RAJABABU CHINTAPARTY | Materials Science | Best Paper Award

Best Paper Award

RAJABABU CHINTAPARTY
Affiliation Annamacharya University, Rajampet
Country India
Scopus ID 56646050900
Documents 18
Citations 222
h-index 8
Subject Area Materials Science
Event International Research Excellence and Best Paper Awards
ORCID 0000-0003-0958-8296

RAJABABU CHINTAPARTY

RAJABABU CHINTAPARTY of Annamacharya University, Rajampet, India is recognized with the Best Paper Award for research excellence in the field of Materials Science. The recognized research, titled “Defect-mediated structure–property correlation and ultraviolet photoresponse of hydrothermally synthesized BaO2 nanoparticles,” focuses on the relationship between structural defects, material properties, and ultraviolet photoresponse in hydrothermally synthesized barium peroxide nanoparticles.

Abstract

This article recognizes RAJABABU CHINTAPARTY with the Best Paper Award for research excellence in Materials Science. The recognized research, titled “Defect-mediated structure–property correlation and ultraviolet photoresponse of hydrothermally synthesized BaO2 nanoparticles,” investigates the relationship between structural defects and the resulting physical and functional properties of BaO2 nanoparticles. The study highlights the importance of defect engineering and nanoscale material structure in understanding ultraviolet photoresponse, offering relevant insights for advanced functional nanomaterials and optoelectronic applications.

Keywords

BaO2 Nanoparticles, Barium Peroxide, Materials Science, Nanomaterials, Hydrothermal Synthesis, Defect Engineering, Structural Properties, Structure–Property Correlation, Ultraviolet Photoresponse, UV Photodetection, Nanostructured Materials, Optoelectronic Materials.

Introduction

The awarded research, “Defect-mediated structure–property correlation and ultraviolet photoresponse of hydrothermally synthesized BaO2 nanoparticles,” explores an important area of modern materials science involving nanoscale materials, structural defects, and photoresponsive behavior. Nanoparticles can exhibit properties that differ significantly from their bulk counterparts because of their small dimensions, surface characteristics, and defect structures.

Research Profile

RAJABABU CHINTAPARTY is affiliated with Annamacharya University, Rajampet, India and is associated with the subject area of Materials Science. According to the provided academic information, the researcher has 18 documents, 222 citations, and an h-index of 8. The Scopus Author ID is 56646050900, and the researcher’s ORCID identifier is 0000-0003-0958-8296.

Research Contributions

The recognized publication contributes to Materials Science by examining the connection between defects, structure, material properties, and ultraviolet photoresponse in BaO2 nanoparticles. The use of a hydrothermal synthesis strategy provides a pathway for producing nanostructured materials while enabling investigation of their structural and functional characteristics.

Research Impact

The provided academic profile records 18 documents, 222 citations, and an h-index of 8 for RAJABABU CHINTAPARTY. These indicators reflect an established body of indexed research and citation activity within the researcher’s academic profile.

Award Suitability

The Best Paper Award recognizes research demonstrating academic quality, originality, scientific relevance, and meaningful contribution to its respective discipline. RAJABABU CHINTAPARTY’s recognized research aligns with these objectives through its investigation of defect-mediated structure–property correlation and ultraviolet photoresponse in hydrothermally synthesized BaO2 nanoparticles.

Conclusion

RAJABABU CHINTAPARTY has made a notable contribution to the field of Materials Science through research focused on BaO2 nanoparticles and their defect-mediated structural and functional behavior. The recognized publication, “Defect-mediated structure–property correlation and ultraviolet photoresponse of hydrothermally synthesized BaO2 nanoparticles,” provides valuable scientific insight into the relationship between nanoscale structural characteristics and ultraviolet photoresponse.

