Publications

A consolidated archive of books, book chapters, peer-reviewed journal articles, and citation records showcasing the depth and impact of our research initiatives.

Books/Chapters

2021

Photosensitizers and Applications

(Edited by Davor Margetic and Renjith Thomas)
Published by: Nova Publishers
Book
2021

Renjith Thomas, T Pooventhiran

Comprehensive quantum mechanical study of structural features, reactivity, molecular properties and wave function based characteristics of Capmatinib, (Ed Dibya R Pai) Advanced Materials and Nano systems: Theory and Experiment
Published by: Bentham Publishers
Chapter
2021

Renjith Thomas, Anila Skariah

Sars Covid-2 : Vaccines, drug repurposing, global heath security and mental well-being, (Ed Dhiraj Singh) Covid-10 Crisis and India
Published by: New Delhi
Chapter

Journal Articles

[177]

A.A. Khairbek, M.A.A.-H. Badawi, A.Y.A. Alzahrani, R. KJ, R. Thomas, Silver- and gold-catalyzed azide−alkyne cycloaddition by functionalized NHC-based polynuclear catalysts: Computational investigation and mechanistic insights, Mol. Catal. 570 (2025). https://doi.org/10.1016/j.mcat.2024.114708.

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[176]

A.A. Khairbek, M.I. Al-Zaben, O.A. Abu Ali, D.I. Saleh, R. Thomas, Mechanistic insights and reactivity of novel NHSi- and NHGe-supported CuBr catalysts in the [3 + 2] azide–alkyne cycloaddition reaction, Chem. Eng. Sci. 318 (2025). https://doi.org/10.1016/j.ces.2025.122176.

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[175]

T.S. Ganesan, N. Elangovan, P. Ranjith, N. Arumugam, A. I. Almansour, S. Chandrasekar, R. Thomas, Synthesis, spectroscopic, computational, topology, and molecular docking studies on N,N’-(4-methyl-1,3-phenylene)bis(1-(2,4-dichlorophenyl)methanimine), Mol. Phys. 123 (2025). https://doi.org/10.1080/00268976.2024.2421420.

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[174]

A.M. John, S.C. Suresh, A. Baby, S. Jayaram, S. Sarojini, R. Thomas, S.P. Balakrishnan, Unveiling the therapeutic potential of azopyridine derivatives for trypsin inhibition: a DFT and In-Vitro approach, Mol. Phys. 123 (2025). https://doi.org/10.1080/00268976.2024.2415951.

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[173]

A.A. Khairbek, M.I. Al-Zaben, R. Puchta, R. Thomas, Exploring the influence of halogen-substituted Cp*RuX catalysts on RuAAC [3 + 2] cycloaddition: A quantum mechanical investigation”, Comput. Theor. Chem. 1248 (2025). https://doi.org/10.1016/j.comptc.2025.115223.

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[172]

S.A. Sunny, M. Joseph, A.Y.A. Alzahrani, O.A.A. Ali, S.F. Mahmoud, R. Thomas, Molecular Level Non-Covalent Interactions Between Celecoxib and Valdecoxib and Some Common Polar Solvents, Adv. Theory Simulations. 8 (2025). https://doi.org/10.1002/adts.202500281.

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[171]

K.J. Rajimon, B.K. Sarojini, P. Thangaiyan, R. Thomas, A sustainable approach to fluorescent chalcone synthesis targeting E. coli Ribonuclease P and bacteriophage G4: Combined experimental and theoretical investigation of photophysical and biological properties, J. Mol. Struct. 1330 (2025) 141533. https://doi.org/10.1016/j.molstruc.2025.141533.

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[170]

N.B. Iroha, C.U. Dueke-Eze, V.C. Anadebe, N.J. Maduelosi, R. Thomas, E.E. Ebenso, Assessment of a new benzylidene-based corrosion inhibitor for X60 carbon steel in 1 M HCl medium: Experimental and computational studies, Results in Surfaces and Interfaces. 19 (2025). https://doi.org/10.1016/j.rsurfi.2025.100510.

