Rabab Nasser | Bio Materials | Best Researcher Award

Best Researcher Award

Rabab NasserJazan University, Saudi Arabia

Rabab Nasser
Affiliation Jazan University
Country Saudi Arabia
Scopus ID 24477975900
Documents 26
Citations 141
h-index 7
Subject Area Bio Materials
Event Global Mechanics Awards
ORCID 0000-0003-2806-1051

Rabab Nasser is an academic researcher affiliated with Jazan University in Saudi Arabia whose documented research profile is associated with the subject area of Bio Materials. The supplied Scopus information records 26 documents, 141 citations, and an h-index of 7. These bibliometric indicators provide a quantitative view of scholarly output and citation activity, while the detailed assessment of research quality, originality, and contribution requires consideration of individual publications and their scientific context.

The Best Researcher Award profile considers research activity in relation to established academic indicators and the broader scientific relevance of biomaterials research. Biomaterials research commonly addresses the interaction between engineered materials and biological systems, including material properties, biocompatibility, surface characteristics, tissue engineering, and biomedical applications.[2]

Abstract

This academic recognition profile presents the research record of Rabab Nasser of Jazan University, Saudi Arabia, in the context of the Best Researcher Award. The supplied bibliometric information identifies 26 Scopus-indexed documents, 141 citations, and an h-index of 7. The stated subject area is Bio Materials, a multidisciplinary field that connects materials science, biology, engineering, and biomedical applications. Research in this area frequently considers material structure, biological response, biocompatibility, surface interactions, and the development of materials for healthcare applications.[1][2]

Keywords

Rabab Nasser, Best Researcher Award, Jazan University, Saudi Arabia, Bio Materials, Biomaterials Research, Materials Science, Biomedical Materials, Research Impact, Scopus, Scholarly Publications, Global Mechanics Awards.

Introduction

Biomaterials constitute an interdisciplinary research domain concerned with materials designed or evaluated for interaction with biological environments. Their scientific study incorporates material properties, biological responses, surface behavior, degradation, mechanical characteristics, and application-specific performance. The field therefore intersects with several areas of engineering and biomedical science and can include both fundamental and applied research.[1]

Within this broader context, the research profile supplied for Rabab Nasser identifies Bio Materials as the principal subject area. The available bibliometric figures provide a basis for describing the scale of the research record, while individual publication content and verified research outputs are necessary for a more detailed assessment of specific scientific contributions.

Research Profile

The supplied research profile associates Rabab Nasser with Jazan University and the Bio Materials subject area. The Scopus Author ID provided for the profile is 24477975900. The record supplied for this article contains 26 documents, 141 citations, and an h-index of 7. Such indicators are commonly used to summarize publication activity and citation reach, although they should be interpreted alongside publication quality, authorship contribution, research significance, and disciplinary context.

Biomaterials research can involve the design and characterization of materials for biological or medical use. Important considerations include interactions between materials and cells or tissues, surface properties, biological compatibility, and functional performance. Studies of cell–biomaterial interactions, for example, examine biological responses that can influence the suitability of materials for biomedical applications.[2]

Research Contributions

The available information supports identifying Rabab Nasser’s research domain as Bio Materials, but it does not provide a verified publication-by-publication list sufficient to attribute particular discoveries, methods, or clinical applications. Accordingly, the research contribution assessment should remain grounded in the documented subject area and bibliometric record rather than attributing specific findings without supporting publication evidence.

At the field level, biomaterials research contributes to the understanding and development of materials that can function in biological environments. Relevant research themes may include material characterization, biological compatibility, tissue engineering, implant-related materials, surface modification, and advanced fabrication approaches.[2][3] These themes also illustrate the relationship between materials science and mechanics, particularly where material structure, mechanical behavior, degradation, and biological response influence functional performance.

Publications

The supplied Scopus record reports 26 documents associated with the researcher profile. Because a complete verified publication bibliography was not supplied with the profile data, individual publications are not attributed to Rabab Nasser in this article. The publication count should therefore be understood as the bibliometric figure provided for the stated Scopus author profile.

For contextual comparison, the biomaterials literature includes research addressing cell–host interactions, tissue engineering, biomedical fabrication, and the design of materials with controlled structural and biological properties.[2][3] These references are included to establish the scholarly context of the stated subject area and are not presented as publications authored by Rabab Nasser.

Research Impact

The supplied bibliometric record reports 141 citations and an h-index of 7. These indicators provide evidence of measurable citation activity associated with the identified Scopus profile. Citation metrics can be useful for evaluating research visibility, but they do not independently establish the quality, originality, societal value, or practical significance of individual research outputs.

