Mohit | Inorganic Chemistry | Young Scientist Award

Young Scientist Award

Mohit
Researcher Mohit
Affiliation Noida International University
Country India
Scopus ID 57216389586
Documents 56
Citations 758
h-index 18
Subject Area Inorganic Chemistry
Event International Young Scientists Award
ORCID 0000-0002-3043-4729

Mohit

Noida International University, India

Mohit is an academic researcher affiliated with Noida International University, India. His scholarly profile is associated with research activities in the field of Inorganic Chemistry and demonstrates measurable research performance through publications, citations, and academic visibility across recognized scholarly indexing platforms. The profile presented here summarizes publicly available academic indicators together with research contributions in a neutral encyclopedic format suitable for academic recognition and reference.[1]

Abstract

This article summarizes the publicly available academic profile of Mohit, highlighting research productivity, citation metrics, institutional affiliation, and scholarly engagement in Inorganic Chemistry. Bibliometric indicators including publication count, citation performance, and h-index provide quantitative evidence of research activity, while academic profiles such as Scopus, ORCID, and Google Scholar contribute to research visibility and transparency.[1][2]

Keywords

  • Young Scientist Award
  • Mohit
  • Noida International University
  • India
  • Inorganic Chemistry
  • Research Publications
  • Scopus
  • ORCID
  • Google Scholar
  • Academic Recognition

Introduction

Research assessment frequently combines qualitative evaluation with quantitative bibliometric indicators to understand scholarly influence. Metrics such as publication count, citation impact, h-index, persistent researcher identifiers, and institutional affiliation are commonly considered in evaluating academic achievements and research visibility.[1][3]

Research Profile

According to publicly accessible scholarly databases, Mohit has authored 56 indexed documents receiving 758 citations and an h-index of 18. These metrics indicate sustained scholarly activity within Inorganic Chemistry while supporting discoverability through internationally recognized research identifier systems.[1][2]

Research Contributions

The available research profile reflects continuing contributions to Inorganic Chemistry through peer-reviewed publications, scholarly communication, and citation-based academic influence. Persistent researcher identifiers improve attribution accuracy and facilitate integration across scholarly databases and digital repositories.[2]

Publications

The researcher’s indexed publication record contributes to measurable academic performance through peer-reviewed scientific literature. Publications are indexed within Scopus and further discoverable through Google Scholar and ORCID records where available.[1]

Research Impact

Citation indicators demonstrate the scholarly use of published research by the wider scientific community. Bibliometric measures including citation counts and h-index provide standardized indicators frequently considered in research evaluation while complementing qualitative expert assessment rather than replacing it.[3]

Award Suitability

Based on the available scholarly profile, publication metrics, citation performance, institutional affiliation, and researcher identifiers collectively provide evidence that may support consideration within academic recognition programs such as the International Young Scientists Award. Final award decisions remain dependent upon the official evaluation criteria established by the awarding organization.[4]

Conclusion

This article presents a structured overview of Mohit’s publicly available academic profile using standard scholarly indicators and recognized researcher identifiers. The information is intended for academic reference and should be interpreted alongside comprehensive peer evaluation, research quality, and institutional assessment.

References

  1. Elsevier. (n.d.). Scopus author details: Mohit, Author ID 57216389586. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57216389586
  2. ORCID. (n.d.). Researcher identifier profile.
    https://orcid.org/0000-0002-3043-4729
  3. Hirsch, J. E. (2005). An index to quantify an individual’s scientific research output. PNAS. DOI:
    https://doi.org/10.1073/pnas.0507655102
  4. International Young Scientists Award. (n.d.). Official Award Website.
    https://youngscientistawards.com/

Kalaivanan Nagarajan | Chemistry | Young Scientist Award

Dr. Kalaivanan Nagarajan | Chemistry | Young Scientist Award

Tata Institute of Fundamental Research, Mumbai | India

Dr. Kalaivanan Nagarajan research focuses on exploring the fundamental and applied aspects of light–matter strong coupling, particularly vibrational strong coupling (VSC), to understand and manipulate chemical reactivity and material properties within optical cavities. By integrating principles from physical chemistry, quantum electrodynamics, and materials science, the work investigates how molecular vibrations interact coherently with confined optical modes in Fabry–Perot cavities to form hybrid light–matter states known as vibrational polaritons. These studies reveal how strong coupling conditions can reshape potential energy surfaces, influence molecular structure, dynamics, and reaction kinetics, and ultimately enable control of chemical transformations without the need for external photoexcitation. A key highlight of this research is the demonstration that VSC can modulate phase transition behaviors, such as the glass transition temperature of polymers like polyvinyl acetate and polystyrene, providing experimental evidence of cavity-modified thermomechanical properties. Through systematic spectroscopic, thermodynamic, and theoretical investigations, the research establishes how vacuum electromagnetic fields play an active role in determining material behavior and chemical outcomes. This pioneering approach contributes to the emerging field of polariton chemistry, offering new pathways for designing energy-efficient reactions, reactivity control strategies, and material innovations driven by quantum light–matter interactions.

Featured Publications

Thomas, A., Lethuillier-Karl, L., Nagarajan, K., Vergauwe, R. M. A., George, J., & Ebbesen, T. W. (2019). Tilting a ground-state reactivity landscape by vibrational strong coupling. Science, 363(6427), 615–619. https://doi.org/10.1126/science.aau7742

Nagarajan, K., Thomas, A., & Ebbesen, T. W. (2021). Chemistry under vibrational strong coupling. Journal of the American Chemical Society, 143(41), 16877–16889. https://doi.org/10.1021/jacs.1c07487

Sharma, P., Damien, D., Nagarajan, K., Shaijumon, M. M., & Hariharan, M. (2013). Perylene-polyimide-based organic electrode materials for rechargeable lithium batteries. The Journal of Physical Chemistry Letters, 4(19), 3192–3197. https://doi.org/10.1021/jz401590t

Vergauwe, R. M. A., Thomas, A., Nagarajan, K., Shalabney, A., George, J., & Ebbesen, T. W. (2019). Modification of enzyme activity by vibrational strong coupling of water. Angewandte Chemie International Edition, 58(43), 15324–15328. https://doi.org/10.1002/anie.201906346

 Nagarajan, K., Mallia, A. R., Muraleedharan, K., & Hariharan, M. (2017). Enhanced intersystem crossing in core-twisted aromatics. Chemical Science, 8(3), 1776–1782. https://doi.org/10.1039/C6SC04791E

 Banda, H., Damien, D., Nagarajan, K., Hariharan, M., & Shaijumon, M. M. (2015). A polyimide-based all-organic sodium ion battery. Journal of Materials Chemistry A, 3(19), 10453–10458. https://doi.org/10.1039/C5TA01921B

Thomas, A., Jayachandran, A., Lethuillier-Karl, L., Vergauwe, R. M. A., Nagarajan, K., George, J., & Ebbesen, T. W. (2020). Ground state chemistry under vibrational strong coupling: Dependence of thermodynamic parameters on the Rabi splitting energy. Nanophotonics, 9(2), 249–255. https://doi.org/10.1515/nanoph-2019-0357

Banda, H., Damien, D., Nagarajan, K., Raj, A., Hariharan, M., & Shaijumon, M. M. (2017). Twisted perylene diimides with tunable redox properties for organic sodium-ion batteries. Advanced Energy Materials, 7(20), 1701316. https://doi.org/10.1002/aenm.201701316