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[169]

K.J. Rajimon, R. Almeer, P. Thangaiyan, A. Khairbek, R. Thomas, In Silico Analysis of Curcumin’s Targeted Cancer Therapy: Folate Receptor Pathways and Molecular Interaction Insights, Chem. Biodivers. 22 (2025). https://doi.org/10.1002/cbdv.202402561

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[169]

A.A. Khairbek, M. Abd-Al Hakim Badawi, A.Y. Alzahrani, R. Puchta, R. Thomas, Computational study on novel RhCpX (X = CF3, SiF3, CCl3, SO3H) as promising catalysts in the [3 + 2] azide-alkyne cycloaddition reaction: insights into mechanistic pathways and reactivity, Dalt. Trans. (2025) 3383–3392. https://doi.org/10.1039/d4dt02970d.

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[167]

P.J. Srijana, B. Narayana, B.K. Sarojini, F.D.B. Ramzi, C.K. Quah, K.J. Rajimon, R. Thomas, Supramolecular and computational analysis of Fluconazole −2−chloro−5−nitrobenzoic acid cocrystal, J. Mol. Struct. 1321 (2025). https://doi.org/10.1016/j.molstruc.2024.140143.

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[166]

M.A.A.-H. Badawi, M. Dagher, A.Y.A. Alzahrani, A.A. Khairbek, R. Thomas, Computational studies of the metal-free [3+2] cycloaddition reaction of azide with enaminone for the synthesis of 1,2,3-triazoles, New J. Chem. 49 (2024) 291 – 301. https://doi.org/10.1039/d4nj04341c.

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[165]

P. Surendar, S.K. Jesudoss, C. Raja, K.J. Rajimon, R. Thomas, T. Pooventhiran, Molecular Interactions Between Hexanal Schiff Bases and Boron Nanocages: A DFT Approach, J. Comput. Biophys. Chem. (2024). https://doi.org/10.1142/S2737416524500169

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[164]

K.J. Rajimon, A.Y. Alzahrani, E.S. Aazam, B.M. Abbas, P. Govindarajan, R. Thomas, Unveiling the multifaceted potential of (E)-N-(4-Chlorophenyl)-1-(thiophen-2-yl) methanimine with special reference to solution-state fluorescence, synthesis, electronic structure, antimicrobial, antibiofilm, larvicidal activities, toxicity, docking and d, J. Mol. Struct. 1302 (2024). https://doi.org/10.1016/j.molstruc.2023.137428.

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[163]

A.A. Khairbek, A.Y. Alzahrani, M.A.A.-H. Badawi, R. Thomas, Computational studies on CuAAC reaction mechanism with [CuX (PPh3)]; X= I, Br, Cl for the synthesis of 4-and 5-halo-1, 2, 3-triazoles, React. Kinet. Mech. Catal. 137 (2024) 777–790. https://doi.org/10.1007/s11144-023-02548-z

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[162]

J.M. Thomas, A.Y. Alzahrani, P. Govindarajan, R. Thomas, Assessing the Noncovalent Interaction of Deucravacitinib and Ethanol with Special Reference to an Independent Gradient Model Based on Hirshfeld Partition, J. Phys. Chem. B. 128 (2024) 10469–10480. https://doi.org/10.1021/acs.jpcb.4c04852

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[161]

S.A. Sunny, A. Prakash, R. Almeer, R. Thomas, Mapping the Interaction Landscape of Adenosine and Minoxidil Sulfate Using an Independent Gradient Model Based on Hirshfeld Partition and Interaction Region Indicator, J. Phys. Chem. B. 128 (2024) 9847–9858. https://doi.org/10.1021/acs.jpcb.4c05283

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[160]

M.A.A.-H. Badawi, M.I. Al-Zaben, A. Sotal, A.Y. Alzahrani, A. Khairbek, R. Thomas, Quantum mechanical investigation of the mechanism of Ni(0)-catalyzed cycloaddition reaction of 2-cyclobutanone with alkyne, Zeitschrift Fur Phys. Chemie. 238 (2024) 223–237. https://doi.org/10.1515/zpch-2023-0394

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[159]

J. Sonia, B.N. Kumara, K.J. Pinto, A. Hashim, E.S.S. Priya, B. Kalpana, R. Thomas, K.S. Prasad, Disposable paper electrodes for detection of changes in dopamine concentrations in rat brain homogenates, Talanta. 274 (2024). https://doi.org/10.1016/j.talanta.2024.125940.

