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 Best Paper Awards
Award Best Paper Award
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/

Xinru Yan | Materials Science | Best Paper Award

Best Paper Award

Xinru Yan
Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences

Xinru Yan
Affiliation Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences
Country China
Scopus ID 57704701900
Documents 6
Citations 21
h-index 3
Paper Title Im/BIm Ratio–Regulated ZIF-62 as a Functional Filler for High Wear–Resistant 3D-Printed PEEK Tribocomposites
Subject Area Materials Science
Event Best Paper Awards
ORCID
0009-0005-9699-0292

Xinru Yan is recognized through the Best Paper Award for contributions to advanced materials science and polymer tribology. The featured publication, Im/BIm Ratio–Regulated ZIF-62 as a Functional Filler for High Wear–Resistant 3D-Printed PEEK Tribocomposites, investigates innovative composite materials designed to improve wear resistance and mechanical performance in additive manufacturing applications. The work highlights material optimization strategies supported by systematic experimental characterization and contributes to the advancement of high-performance engineering materials and polymer tribocomposites.[1]

Abstract

The research paper entitled “Im/BIm Ratio–Regulated ZIF-62 as a Functional Filler for High Wear–Resistant 3D-Printed PEEK Tribocomposites” investigates the development of advanced polymer tribocomposites by incorporating ZIF-62 functional fillers with regulated imidazole and benzimidazole ratios. The study systematically evaluates microstructural evolution, mechanical properties, friction behavior, wear resistance, and printing performance of three-dimensional printed PEEK composites. Experimental findings demonstrate that optimized filler composition significantly improves durability, structural stability, and tribological performance while maintaining excellent printability. The research provides valuable scientific insights for additive manufacturing, high-performance engineering polymers, and functional composite materials, supporting future industrial applications and continued innovation in advanced materials science.[2]

Keywords

Materials Science, Polymer Tribology, PEEK Tribocomposites, ZIF-62, Metal–Organic Frameworks, Additive Manufacturing, 3D Printing, Functional Fillers, Wear Resistance, Engineering Materials.

Introduction

Advanced polymer composites have become increasingly important because they combine lightweight characteristics with exceptional mechanical strength, thermal stability, and wear resistance. Xinru Yan’s research explores innovative ZIF-62 functional fillers for enhancing the performance of three-dimensional printed PEEK tribocomposites, contributing meaningful scientific knowledge to materials science, polymer engineering, tribology, and additive manufacturing technologies through comprehensive experimental investigation and systematic materials characterization.[1]

Research Profile

Xinru Yan is affiliated with the Lanzhou Institute of Chemical Physics, Chinese Academy of Sciences, where research activities focus on advanced materials, polymer tribology, composite engineering, and additive manufacturing. Based on the available Scopus profile, the researcher has published six indexed documents, received twenty-one citations, and achieved an h-index of three, reflecting an emerging scholarly contribution to materials science through innovative experimental research and high-quality scientific publications.[1]

Research Contributions

The featured publication presents a systematic investigation into Im/BIm ratio regulation within ZIF-62 functional fillers for three-dimensional printed PEEK tribocomposites. Through comprehensive experimental characterization, the research demonstrates improved wear resistance, friction performance, mechanical stability, and microstructural optimization, providing valuable scientific evidence supporting the development of durable, high-performance polymer composites for advanced engineering and industrial applications.[2]

 

Publications

Xinru Yan’s publication portfolio emphasizes materials science, polymer engineering, tribology, and additive manufacturing. The highlighted research demonstrates an innovative strategy for enhancing PEEK tribocomposites through ZIF-62 functional fillers, providing meaningful scientific insights into composite material optimization while supporting future investigations involving durable engineering materials, advanced manufacturing technologies, and industrial polymer applications.[2]

Publication Title Research Area
Im/BIm Ratio–Regulated ZIF-62 as a Functional Filler for High Wear–Resistant 3D-Printed PEEK Tribocomposites Materials Science, Polymer Tribology, Additive Manufacturing, High-Performance Polymer Composites

Research Impact

The reported findings strengthen understanding of polymer tribology by demonstrating that optimized metal–organic framework fillers significantly improve wear resistance, mechanical reliability, and service life. This research supports continued advances in aerospace, automotive, biomedical, and precision engineering applications where lightweight, durable, and high-performance polymer composites are increasingly required.[2]