In biomaterials research, impact may be expressed through advances in material design, characterization methods, biological compatibility, biomedical manufacturing, or translation toward practical applications. For example, research on stereolithography has examined the fabrication of structures relevant to biomedical engineering and tissue engineering, demonstrating the connection between advanced manufacturing and biomaterials applications.[3]

Award Suitability

Based on the supplied information, Rabab Nasser presents a research profile that can be considered relevant to the Best Researcher Award under the stated Bio Materials subject area. The profile contains a documented Scopus author identifier, 26 listed documents, 141 citations, and an h-index of 7, providing measurable indicators of scholarly activity.

For an award evaluation, these indicators can serve as supporting evidence rather than as the sole basis for selection. A comprehensive assessment should additionally consider the originality and quality of publications, contribution to the field, research methodology, peer-reviewed output, collaborations, practical or academic influence, and relevance to the award’s evaluation criteria.

The subject-area alignment is also relevant to mechanics-oriented research when biomaterials are studied through material behavior, mechanical properties, structural performance, deformation, surface interactions, or engineering design. Biomaterials literature demonstrates substantial interaction between materials science, biomedical engineering, and mechanics-related considerations.[1][3]

Conclusion

Rabab Nasser of Jazan University is presented in the supplied data as a researcher working within the Bio Materials subject area, with a Scopus record of 26 documents, 141 citations, and an h-index of 7. These indicators establish a measurable scholarly profile that may support consideration for the Best Researcher Award.

Final award assessment should be based on verification of the researcher’s current scholarly record and a broader qualitative review of publication quality, originality, contribution, impact, and alignment with the applicable Global Mechanics Awards criteria. This article intentionally avoids attributing specific research findings where publication-level evidence was not supplied.

References

  1. Ratner, B. D., Hoffman, A. S., Schoen, F. J., & Lemons, J. E. (2013). Biomaterials Science: An Introduction to Materials in Medicine. Elsevier.
    https://doi.org/10.1016/C2009-0-02433-7
  2. Power, K. A., Fitzgerald, K. T., & Gallagher, W. M. (2010). Examination of cell-host-biomaterial interactions via high-throughput technologies: A re-appraisal. Biomaterials, 31(26), 6667–6674.
    https://doi.org/10.1016/j.biomaterials.2010.05.029
  3. Melchels, F. P. W., Feijen, J., & Grijpma, D. W. (2010). A review on stereolithography and its applications in biomedical engineering. Biomaterials, 31(24), 6121–6130.
    https://doi.org/10.1016/j.biomaterials.2010.04.050
  4. Elsevier. (n.d.). Scopus author details: Rabab Nasser, Author ID 24477975900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=24477975900
  5. ORCID. (n.d.). Rabab Nasser — ORCID record. ORCID.
    https://orcid.org/0000-0003-2806-1051

Hassan Maleki | Bio materials | Best Researcher Award

Assist. Prof. Dr. Hassan Maleki | Bio Materials | Best Researcher Award

Medical Nanotechnology at Kermanshah University of Medical Sciences | Iran

Dr. Hassan Maleki is a distinguished researcher and faculty member at the Department of Medical Nanotechnology, School of Pharmacy, Kermanshah University of Medical Sciences. His academic journey in nanomedicine began with a Bachelor’s and Master’s in Operating Room and Medical Nanotechnology from Tehran University of Medical Sciences, followed by a Ph.D. in Medical Nanotechnology from the same institution. Dr. Maleki’s scientific contributions span across nanomedicine, biomaterials, regenerative medicine, and targeted drug delivery, reflected through his extensive publication record in high-impact journals. His works include studies such as Preparation of Imatinib Base Loaded Human Serum Albumin for Application in the Treatment of Glioblastoma, Methotrexate-Loaded PLGA Nanoparticles: Preparation, Characterization and Cytotoxicity on Human Glioblastoma Cells, Paclitaxel and Etoposide Co-Loaded mPEG-PLGA Nanoparticles: Artificial Neural Network Investigation, Effect of Paclitaxel/Etoposide Co-Loaded Polymeric Nanoparticles on Tumor Size and Survival Rate in Glioblastoma, Encapsulation of Ginger Extract in Nanoemulsions: Preparation, Characterization and in vivo Evaluation in Rheumatoid Arthritis, Nanofiber-Based Systems Against Skin Cancers: Therapeutic and Protective Approaches, Achillea Wilhelmsii–Incorporated Chitosan@Eudragit Nanoparticles for Enhanced Ulcerative Colitis Treatment, Nanotechnology-Mediated Precision Drug Delivery Strategies for Breast Cancer Treatment, Biofabricated Hydrogel Composite of Tragacanth Gum and Chitosan Loaded with Copper Oxide Nanoparticles for Enhanced Cutaneous Wound Regeneration, Evaluating the Anti-Neuropathic Effects of Naringin-Loaded Chitosan Nanocarriers in a Murine Model, and Development of 5-Fluorouracil/Etoposide Co-Loaded Electrospun Nanofibrous Scaffold for Localized Anti-Melanoma Therapy. His research leadership extends to supervising numerous graduate theses on nanofibrous dressings, hydrogels, nanoemulsions, and liposomal systems for cancer, diabetes, neurodegeneration, and wound healing. Recognized for ranking first nationwide in multiple nanotechnology competitions and exams, Dr. Maleki continues to advance interdisciplinary frontiers of nanotechnology-enabled drug delivery, biomaterial engineering, and cancer nanotherapeutics, earning recognition as one of the leading voices in translational medical nanotechnology research.