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[158]

A.A. Khairbek, M.I. Al-Zaben, F. Abbas, M.A.A.-H. Badawi, R. Thomas, Exploring the potential of metal-catalysis with N, N-type ligands in [3+2] cycloaddition reactions of azides and alkynes using theoretical tools, React. Kinet. Mech. Catal. (2024). https://doi.org/10.1007/s11144-024-02696-w.

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All Publications

R. Thomas, A.A. Khairbek, S.A. Sunny, A.Y.A. Alzahrani, Machine learning analysis of metalloid nanoclusters from the Quantum Cluster Database: Structural-phase transitions, electronic-geometric coupling, and exploratory binary nano-alloy predictions, Calphad 94 (2026) 102978. doi.org/10.1016/j.calphad.2026.102978

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Modelling of polymer blends

Modelling of polymer blends

R. Thomas, A.M. John, A.Y.A. Alzahrani, T. Pooventhiran, D.I. Saleh, S.F. Mahmoud, Dispersion-Dominated Noncovalent Stabilization with Weak Polarization-Assisted O···H Contacts in the PMMA-PS Polymer Framework, Macromol. Chem. Phys. 227 (2026). doi.org/10.1002/macp.70290

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A Systematic Computational Protocol for Deconstructing Non-Covalent Interactions: BerchNCI 1.0

A Systematic Computational Protocol for Deconstructing Non-Covalent Interactions: BerchNCI 1.0

Non-covalent interactions constitute the fundamental organizing principles of supramolecular assemblies; however, the accurate modeling of these subtle, dispersion-driven forces remains a formidable challenge in theoretical chemistry. In this work, we formally propose the Berchmans Protocol for Modelling Non-Covalent Interactions 1.0 (BerchNCI 1.0), a comprehensive, hierarchical computational workflow designed to decipher the electronic anatomy of NCIs with benchmark precision.

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Electron Upconversion Enables CP and CS Bond Formation Under Mild Oxidative Conditions: A Theoretical Study

Electron Upconversion Enables CP and CS Bond Formation Under Mild Oxidative Conditions: A Theoretical Study

Meera's first paper as the part of her PhD thesis published in Journal of Computational Chemistry. The work has been based on some of the finidngs of Prog Igor Alabugin of Florida State University, USA. Traditional methods for forming carbon–phosphorus (C–P) and carbon–sulfur (C–S) bonds often rely on strong oxidants that generate high-energy carbocation intermediates, frequently leading to unwanted side reactions. In this work, we employ DFT to investigate an alternative mechanism operating under basic conditions that utilizes three-electron bond formation and concomitant electron upconversion. Our computational results reveal a radical-anionic pathway initiated by a cyclization to form a 2-center-3-electron (2c-3e) bond, followed by the oxidation of the resulting upconverted radical-anion by mild oxidants such as molecular oxygen . This pathway is shown to be both thermodynamically and kinetically favored over conventional two-electron routes, providing a more controlled and selective strategy for C–P and C–S bond construction. These findings suggest that electron-upconversion mechanisms can significantly advance green chemistry by reducing dependence on harsh reagents and minimizing synthetic side reactions.

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Sneha & Ananya’s paper in Journal of Physical Chemistry B

Sneha & Ananya’s paper in Journal of Physical Chemistry B

PhD student Sneha Anna Sunny's paper on the Mapping the Interaction Landscape of Adenosine and Minoxidil Sulfate Using an Independent Gradient Model Based on Hirshfeld Partition and Interaction Region Indicator. Ananya Prakash is a final year MSc Physics student of our college who worked in our lab as part of the Kerala Theoretical Physics Initiative (KTPI) student project initiative,

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Manjesh Mathew: Benchmarking Computational Approaches for Proton Affinity

Manjesh Mathew: Benchmarking Computational Approaches for Proton Affinity

In this collaborative study with Dr Ralph Puchta, Manjesh Mathew, PhD student assessed the proton affinities and gas phase basicities of molecules ranging from ammonia to proton sponges like PMG using computational methods including B3LYP, BP86, PBEPBE, APFD, wB97XD, and M062X with the def2tzvp basis set. The M062X method showed the highest accuracy, closely matching experimental results for all examples, especially those containing heteroatoms, while APFD and wB97XD tended to overestimate values. Dispersion corrections were evaluated but found not to significantly affect basicity predictions. Computational and Theoretical Chemistry