Award Suitability

This publication demonstrates originality, scientific rigor, and practical significance through its innovative investigation of ZIF-62 functional fillers for advanced PEEK tribocomposites. The combination of experimental validation, engineering relevance, and measurable scientific contribution strongly supports recognition through the Best Paper Award while encouraging future innovation in materials science and additive manufacturing research.[2]

Conclusion

Xinru Yan’s research demonstrates a meaningful contribution to materials science through the development of advanced ZIF-62 functional fillers for high wear-resistant 3D-printed PEEK tribocomposites. The study integrates innovative materials engineering, comprehensive experimental validation, and practical industrial relevance, making it well suited for recognition through the Best Paper Award while supporting continued progress in polymer tribology and additive manufacturing technologies.[2]

References

  1. Elsevier. (n.d.). Scopus Author Details: Xinru Yan, Author ID 57704701900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57704701900
  2. Best Paper Awards. (n.d.). Official Best Paper Awards Website.
    https://bestpaperawards.com

Nokuthula Ndaba | Materials Science | Best Paper Award

Best Paper Award

Optimising Mg-La-layered double hydroxide (LDH) molar ratio for maximum phosphate adsorption

Nokuthula Ndaba
Affiliation University of South Africa
Country South Africa
Scopus ID 57218861698
Documents 4
Citations 35
h-index 3
Subject Area Materials Science
Award Category Best Paper Award
Scopus Profile 57218861698
Event
Best Paper Awards

The Best Paper Award recognizes the outstanding scholarly achievements of Nokuthula Ndaba from the University of South Africa, South Africa. The award acknowledges exceptional research contributions in Materials Science, particularly through the paper entitled “Optimising Mg-La-layered double hydroxide (LDH) molar ratio for maximum phosphate adsorption.” This recognition reflects excellence in scientific research, publication quality, and contributions toward sustainable environmental technologies and advanced materials research.

Abstract

The Best Paper Award honors Nokuthula Ndaba for outstanding research contributions in Materials Science. The award-winning study investigates the optimization of magnesium-lanthanum layered double hydroxide (Mg-La LDH) materials to maximize phosphate adsorption efficiency, contributing valuable knowledge to water purification and environmental remediation. With 4 scholarly publications, 35 citations, and an h-index of 3, the research demonstrates growing academic influence and commitment to innovative scientific investigation. This recognition celebrates research excellence, publication impact, and meaningful contributions to sustainable materials science.

Keywords

Materials Science; Layered Double Hydroxides; Phosphate Adsorption; Water Treatment; Environmental Remediation; Nanomaterials; Sustainable Technology; Scientific Research; Best Paper Award.

Introduction

Materials Science plays an essential role in developing innovative solutions for environmental protection, energy sustainability, and industrial applications. Research on advanced adsorbent materials contributes significantly to improving water quality and addressing global pollution challenges. The Best Paper Award recognizes outstanding scientific achievements that combine originality, rigorous methodology, and practical relevance. Nokuthula Ndaba’s research exemplifies these qualities by advancing efficient phosphate removal technologies using engineered layered double hydroxide materials.

Research Profile

Nokuthula Ndaba is affiliated with the University of South Africa, South Africa. With 4 publications indexed in Scopus, 35 citations, and an h-index of 3, the researcher has established a developing academic profile in Materials Science. The research portfolio reflects dedication to environmental sustainability, advanced material development, and interdisciplinary scientific collaboration aimed at solving real-world environmental challenges.

Scientific Background

Layered double hydroxides (LDHs) have emerged as promising functional materials for adsorption, catalysis, and environmental remediation due to their unique structural and chemical properties. Optimizing the composition of Mg-La LDHs enhances phosphate adsorption performance, supporting more efficient wastewater treatment technologies. This research contributes to sustainable environmental management by improving adsorbent efficiency while advancing the understanding of material synthesis and optimization.

Methodology

The Best Paper Award recognizes scientific excellence based on originality, methodological rigor, publication quality, citation impact, and scholarly significance. Nokuthula Ndaba’s award-winning research applies systematic experimental design and analytical evaluation to optimize Mg-La layered double hydroxide molar ratios for enhanced phosphate adsorption. The study demonstrates robust scientific methodology and practical relevance in environmental materials research.

