insight into the thermodynamic consequences of molecule structures. It advances the subject of chemical graph theory, providing a useful perspective for future applications in catalysis and materials science.A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in chemical systems. This work investigates the use of edge partitions to decipher molecular connection patterns. The main goal is to use topological indices that capture important topological features to create a connection between the thermodynamic properties and structural characteristics of chemical molecules. We specifically examine the complex web of atoms and links that make up the Fe phthalocyanine chemical graph. Moreover, our study demonstrates a relationship between the calculated topological indices and the thermodynamic properties of Fe phthalocyanine (Phthalocyanine Iron (II)). This work offers insight into the thermodynamic consequences of molecule structures. It advances the subject of chemical graph theory, providing a useful perspective for future applications in catalysis and materials science.
Abstract A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in chemical systems. This work investigates the use of edge partitions to decipher molecular connection patterns. The main goal is to use topological indices that capture important topological features to create a connection between the thermodynamic properties and structural characteristics of chemical molecules. We specifically examine the complex web of atoms and links that make up the Fe phthalocyanine chemical graph. Moreover, our study demonstrates a relationship between the calculated topological indices and the thermodynamic properties of Fe phthalocyanine (Phthalocyanine Iron (II)). This work offers insight into the thermodynamic consequences of molecule structures. It advances the subject of chemical graph theory, providing a useful perspective for future applications in catalysis and materials science.
ArticleNumber 18611
Author Ahmad, Shahbaz
Fiidow, Mohamed Abubakar
Mahmood, Hasan
Hanif, Muhammad Farhan
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Cites_doi 10.1007/s10910-009-9520-x
10.1007/s10910-015-0480-z
10.1021/ci980039b
10.1016/0009-2614(82)80009-2
10.1016/0009-2614(72)85099-1
10.1063/1.430994
10.1103/PhysRevB.89.085411
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Issue 1
Keywords Entropy
Balaban index
Forgotten index
Zagreb type index
Heat of formation
Fe phthalocyanine
Language English
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– reference: 39210035 - Sci Rep. 2024 Aug 29;14(1):20102. doi: 10.1038/s41598-024-71356-9
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Snippet A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds in...
Abstract A new area of applied chemistry called chemical graph theory uses combinatorial techniques to explain the complex interactions between atoms and bonds...
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639/705/1041
Balaban index
Catalysis
Connectivity
Entropy
Fe phthalocyanine
Forgotten index
Heat of formation
Humanities and Social Sciences
Molecular modelling
multidisciplinary
Physical analysis
Science
Science (multidisciplinary)
Zagreb type index
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Title On physical analysis of phthalocyanine iron (II) using topological descriptor and curve fitting models
URI https://link.springer.com/article/10.1038/s41598-024-69517-x
https://www.ncbi.nlm.nih.gov/pubmed/39127814
https://www.proquest.com/docview/3091217427
https://www.proquest.com/docview/3091288017
https://pubmed.ncbi.nlm.nih.gov/PMC11316839
https://doaj.org/article/2666bc0026b343bdaf1eb1b473ca6e60
Volume 14
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