Wenqun Zhong | Biomaterials | Best Scholar Award

Best Scholar Award

Wenqun Zhong
Wuhan University, China

Wenqun Zhong
Affiliation Wuhan University
Country China
Scopus ID 56493889500
Documents 38
Citations 3,721
h-index 17
Subject Area Biomaterials
Event Metallurgical Engineering Awards
Google Scholar p5RUYHYAAAAJ&hl

Wenqun Zhong of Wuhan University in relation to the Best Scholar Award category of the Metallurgical Engineering Awards. The profile is based on indexed research indicators, subject alignment, and publicly listed scholarly profile information, with emphasis on biomaterials research, citation visibility, and documented academic output in Scopus and Google Scholar records.[1][2]

Abstract

Wenqun Zhong is profiled as a researcher affiliated with Wuhan University, China, whose work is situated in the subject area of biomaterials. The available indexed record lists 38 documents, 3,721 citations, and an h-index of 17 under Scopus Author ID 56493889500. These indicators suggest a sustained research presence and measurable scholarly influence within materials-oriented biomedical research. The present page summarizes the researcher’s profile for consideration in the Best Scholar Award context, maintaining a descriptive and evidence-based tone appropriate for academic recognition.[1]

Keywords

Wenqun Zhong; Wuhan University; biomaterials; Scopus Author ID 56493889500; academic recognition; Best Scholar Award; Metallurgical Engineering Awards; research impact; citation analysis; scholarly publications.

Introduction

Academic award profiles commonly combine bibliographic evidence, field relevance, institutional affiliation, and research visibility to present a concise account of a scholar’s contributions. In the case of Wenqun Zhong, the available data identify Wuhan University as the institutional affiliation and biomaterials as the principal subject area. The researcher’s indexed publication and citation record provides a basis for assessing scholarly activity in relation to the Best Scholar Award category of the Metallurgical Engineering Awards.[1][4]

Biomaterials research intersects with materials science, biomedical engineering, chemistry, and translational medicine. Within this interdisciplinary setting, publication quality, citation performance, and discoverability through indexed databases are important indicators of research communication and academic reach. DOI-linked scholarly records further support the traceability of published work and provide persistent access routes for verification and citation.[5]

Research Profile

Wenqun Zhong’s research profile is associated with biomaterials, a field concerned with the design, characterization, and application of materials for biological and medical use. The Scopus author profile reports 38 documents, 3,721 citations, and an h-index of 17, indicating a publication record with demonstrable citation uptake in the indexed literature.[1].[2]

Research Contributions

Wenqun Zhong’s contributions are best understood through the lens of biomaterials scholarship, where laboratory synthesis, structural characterization, performance evaluation, and biomedical relevance are often integrated into a single research program. In such work, the value of a contribution may be reflected in reproducible methods, well-characterized material systems, and relevance to biological interfaces or medical applications.

  • Development and evaluation of biomaterial systems within an interdisciplinary materials research context.
  • Contribution to indexed scholarly literature with measurable citation visibility across academic databases.[3]

Publications

Wenqun Zhong has 38 indexed documents. These publications form the primary bibliographic basis for the researcher’s academic profile and are associated with a citation total of 3,721. The Scopus author record should be used as the authoritative indexed route for reviewing document-level metadata, co-authorship, journal placement, and citation counts.[1].[5]

Research Impact

The reported citation count of 3,721 and h-index of 17 indicate that Wenqun Zhong’s published work has received notable attention in the scholarly literature. These metrics suggest that multiple publications have been cited repeatedly and that the research profile has achieved visibility beyond isolated individual papers.[1]

Citation indicators are most meaningful when interpreted within the norms of the relevant field. Biomaterials research often involves collaborative, interdisciplinary publication patterns, and citation activity may be influenced by journal scope, application relevance, methods adoption, and the rate at which related biomedical materials research develops.[2]

Award Suitability

The Best Scholar Award profile for Wenqun Zhong is supported by a combination of institutional affiliation, subject relevance, indexed output, citation visibility, and field alignment. The researcher’s biomaterials focus is relevant to materials science and engineering recognition frameworks, including award programs that acknowledge academic contributions in metallurgical and materials-related disciplines.[4]

  • The profile identifies a clear institutional affiliation with Wuhan University.
  • The subject area of biomaterials aligns with interdisciplinary materials research and engineering applications.
  • The Scopus record reports 38 documents, 3,721 citations, and an h-index of 17.[1][4]

Conclusion

Wenqun Zhong’s academic profile reflects an established research presence in biomaterials, supported by indexed publication activity, substantial citation visibility, and affiliation with Wuhan University. For the Best Scholar Award context, the available data support a professional recognition profile grounded in measurable scholarly indicators and field relevance. Final evaluation should rely on verified publication metadata, DOI-linked records, and the official criteria of the Metallurgical Engineering Awards.[1][5]