Research Impact

Through research focused on advanced adsorption materials, Nokuthula Ndaba has contributed to the growing field of sustainable water treatment technologies. With 35 citations, the research has gained recognition within the scientific community and provides valuable insights for future investigations in adsorption science, wastewater remediation, and functional material engineering. The findings support continued innovation in environmentally responsible technologies.

Scientific Contributions

Nokuthula Ndaba’s scientific contributions strengthen Materials Science through innovative research on layered double hydroxide materials and their environmental applications. The award-winning study enhances understanding of phosphate adsorption mechanisms while supporting the development of efficient and sustainable water purification technologies. This work contributes to both academic research and practical environmental engineering solutions.

Conclusion

The Best Paper Award recognizes Nokuthula Ndaba’s dedication to advancing Materials Science through innovative research and scholarly excellence. By contributing meaningful scientific knowledge in the optimization of layered double hydroxides for phosphate adsorption, the research supports sustainable environmental management and future developments in advanced functional materials. This recognition highlights the researcher’s commitment to scientific quality, innovation, and global academic advancement.

References

  1. Scopus Author Profile.
    https://www.scopus.com/authid/detail.uri?authorId=57218861698
  2. Best Paper Awards.
    https://bestpaperawards.com/

Prof. Dr.Yuheng Zeng | Materials Science | Best Research Article Award

Best Research Article Award

Yuheng Zeng
Ningbo Institute of Materials Technology & Engineering, Chinese Academy of Sciences

Yuheng Zeng
Affiliation Ningbo Institute of Materials Technology & Engineering, CAS
Country China
Scopus ID 16551482700
Documents 169
Citations 3,198
h-index 32
Subject Area Materials Science
Event Best Paper Awards

The Best Research Article Award recognizes outstanding scholarly contributions in the field of Materials Science, highlighting excellence in innovation, methodological rigor, and academic impact. Prof. Dr Yuheng Zeng has been acknowledged for sustained contributions to advanced materials research, including polymer nanocomposites and functional materials systems, as reflected in a strong publication and citation record[1].

Abstract

This article outlines the academic recognition of Yuheng Zeng under the Best Research Article Award category, emphasizing contributions to materials science through high-impact publications, interdisciplinary research, and advancements in nanocomposite systems. The evaluation is based on bibliometric indicators, peer-reviewed output, and demonstrated influence in scientific communities[2].

Keywords

  • Materials Science
  • Polymer Nanocomposites
  • Functional Materials
  • Academic Impact
  • Research Excellence

Introduction

The Best Research Article Award is designed to recognize scholars who have demonstrated consistent excellence in research output and innovation. Within the discipline of materials science, such recognition reflects contributions that advance theoretical understanding and practical applications, particularly in emerging domains such as nanotechnology and advanced composites.

Research Profile

Yuheng Zeng is affiliated with the Ningbo Institute of Materials Technology & Engineering under the Chinese Academy of Sciences. The research profile demonstrates a substantial body of work indexed in Scopus, with 169 documents and over 3,000 citations, reflecting sustained academic productivity and influence[1].

Research Contributions

  • Development of multifunctional polymer-based nanocomposites.
  • Advancements in environmentally responsive materials.
  • Contributions to electronic and structural material innovations.
  • Interdisciplinary integration of chemistry and materials engineering.

Publications

Selected publications reflect high-impact contributions to materials science, including peer-reviewed articles indexed in international databases. Representative work includes studies on nanocomposite synthesis and applications, often associated with DOI-referenced outputs such as https://doi.org/10.1016/j.compscitech.2019.107776[2].

Research Impact

The research impact is evidenced by citation metrics, h-index, and international collaboration. The work has contributed to advancements in materials design and industrial applications, demonstrating measurable influence across academic and applied research communities[1].

Award Suitability

Eligibility for the Best Research Article Award is determined by scholarly merit, originality, and measurable research outcomes. Yuheng Zeng meets these criteria through a combination of high publication volume, citation impact, and relevance to contemporary materials science challenges.