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Alen Binu Abraham : Non-Covalent Interactions of Caffeine and Ascorbic Acid

Alen Binu Abraham : Non-Covalent Interactions of Caffeine and Ascorbic Acid

In this study, we explored the non-covalent interactions between caffeine and ascorbic acid, focusing on their hydrogen bonding in both gas and solvent (water) phases, using Density Functional Theory. The binding energy calculations revealed significant interactions with values of −14.65 kcal/mol in the gas phase and −11.62 kcal/mol in water. Through Natural Bond Orbital, RDG, AIM, and LED analyses, we confirmed the stabilization energy and electron delocalization in the caffeine-ascorbic acid complex, enhancing our understanding of drug-drug interactions and their implications for drug efficacy and delivery systems. Abraham, Alen Binu, Alzahrani, Abdullah Y. and Thomas, Renjith. "Exploring non-covalent interactions between caffeine and ascorbic acid: their significance in the physical chemistry of drug efficacy" Zeitschrift für Physikalische Chemie, vol. 238, no. 2, 2024, pp. 401-420. 

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Gayathri: Hydrogen Bonding and Dynamics of Prontosil in Water and Methanol

Gayathri: Hydrogen Bonding and Dynamics of Prontosil in Water and Methanol

In this theoretical study, we investigated the solvation energies of prontosil, a pioneering sulfa drug, in water and methanol using DFT/M06-2X/cc-pVDZ level of theory. Our findings reveal that prontosil shows more favorable interactions with methanol than water, as evidenced by NBO, RDG, QTAIM analyses, and local energy decomposition (LED) analysis using DLPNO-CCSD(T). The prontosil-methanol complex displayed the lowest binding energy and highest stability, suggesting methanol as a more suitable solvent for prontosil in terms of molecular interactions and stability. These insights are further corroborated by ab initio molecular dynamics simulations, underscoring the importance of solvent choice in drug design and molecular interaction studies. Here is the link to "Understanding the hydrogen bonding preferences and dynamics of prontosil in water and methanol":

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Jisha’s paper in Journal of Physical Chemistry-B (ACS)

Jisha’s paper in Journal of Physical Chemistry-B (ACS)

Postdoc Dr Jisha's latest paper Assessing the Noncovalent Interaction of Deucravacitinib and Ethanol with Special Reference to an Independent Gradient Model Based on Hirshfeld Partition

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Rajimon’s first bioactive chalcone paper in JMS

Rajimon’s first bioactive chalcone paper in JMS

Rajimons Chalcone paper in collaboration with Prof Sarojini, Mangalore Univeristy

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Metalfree cycloaddition in New Journal of Chemistry

Metalfree cycloaddition in New Journal of Chemistry

The paper investigates the metal-free [3+2] cycloaddition reaction between phenyl azide and phenyl enaminone to selectively synthesize 1,2,3-triazoles. Using computational methods, it explores the reaction pathways (1,4- and 1,5-pathway), solvent effects, and the impact of phenyl azide substituents, offering insights into the reaction mechanism and the role of water as a solvent and catalyst.

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Rajimon : Schiff base derived from 4-Chloroaniline and 2-Formylphenol

Rajimon : Schiff base derived from 4-Chloroaniline and 2-Formylphenol

PhD student Rajimon KJ's 6th first-authored paper in Journal of Molecular Structure (Elsevier). Comprehensive assessment of schiff base derived from 4-Chloroaniline and 2-Formylphenol: Molecular architecture, experimental with computational bioactivity profiling, emphasizing anticancer efficacy against pulmonary and mammary carcinoma cell models

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Get In Touch

We welcome research collaborations and enquiries from theoreticians, experimental chemists, and interdisciplinary researchers. Prospective PhD, postdoctoral, and student researchers are encouraged to contact us via the details below or the message form.

Dr. Renjith Thomas

Department of Chemistry

St. Berchmans College (Autonomous)

Changanassery, Kerala, India – 686101


[email protected]

+91 95446 58314