Profile: Scopus | Orcid | Google Scholar

Featured Publications:

Khoshnevisan, K., Maleki, H., Samadian, H., Shahsavari, S., Sarrafzadeh, M. H., Larijani, B., & Khorramizadeh, M. R. (2018). Cellulose acetate electrospun nanofibers for drug delivery systems: Applications and recent advances. Carbohydrate Polymers, 198, 131–141.

Samadian, H., Maleki, H., Allahyari, Z., & Jaymand, M. (2020). Natural polymers-based light-induced hydrogels: Promising biomaterials for biomedical applications. Coordination Chemistry Reviews, 420, 213432.

Khoshnevisan, K., Maleki, H., Samadian, H., Doostan, M., & Khorramizadeh, M. R. (2019). Antibacterial and antioxidant assessment of cellulose acetate/polycaprolactone nanofibrous mats impregnated with propolis. International Journal of Biological Macromolecules, 140, 1260–1268.

Samadian, H., Maleki, H., Fathollahi, A., Salehi, M., Gholizadeh, S., Derakhshankhah, H., & Jaymand, M. (2020). Naturally occurring biological macromolecules-based hydrogels: Potential biomaterials for peripheral nerve regeneration. International Journal of Biological Macromolecules, 154, 795–817.

Khoshnevisan, K., Maleki, H., Honarvarfard, E., Baharifar, H., Gholami, M., Faridbod, F., Larijani, B., & Khorramizadeh, M. R. (2019). Nanomaterial based electrochemical sensing of the biomarker serotonin: A comprehensive review. Microchimica Acta, 186(1), 49.

Ni Jiang | Bio materials | Best Researcher Award

Assoc. Prof. Dr. Ni Jiang | Bio materials | Best Researcher Award 

Associate professor, at Beijing University of Chemical Technology, China.

Ni Jiang is an Associate Professor at Beijing University of Chemical Technology, specializing in biodegradable polymers and nylon composites. With a strong academic background, she has contributed extensively to polymer research, focusing on structure regulation and high-performance applications. Her work spans hemostatic materials, antibacterial polymers, and tissue engineering scaffolds. She has received prestigious awards, including recognition as an excellent class teacher and thesis advisor. Ni Jiang has led multiple national and enterprise-funded research projects, reinforcing her expertise in material science. Her commitment to advancing sustainable polymers has earned her a distinguished reputation in academia and industry.

Professional Profile

Education 🎓

Ni Jiang’s academic journey began at Jinan University, where she completed her undergraduate studies (2001-2005). She pursued her Ph.D. at the Institute of Chemistry, Chinese Academy of Sciences (2005-2010), where she specialized in polymer science. Her doctoral research laid the foundation for her later contributions to biodegradable materials and high-performance polymers. With a strong grounding in chemistry and materials science, she has developed innovative solutions for environmental sustainability and medical applications. Her education has equipped her with a deep understanding of polymer structures, leading to breakthroughs in biodegradable polymer composites and their industrial applications.

Work Experience 💼

Ni Jiang has held various prestigious positions throughout her career. She began as an Assistant Researcher at the Institute of Chemistry, CAS (2010-2012), followed by a postdoctoral fellowship at RIKEN (2012-2015). She then joined Beijing University of Chemical Technology as a Lecturer (2016-2020) and was promoted to Associate Professor in 2021. Over the years, she has played a pivotal role in advancing polymer research, mentoring students, and collaborating with industries to develop high-performance biodegradable materials. Her extensive experience across research institutions and universities underscores her dedication to scientific innovation and education.

Research Interests 🔬

Ni Jiang’s research focuses on biodegradable polymers and nylon composites, with an emphasis on structure regulation and high-performance applications. Her work includes developing polymers for hemostatic materials, antibacterial solutions, and tissue engineering scaffolds. She also explores ways to enhance polymer performance by reducing water absorption and increasing mechanical strength. By combining fundamental research with practical applications, she aims to improve sustainability in materials science and expand the use of biodegradable polymers in medical and environmental fields. Her innovative approaches continue to push the boundaries of polymer technology.