Conclusion

The recognition of Yuheng Zeng under the Best Research Article Award underscores the importance of sustained academic excellence and innovation in materials science. The profile reflects a well-established research trajectory supported by quantitative and qualitative indicators of scholarly impact.

References

  1. Elsevier. (n.d.). Scopus author details: Yuheng Zeng, Author ID 16551482700. Scopus.https://www.scopus.com/authid/detail.uri?authorId=16551482700
  2. 25.59%-efficient industrial-grade tunnel oxide passivating contact solar cells with carbon-incorporated polysilicon fabricated by tube PECVD.
    https://www.sciencedirect.com/science/article/abs/pii/S0927024826002242
  3. Cation–Anion Synergy Enables Uniform and Stable SAMs for High-Efficiency Perovskite/TOPCon Tandem Solar Cells.
    https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/advs.202520822

  4. Efficiency improvement of TOPCon half-cells and modules via laser-assisted edge isolation (LAEI) technology
    https://www.sciencedirect.com/science/article/abs/pii/S1385894726025957

  5. Extending Carrier Diffusion via Interfacial Dielectric Shielding for Operationally Stable Perovskite/TOPCon Tandem Solar Cells
    https://advanced.onlinelibrary.wiley.com/doi/full/10.1002/advs.202524128

     

Vishal Kumar Parida | Materials Science | Innovation Catalyst Achievement Award

Assist. Prof. Dr. Vishal Kumar Parida | Materials Science | Innovation Catalyst Achievement Award 

Assistant Professor at Amity Univeristy Jharkhand, India,

Dr. Vishal Kumar Parida is a dedicated environmental engineering researcher and Assistant Professor at Amity University Jharkhand 🌿🔬. With expertise in advanced photocatalytic materials, he focuses on visible light-assisted degradation of emerging pharmaceutical contaminants in wastewater 💧✨. His innovative work integrates nanomaterial synthesis, reactor design, and sustainable treatment strategies for real-world applications. 📚🧪 He has authored high-impact publications, presented at international conferences, and collaborates with renowned mentors from IIT Kharagpur 🤝🌍. Driven by critical thinking, adaptability, and mentoring skills, Dr. Parida actively contributes to building solutions for cleaner water and a healthier environment. His strong commitment to interdisciplinary research and sustainability positions him as a promising catalyst for innovation in environmental management and wastewater treatment technologies 🌏💡.

Professional Profile

🎓 Education

Dr. Vishal Kumar Parida holds a strong academic foundation in civil and environmental engineering 📘. He earned his B.Tech in Civil Engineering from the College of Engineering Bhubaneswar, demonstrating early dedication to infrastructure and sustainable development 🏗️. He then pursued an M.Tech in Environmental Engineering from the National Institute of Foundry and Forge Technology, Ranchi, where he focused on advanced studies of fluoride removal from groundwater 💧. His rigorous academic journey was marked by consistently high grades and relevant research exposure. He is also GATE qualified in Civil Engineering, underlining his competitive excellence in the field 🏅. With each step, Dr. Parida has built the expertise needed to tackle complex environmental challenges through technical knowledge and a strong research mindset 🌿.

💼 Professional Experience

Dr. Parida is currently serving as an Assistant Professor at Amity University Jharkhand within the School of Engineering and Technology 👨‍🏫. His role bridges teaching, advanced research, and mentoring budding engineers and environmental scientists 📚✨. Under the guidance of distinguished professors, he has developed cutting-edge research on photocatalytic materials and sustainable water treatment methods. His responsibilities include designing and supervising laboratory experiments, publishing peer-reviewed articles, and presenting findings at global conferences 🌏🧪. Dr. Parida’s professional track reflects a blend of academic rigor, collaborative teamwork, and project execution — all aligned with addressing pressing environmental issues 🌱. His exposure to workshops, technical visits, and interaction with premier institutes strengthens his ability to connect academic research with practical environmental solutions ⚙️.

