Chinna Ayya Swamy P | Chemistry | Research Excellence Award

Research Excellence Award

Chinna Ayya Swamy P
National Institute of Technology

Chinna Ayya Swamy P
Affiliation National Institute of Technology
Country India
Scopus ID 59540482900
Documents 65
Citations 1,505
h-index 19
Subject Area Chemistry
Event International Research Awards
ORCID 0000-0001-7875-9517

Chinna Ayya Swamy P is a chemistry researcher affiliated with the National Institute of Technology in India. The researcher profile provided for this article records 65 documents, 1,505 citations, and an h-index of 19 in Scopus, indicating a documented body of scholarly output and citation activity. [1]

Abstract

Chinna Ayya Swamy P is a chemistry researcher affiliated with the National Institute of Technology, India, whose scholarly profile is documented through the Scopus database and associated researcher identifiers. The supplied profile records 65 scholarly documents, 1,505 citations, and an h-index of 19, providing quantitative indicators of research productivity and citation impact. The researcher is identified by Scopus Author ID 59540482900 and ORCID 0000-0001-7875-9517. Within the context of the International Research Awards, the Research Excellence Award recognizes a documented research profile and sustained scholarly contribution. This article summarizes the supplied bibliometric information, research profile, publication record, impact indicators, and relevance to academic recognition. [1]

Keywords

Research Excellence Award; Chinna Ayya Swamy P; Chemistry; National Institute of Technology; Scopus; bibliometrics; research productivity; citation impact; h-index; scholarly publications; ORCID; International Research Awards.. [1]

Introduction

Research excellence is commonly assessed through a combination of scholarly output, research relevance, citation activity, and other evidence of academic contribution. Bibliometric indicators such as document counts, citation counts, and h-index values can provide quantitative context for evaluating a researcher’s publication history, although such indicators should be interpreted alongside disciplinary and qualitative evidence. [2]

Research Profile

The supplied researcher profile identifies Chinna Ayya Swamy P with the National Institute of Technology and places the primary subject area within Chemistry. The profile is associated with Scopus Author ID 59540482900 and ORCID 0000-0001-7875-9517, identifiers that can assist in distinguishing scholarly records and connecting publications with the researcher. [1]

Research Contributions

The available bibliometric information indicates a research record comprising 65 documents. Publication count provides a measure of documented scholarly output, while interpretation of the underlying contribution requires examination of individual articles, research themes, venues, authorship, and methodological significance. The supplied information establishes the existence of a substantial indexed publication record but does not independently describe each research contribution. [1]

Publications

The researcher profile supplied for this article records 65 documents in Scopus. Scopus provides bibliographic and citation information for indexed scholarly publications, allowing researchers and institutions to review publication records and associated citation indicators. A complete publication bibliography would require direct verification of the researcher’s current indexed record and individual publication metadata. [3]

Research Impact

The supplied profile reports 1,505 citations and an h-index of 19. These indicators provide quantitative evidence of citation activity associated with the indexed research record. Citation metrics vary across disciplines, publication years, databases, and citation practices, so they are most appropriately considered as complementary indicators rather than complete measures of research quality or societal impact. [1] [2]

Award Suitability

For the International Research Awards, the supplied research profile provides several measurable indicators that may be relevant to consideration for a Research Excellence Award, including an indexed publication record, citation activity, and an h-index. Final award suitability should be determined according to the applicable nomination criteria and supported by independently verifiable academic evidence. [4]

Conclusion

Chinna Ayya Swamy P’s supplied academic profile presents a documented research record in Chemistry associated with the National Institute of Technology. The reported 65 documents, 1,505 citations, and h-index of 19 provide quantitative context for evaluating scholarly productivity and citation activity. These indicators can support an academic recognition profile when considered together with qualitative evidence of research contributions. [5]

References

  1. Elsevier. (n.d.). Scopus author details: Chinna Ayya Swamy P, Author ID 59540482900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=59540482900
  2. ORCID. (n.d.). ORCID record: Chinna Ayya Swamy P. ORCID.
    https://orcid.org/0000-0001-7875-9517
  3. Chinna Ayya Swamy, P., Sivaraman, G., Priyanka, R. N., Raja, S. O., Ponnuvel, K., Shanmugpriya, J., & Gulyani, A. (2020). Near infrared (NIR) absorbing dyes as promising photosensitizer for photo dynamic therapy. Coordination Chemistry Reviews, 411, 213233.
    https://doi.org/10.1016/j.ccr.2020.213233
  4. Afrin, A., Jayaraj, A., Gayathri, M. S., & Chinna Ayya Swamy, P. (2023). An overview of Schiff base-based fluorescent turn-on probes: A potential candidate for tracking live cell imaging of biologically active metal ions. Sensors & Diagnostics, 2(5), 988–1076.
    https://doi.org/10.1039/D3SD00110E
  5. frin, A., & Chinna Ayya Swamy, P. (2023). Novel Schiff base derivatives for the detection of one-to-multi metal ions and tracking the live cell imaging.
    Coordination Chemistry Reviews, 494, 215327.
    https://doi.org/10.1016/j.ccr.2023.215327

 

Kaiqi Fan | Chemistry | Best Researcher Award

Assoc Prof Dr. Kaiqi Fan | Chemistry | Best Researcher Award 

Assoc Prof Dr. Kaiqi Fan | Zhengzhou University of Light Industry | China

Assoc. Prof. Dr. Kaiqi Fan, a distinguished researcher at Zhengzhou University of Light Industry, China, specializes in polymers, supramolecular chemistry, co-crystalline gels, and hydrogels. He has led multiple provincial-level science and technology projects, secured several invention patents, and published impactful papers in leading journals such as Chemical Engineering Journal and Journal of Colloid and Interface Science. His pioneering work on asymmetric-adhesion Janus hydrogels has advanced medical interface technologies, enabling improved continuous ultrasound Doppler monitoring. Dr. Fan’s research integrates innovation, material design, and practical applications, significantly contributing to the development of advanced functional materials with biomedical and industrial relevance.