Awards and Honors 🏅

  • 2023: Beijing University Graduation Thesis Excellent Instructor
  • 2020-2021: Excellent Class Teacher
    Her dedication to academic excellence and student mentorship has been recognized through these prestigious awards. These honors highlight her commitment to guiding students in research and fostering innovation in polymer science.

Research Projects 🔍

  • 2023: Enterprise Cooperation Project (Host)
  • 2021: Enterprise Cooperation Project (Host)
  • 2020: General Program of National Natural Science Foundation of China (Host)
  • 2018: General Program of National Natural Science Foundation of Beijing (Host)
  • 2016: Foundation for University Key Teacher by the Ministry of Education of China (Host)
  • 2011: National Natural Science Foundation of China Youth Fund (Host)
    Her successful leadership in these projects has contributed significantly to advancements in biodegradable polymer research and industrial applications.

Top Noted Publications 📚

  • “Reactive Toughening of Poly(Glycolic Acid)/Poly(ε‐Caprolactone) Blends Using Environmentally Friendly and Cost‐Effective Bio‐Based Chain Extenders”
    Authors: Wu, H.; Duan, M.Z.; Ning, Z.B.; Gan, H.Y.; Jiang, N.
    Published in: Journal of Applied Polymer Science, 2025
    This study explores the enhancement of poly(glycolic acid) (PGA) and poly(ε-caprolactone) (PCL) blends’ toughness through reactive compatibilization using bio-based chain extenders. The approach aims to improve the mechanical properties and hydrolytic stability of the blends while maintaining environmental sustainability and cost-effectiveness.

  • “Preparation of Thiolated Poly(Lactic Acid) Microspheres by Amine Ester Reaction to Simulate Three-Dimensional Inkjet Printing (3DP) Biocompatible Scaffolds”
    Authors: Ma, H.T.; Wang, Y.L.; Qu, G.H.; Guo, X.M.; Jiang, N.; Zhao, L.F.
    Published in: Chemical Engineering Journal, 2024
    This research presents a method for fabricating thiolated poly(lactic acid) (PLA) microspheres through an amine-ester reaction between cysteine and PLA in an aqueous environment. The resulting microspheres are designed to mimic the properties required for three-dimensional inkjet printing of biocompatible scaffolds, offering potential applications in tissue engineering.

  • “Rare Lamellar Assembly Mechanism on Special Spherulites of Poly(ε-Caprolactone)-b-Polyamide 6-b-Poly(ε-Caprolactone)”
    Authors: Dou, Y.Y.; Wu, H.; Zhang, L.; Ning, Z.B.; Jiang, N.; Gan, Z.H.
    Published in: Macromolecules, 2023
    This study investigates the formation conditions, internal factors, and lamellar orientation of unique spherulites in poly(ε-caprolactone)-b-polyamide 6-b-poly(ε-caprolactone) triblock copolymers. The research provides insights into the lamellar assembly mechanisms that lead to the development of these special spherulitic structures.

  • “Facile Method for the Synthesis of PCL-b-PA6-b-PCL Using Amino-Terminated PA6 as a Macroinitiator and Its Characterization”
    Authors: Dou, Y.Y.; Tian, N.; Ning, Z.B.; Jiang, N.; Gan, Z.H.
    Published in: Macromolecules, 2022
    This paper describes a straightforward synthesis method for creating poly(ε-caprolactone)-b-polyamide 6-b-poly(ε-caprolactone) (PCL-b-PA6-b-PCL) triblock copolymers. By employing amino-terminated PA6 as a macroinitiator, the study achieves well-defined copolymers and provides a comprehensive characterization of their properties.

  • “Ultra-Toughened Poly(Glycolic Acid)-Based Blends with Controllable Hydrolysis Behavior Fabricated via Reactive Compatibilization”
    Authors: Wu, H.; Wang, C.Y.; Ning, Z.B.; Jiang, N.; Gan, Z.H.
    Published in: European Polymer Journal, 2022
    This research focuses on developing ultra-toughened poly(glycolic acid) (PGA)-based blends with adjustable hydrolysis rates. Through reactive compatibilization, the study enhances the miscibility and mechanical properties of PGA when blended with poly(ε-caprolactone) (PCL), resulting in materials with tailored degradation profiles suitable for biomedical applications.

Conclusion

Ni Jiang is a strong candidate for the Best Researcher Award, given the depth of research, impactful publications, and contributions to polymer science. Enhancing international collaborations and increasing research awards could further solidify her candidacy.