External Links

References

  1. Scopus Author Profile: RAJABABU CHINTAPARTY, Author ID 56646050900.
    Scopus. https://www.scopus.com/pages/authors/56646050900
  2. ORCID Research Profile: RAJABABU CHINTAPARTY.
    ORCID. https://orcid.org/0000-0003-0958-8296
  3. Best Paper Awards.
    https://bestpaperawards.com/

Martin Fabian | Materials Science | Editorial Board Member

Dr. Martin Fabian | Materials Science | Editorial Board Member 

Senior Researcher | Slovak Academy of Sciences | Slovakia 

Martin Fabián is a materials scientist whose research career spans more than fifteen years with a strong focus on mechanochemical synthesis, nanomaterials, and structure–property relationships in functional inorganic materials. His scholarly output of over 45 peer-reviewed publications reflects sustained contributions to oxide ceramics, semiconductor nanocrystals, magnetic nanoparticles, and electrochemical materials. A major theme of his work is the use of high-energy milling, mechanosynthesis, and low-temperature solid-state routes to engineer nanocrystalline phases with tailored electrical, magnetic, optical, and catalytic properties. He has reported influential studies on spinel Li₄Ti₅O₁₂ for lithium-ion battery applications, ZnAl₂O₄ and ZnO nanostructures for photocatalysis and optoelectronics, CeO₂-based solid solutions for multifunctional uses, and ferrite systems for magnetic and electromagnetic response. His interdisciplinary collaborations also extend into biomedical nanotechnology, including arsenic sulfide nanoparticles with anticancer activity, magnetic fluids for amyloid-related diseases, and paclitaxel-loaded polymer–magnetic nanospheres. In parallel, he has contributed to environmentally relevant research such as silver recovery from waste solutions, CO₂ sequestration via mechanically activated silicates, and mineral processing studies. Fabián’s work is characterized by rigorous structural characterization using X-ray diffraction, electron microscopy, and spectroscopic techniques, combined with careful evaluation of functional performance. He has published consistently in high-impact journals including Journal of Alloys and Compounds, Materials Letters, Powder Technology, Ceramics International, RSC Advances, and Journal of Solid State Electrochemistry, demonstrating both methodological depth and wide application scope. Through extensive international collaboration and peer-review activity, his research has advanced the understanding of how mechanical activation and nanoscale design can be used as powerful tools to create advanced materials for energy, environmental, electronic, and biomedical technologies.

Profiles: Scopus | ORCID

Featured Publications

  1. Šepelák, V., Myndyk, M., Fabián, M., da Silva, K. L., Feldhoff, A., Menzel, D., Ghafari, M., Hahn, H., Heitjans, P., & Becker, K. D. (2012). Mechanosynthesis of nanocrystalline fayalite, Fe₂SiO₄. Chemical Communications, 48(74), 8981–8983.

  2. Fabián, M., Bottke, P., Girman, V., Düvel, A., da Silva, K. L., Wilkening, M., Hahn, H., Heitjans, P., & Šepelák, V. (2015). A simple and straightforward mechanochemical synthesis of the far-from-equilibrium zinc aluminate, ZnAl₂O₄, and its response to thermal treatment. RSC Advances, 5(66), 53767–53773.

  3. Fabián, M., Tyuliev, G., Feldhoff, A., Kostova, N., Kollár, P., Suzuki, S., Saito, F., & Šepelák, V. (2013). One-step synthesis of nanocrystalline ZnO via cryomilling. Powder Technology, 235, 360–366.

  4. Senna, M., Fabián, M., Kavan, L., Zukalová, M., Briančin, J., Turianicová, E., Bottke, P., Wilkening, M., & Šepelák, V. (2016). Electrochemical properties of spinel Li₄Ti₅O₁₂ nanoparticles prepared via a low-temperature solid route. Journal of Solid State Electrochemistry, 20(10), 2733–2743.

  5. Ognjanović, M., Dojčinović, B., Fabián, M., Stanković, D. M., Mariano, J. F. M. L., & Antić, B. (2018). Microwave assisted hydrothermal synthesis of (Fe,Co)₃O₄ nanoparticles in the presence of surfactants and effects of Co/Fe ratio on microstructure and magnetism. Ceramics International, 44(11), 13083–13092.

Martin Fabián’s work advances global innovation in nanomaterials and mechanochemical synthesis, enabling low-energy, scalable routes to functional materials for energy storage, catalysis, electronics, and biomedicine. His research bridges fundamental materials science with real-world industrial and environmental applications, supporting sustainable technologies and next-generation functional materials.