🔬 Research Interest

Dr. Vishal Kumar Parida’s research interests revolve around developing sustainable, innovative solutions for wastewater treatment and environmental remediation ♻️💧. He specializes in designing visible light-assisted photocatalytic heterojunctions to degrade pharmaceutical and emerging contaminants, tackling pollution at its root with advanced nanomaterials 🌞⚗️. His work explores combining moving bed biofilm reactors with continuous photocatalytic systems, aiming for synchronized, efficient removal of multiple pollutants from municipal and hospital wastewater 🏥🌿. Dr. Parida is also deeply interested in the broader implications of nanomaterials, hybrid catalysts, and immobilized biocatalysts for real-world scalability. Through detailed experimental design, literature review, and data analysis, he seeks to bridge lab research with sustainable, deployable technologies that benefit communities and ecosystems alike 🌏🔍.

🏆 Awards and Honors

Dr. Parida’s dedication to impactful research has earned him recognition through high-impact journal publications and international conference presentations 🌟📖. His scholarly contributions to prestigious journals like Chemical Engineering Journal and Chemosphere reflect the quality and relevance of his work 📰✨. He has also showcased his research innovations at leading platforms such as the American Chemical Society and EUROMAT, gaining global peer acknowledgment 🌍🎤. Qualifying the GATE exam in Civil Engineering further highlights his academic competitiveness and commitment to technical excellence 🎓🏅. While his journey is still growing, these achievements demonstrate his potential as a young innovator poised to make significant contributions to sustainable environmental management and advanced wastewater treatment technologies 💡🌱.

🧑‍🔬 Research Skills

Dr. Parida brings a comprehensive skill set essential for advanced environmental research 🔬📈. His expertise spans experimental design, advanced lab techniques, reactor fabrication, and synthesis of complex photocatalytic materials ⚗️🧪. He is proficient in statistical analysis, critical literature review, and scientific writing, ensuring his research is robust and impactful 📚🗂️. Beyond the lab, he excels in proofreading, editing, and project proposal development — key for securing funding and driving collaborative projects forward 💼🤝. His adaptability, perseverance, and critical thinking help him navigate challenges, while strong presentation skills make him an effective communicator of complex ideas 🌍🎤. By mentoring students and collaborating with renowned experts, Dr. Parida continuously enhances his capacity as a catalyst for innovative environmental solutions 🌿💡.

Publications Top Note 📝

Title: Visible light-assisted degradation of sulfamethoxazole on 2D/0D sulfur-doped Bi₂O₃/MnO₂ Z-scheme heterojunction immobilized photocatalysts
Authors: Parida, V.K., Srivastava, S.K., Chowdhury, S., Gupta, A.K.
Year: 2023
Source: ACS Langmuir
Citation: Langmuir 39 (51), 18846–18865, 2023. [DOI: Not provided]

Title: Synchronous removal of pharmaceutical contaminants from municipal and hospital wastewater using a moving bed biofilm reactor-filtration unit coupled with a continuous photocatalytic reactor
Authors: Parida, V.K., Gnanaguru, M.V.L., Srivastava, S.K., Chowdhury, S., Gupta, A.K.
Year: 2023
Source: RSC Environmental Science and Pollution Research
Citation: RSC Env. Sci. Poll. Res., 2023. [DOI: Not provided]

Title: Emerging contaminants in wastewater: A critical review on occurrence, existing legislations, risk assessment, and sustainable treatment alternatives
Authors: Parida, V.K., Saidulu, D., Majumder, A., Srivastava, A., Gupta, B., Gupta, A.K.
Year: 2021
Source: Journal of Environmental Chemical Engineering
Citation: Journal of Environmental Chemical Engineering 9, 105966, 2021. [DOI: Not provided]

Title: An assessment of hospital wastewater and biomedical waste generation, existing legislations, risk assessment, treatment processes, and scenario during COVID-19
Authors: Parida, V.K., Sikarwar, D., Majumder, A., Gupta, A.K.
Year: 2022
Source: Journal of Environmental Management
Citation: Journal of Environmental Management 308, 114609, 2022. [DOI: Not provided]

=Title: A review on nanomaterial-based heterogeneous photocatalysts for removal of contaminants in water
Authors: Parida, V.K., Srivastava, S.K., Gupta, A.K., Rawat, A.
Year: 2023
Source: Materials Express
Citation: Materials Express 13 (1), 2023. [DOI: Not provided]

=Title: Novel 3D plate-like g-C₃N₄/BiOCl heterojunction as a highly efficient photocatalyst for the degradation of carbofuran in wastewater under visible light irradiation
Authors: Parida, V.K., Kumar, Y., Das, C., Das, S., Sen, S.
Year: 2024
Source: Chemical Engineering Journal
Citation: Chemical Engineering Journal 499, 155930, 2024. [DOI: Not provided]