References

  1. Elsevier. (n.d.). Scopus author details: Wenqun Zhong, Author ID 56493889500. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=56493889500
  2. Wenqun Zhong., & et. al. (2018). Exosomal PD-L1 contributes to immunosuppression and is associated with anti-PD-1 response.
    https://www.nature.com/articles/s41586-018-0392-8
  3. Wenqun Zhong., & et. al. (2017). PAK signalling drives acquired drug resistance to MAPK inhibitors in BRAF-mutant melanomas.
    https://www.nature.com/articles/nature24040
  4. Wenqun Zhong., & et. al. (2022). ICAM-1-mediated adhesion is a prerequisite for exosome-induced T cell suppression.
    https://www.cell.com/developmental-cell/fulltext/S1534-5807(22)00002-8
  5. Wenqun Zhong., & et. al. (2016). Oncogenic BRAF-mediated melanoma cell invasion.
    https://www.cell.com/cell-reports/fulltext/S2211-1247(16)30517-4

Diya Alsafadi | Biomaterials Engineering | Research Excellence Award

Assoc. Prof. Dr. Diya Alsafadi | Biomaterials Engineering | Research Excellence Award

Director of Research for Industry center at Royal Scientific Society RSS | Jordan

Assoc. Prof. Dr. Diya Alsafadi demonstrates outstanding excellence in sustainable chemistry and biotechnology, with impactful contributions to biopolymer production, green biocatalysis, circular economy solutions, and environmental remediation. Their work on polyhydroxyalkanoates and waste-to-value conversion addresses critical global challenges in plastic pollution and resource sustainability. The research portfolio shows strong interdisciplinary depth, industrial relevance, and international collaboration, reflected in high citation impact and consistent publication in reputable journals. The Scopus profile reports 650 citations, 24 publications, and an h-index of 14, evidencing sustained scholarly influence and research leadership aligned with the core criteria of the Research Excellence Award.

Citation Metrics (Scopus)

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600

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0

650
Citations

24
Documents

14
h-index

Featured Publications

Debasish Sarkar | Bioceramics | Best Researcher Award

Debasish Sarkar | Bioceramics | Best Researcher Award

Professor at National Institute of Technology Rourkela | India

Prof. Debasish Sarkar, Ph.D., is a Professor in the Department of Ceramic Engineering at the National Institute of Technology, Rourkela, India, specializing in ceramic nanoparticles, high-temperature ceramics, refractories, and bioceramics. He earned his Ph.D. in Ceramic Engineering from NIT Rourkela, following an M.Tech in Materials and Metallurgical Engineering from IIT Kanpur and a B.Tech in Ceramic Engineering from the University of Calcutta. With more than two decades of academic and research experience, he has contributed significantly to ceramic processing, nanoparticle fabrication, microstructural engineering, and the development of advanced refractories and bioceramics. His professional achievements include securing multiple sponsored projects funded by the Department of Science and Technology, the Department of Biotechnology, and international collaborations. Sarkar has supervised numerous Ph.D. and M.Tech theses, authored over 97 peer-reviewed international journal articles, 15 conference papers, and several book chapters, in addition to publishing four books on ceramics and refractories. He also holds six patents related to advanced ceramic materials and processing. His research excellence is reflected in his Scopus profile, which records an H-index of 31, i10-index of 68, and more than 2,782 citations, underscoring his global academic impact. He has received prestigious recognitions such as the Materials Research Society of India (MRSI) Medal and has been an invited speaker at multiple international forums. As a life member of the Indian Ceramic Society, the Indian Institute of Metals, and the American Ceramic Society, Sarkar continues to drive innovation in sustainable and high-performance ceramic materials for structural, biomedical, and metallurgical applications.

Profile: Scopus | ORCID | Google Scholar

Featured Publications

Sarkar, D., Mohapatra, D., Ray, S., Bhattacharyya, S., Adak, S., & Mitra, N. (2007). Synthesis and characterization of sol–gel derived ZrO₂ doped Al₂O₃ nanopowder. Ceramics International, 33(7), 1275–1282. Cited by: 264

Adhikari, S., Sarkar, D., & Madras, G. (2017). Hierarchical design of CuS architectures for visible light photocatalysis of 4-chlorophenol. ACS Omega, 2(7), 4009–4021. Cited by: 177

Adhikari, S., Sarkar, D., & Madras, G. (2015). Highly efficient WO₃–ZnO mixed oxides for photocatalysis. RSC Advances, 5(16), 11895–11904. Cited by: 149

Swain, S. K., & Sarkar, D. (2013). Study of BSA protein adsorption/release on hydroxyapatite nanoparticles. Applied Surface Science, 286, 99–103. Cited by: 148

Adhikari, S., Sarkar, D., Chandra, K. S., Kim, D. H., & Madras, G. (2018). Understanding the morphological effects of WO₃ photocatalysts for the degradation of organic pollutants. Advanced Powder Technology, 29(7), 159–169. Cited by: 137

Adhikari, S., Banerjee, A., Eswar, N. K. R., Sarkar, D., & Madras, G. (2015). Photocatalytic inactivation of E. coli by ZnO–Ag nanoparticles under solar radiation. RSC Advances, 5(63), 51067–51077. Cited by: 105

Adhikari, S., Mandal, S., Sarkar, D., Kim, D. H., & Madras, G. (2017). Kinetics and mechanism of dye adsorption on WO₃ nanoparticles. Applied Surface Science, 420, 472–482. Cited by: 103