Author Profile

Scopus

Education

Assoc. Prof. Dr. Kaiqi Fan’s academic journey began with a strong foundation in chemistry and materials science, where his early education nurtured a passion for understanding molecular interactions and functional materials. His curiosity for polymers and supramolecular assemblies developed during his higher education years, leading him to focus on designing advanced materials with tailored properties. Driven by a desire to merge fundamental chemistry with practical applications, Dr. Fan excelled in both theoretical understanding and laboratory experimentation. This early dedication provided the groundwork for his later breakthroughs in hydrogels, ionic elastomers, and co-crystalline gels, ensuring that his career would be deeply rooted in innovation and scientific rigor.

Experience

Currently serving as an Associate Professor at Zhengzhou University of Light Industry, Dr. Fan plays a vital role in advancing polymer science research while mentoring the next generation of scientists. He has successfully led multiple provincial-level science and technology projects in Henan Province, each addressing real-world challenges through advanced material design. His expertise extends beyond academia into collaborative research with industrial partners, translating laboratory findings into practical solutions. Moreover, Dr. Fan has contributed significantly to scientific literature, with publications in prestigious journals such as Chemical Engineering Journal and Journal of Colloid and Interface Science. His academic and professional roles are characterized by a balance of teaching excellence, research leadership, and cross-disciplinary collaboration.

Research Focus

Dr. Fan’s research centers on polymers, supramolecular chemistry, and the design of functional gels with unique mechanical and interfacial properties. Among his most notable contributions is the development of chitosan-integrated asymmetric-adhesion Janus hydrogels via solid–gel interfacial engineering. This innovation addresses the challenge of programmable adhesion asymmetry by introducing a mold-directed solid–gel interface strategy, achieving an 18-fold difference in adhesion strength between the two sides of the hydrogel. The resulting materials not only exhibit exceptional acoustic impedance properties comparable to commercial ultrasound gels but also demonstrate dual-functionality—secure attachment for medical probes and a sliding interface for dynamic tissue interaction. His broader research portfolio includes eutectogel adhesives, self-healing conductive gels, underwater-sensing gels, and low-temperature-resistant hydrogel electrolytes, all contributing to advancements in biomedical devices, sensing technologies, and energy storage systems.

Award and Recognition

Dr. Fan’s pioneering work has been recognized through multiple avenues. He has secured several invention patents, demonstrating his capacity for translating scientific concepts into practical and commercially viable innovations. His research articles have been featured in high-impact journals indexed in SCI and Scopus, earning citations from scholars worldwide. By leading competitive provincial research grants, he has established himself as a trusted innovator in China’s scientific community. These accolades not only highlight his academic excellence but also validate the societal relevance of his research in areas such as medical diagnostics, wearable technology, and sustainable material design.

Impact and Influence

The influence of Dr. Fan’s research extends far beyond the laboratory. His innovations in hydrogel technology have the potential to transform biomedical imaging and monitoring, particularly in continuous ultrasound Doppler measurements, where his designs enhance signal quality and patient comfort. By advancing materials that combine stretchability, self-healing properties, and environmental resilience, his work supports the development of wearable electronics and energy devices that can withstand harsh operating conditions. His contributions are also shaping the next generation of researchers through mentorship, workshops, and collaborative projects, fostering a culture of creativity and scientific curiosity.

Publications 

Janus POSS-based hydrogel electrolytes with high-ionic conductivity and low-temperature-resistance for all-in-one flexible supercapacitors.

Author: Xiaojing Zhang, Luxin Cao, Xiaobo Wang, Zhen Liu, Jiwei Peng, Wentong Yang, Kaiqi Fan
Journal: Journal of Energy Storage
Year: 2025

Eutectogel adhesives with underwater-enhanced adhesion to hydrophilic surfaces and strong adhesion in harsh environments.

Author: Kaiqi Fan, Wentong Yang, Jiwei Peng, Xiaobo Wang, Luxin Cao, Xidong Guan, Haijun Sun, Xiaojing Zhang
Journal: Chemical Engineering Journal
Year: 2024

One-step preparation of highly conductive eutectogel for a flexible strain sensor.

Author: Kaiqi Fan, Jiwei Peng, Wentong Yang, Xiaobo Wang, Sen Liu, Luxin Cao, Haijun Sun, Xiaojing Zhang.
Journal: Applied Polymer Science
Year: 2024

Conclusion

Assoc. Prof. Dr. Kaiqi Fan exemplifies the ideal blend of scientific curiosity, technical mastery, and practical innovation. From his early academic foundation in polymer and supramolecular chemistry to his groundbreaking work on asymmetric-adhesion Janus hydrogels and advanced functional materials, he has consistently pushed the boundaries of materials science. His patents, publications, and leadership in provincial research projects demonstrate both academic excellence and societal impact. Beyond his personal achievements, Dr. Fan’s mentorship and collaborations are cultivating the next generation of researchers. With a vision firmly set on solving real-world challenges, his legacy will continue to inspire innovation and shape the future of advanced material technologies.