Title: A facile synthesis of 2D/0D Bi₂O₃/MnO₂ Z-scheme heterojunction for enhanced visible light-assisted photocatalytic degradation of acetaminophen
Authors: Parida, V.K., Srivastava, S.K., Chowdhury, S., Gupta, A.K.
Year: 2023
Source: Chemical Engineering Journal
Citation: Chemical Engineering Journal 472, 144969, 2023. [DOI: Not provided]

Title: Facile synthesis of a 2D/3D Z-scheme Cu-g-C₃N₄/BiOBr heterojunction for enhanced photocatalytic degradation of ciprofloxacin under visible light irradiation
Authors: Parida, V.K., Dhakad, R., Chowdhury, S., Gupta, A.K.
Year: 2023
Source: Journal of Environmental Chemical Engineering
Citation: Journal of Environmental Chemical Engineering 11 (6), 111569, 2023. [DOI: Not provided]

Title: A critical assessment of SARS-CoV-2 in aqueous environment: Existence, detection, survival, wastewater-based surveillance, inactivation methods, and effective management of COVID-19
Authors: Parida, V.K., Saidulu, D., Bhatnagar, A., Gupta, A.K., Mohammad, S.A.
Year: 2023
Source: Chemosphere
Citation: Chemosphere 327, 138503, 2023. [DOI: Not provided]

Title: Treatment of saline wastewater using physicochemical, biological, and hybrid processes: Insights into inhibition mechanisms, treatment efficiencies, and performance enhancement
Authors: Srivastava, A., Parida, V.K., Majumder, A., Gupta, B., Gupta, A.K.
Year: 2021
Source: Journal of Environmental Chemical Engineering
Citation: Journal of Environmental Chemical Engineering 9 (4), 105775, 2021. [DOI: Not provided]

Title: Insights into the performance of binary heterojunction photocatalysts for degradation of refractory pollutants
Authors: Gnanaguru, M.V.L., Parida, V.K., Ghangrekar, M.M., Gupta, A.K., Chowdhury, S., Gupta, A.K.
Year: 2024
Source: Environmental Science and Pollution Research
Citation: Environmental Science and Pollution Research, 2024. [DOI: Not provided]

Title: Insights into the synthetic dye contamination in textile wastewater: Impacts on aquatic ecosystems and human health, and eco-friendly remediation strategies for environmental sustainability
Authors: Parida, V.K., Singh, N., Priyadarshini, M., Kumari, P., Datta, D., Tambi, A.
Year: 2025
Source: Journal of Industrial and Engineering Chemistry
Citation: Journal of Industrial and Engineering Chemistry, 2025. [DOI: Not provided]

Title: Assessment of water, sediment, and fish contamination by metals in the lentic ecosystems of a mineral-rich state in India
Authors: Kumari, P., Parida, V.K., Raj, D., Kumar, P., Kumari, P., Narayan, M., Gupta, U.
Year: 2025
Source: Biological Trace Element Research
Citation: Biological Trace Element Research 1–16, 2025. [DOI: Not provided]

Title: A critical review of pesticides in aquatic environment: Current trends, environmental impacts, and advances in analytical extraction techniques
Authors: Datta, D., Biswas, B., Lodh, A., Parida, V.K., Goel, S.
Year: 2025
Source: Talanta
Citation: Talanta 293, 128094, 2025. [DOI: Not provided]

Conclusion

In conclusion, Dr. Vishal Kumar Parida stands out as an emerging leader dedicated to addressing critical environmental challenges through cutting-edge research and innovative technologies 🌏🔬. With a robust academic background, strong professional experience, and a clear focus on sustainable wastewater treatment, he demonstrates the expertise and passion needed to drive real change 💧♻️. His impressive research outputs, global engagement, and mentoring reflect his commitment to shaping a cleaner, healthier world. As he continues to expand his impact through interdisciplinary collaboration and practical applications, Dr. Parida truly exemplifies the spirit of an Innovation Catalyst — inspiring sustainable practices and pioneering solutions for complex environmental problems today and for the future 🌿🚀.