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 in | Scientific reports Vol. 14; no. 1; pp. 18611 - 16 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
London
Nature Publishing Group UK
10.08.2024
Nature Publishing Group Nature Portfolio |
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Online Access | Get full text |
ISSN | 2045-2322 2045-2322 |
DOI | 10.1038/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. |
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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 |
Author_xml | – sequence: 1 givenname: Muhammad Farhan surname: Hanif fullname: Hanif, Muhammad Farhan organization: Department of Mathematics and Statistics, The University of Lahore – sequence: 2 givenname: Hasan surname: Mahmood fullname: Mahmood, Hasan organization: Department of Mathematics, Government College University – sequence: 3 givenname: Shahbaz surname: Ahmad fullname: Ahmad, Shahbaz organization: Abdus Salam School of Mathematical Sciences, Government College University – sequence: 4 givenname: Mohamed Abubakar surname: Fiidow fullname: Fiidow, Mohamed Abubakar email: m.fiidow@snu.edu.so organization: Department of Mathematical Sciences, Faculty of Science, Somali National University |
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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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Keywords | Entropy Balaban index Forgotten index Zagreb type index Heat of formation Fe phthalocyanine |
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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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SubjectTerms | 639/638/440 639/705/1041 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 |
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