Fatema Safri | Heapatology and Oncology | Best Researcher Award

Best Researcher Award

Fatema Safri
Affiliation Westmead Institute for Medical Research
Country Australia
Scopus ID 58944753700
Documents 6
Citations 146
h-index 2
Subject Area Hepatology and Oncology
Event International Physics and Quantum Physics Awards

Fatema Safri is affiliated with the Westmead Institute for Medical Research, Australia, and has contributed to scholarly investigations within hepatology and oncology. Her research activities focus on understanding disease mechanisms, clinical outcomes, and evidence-based healthcare approaches. Through peer-reviewed publications and collaborative scientific efforts, her work contributes to ongoing developments in biomedical research and patient-centered healthcare studies.[1]

Abstract

This academic profile summarizes the scholarly contributions of Fatema Safri in the fields of hepatology and oncology. The profile highlights publication activity, citation metrics, research influence, and scientific contributions relevant to biomedical research. The overview is intended to provide an objective assessment of research achievements and academic impact based on publicly available scholarly indicators.[1]

Keywords

Hepatology, Oncology, Medical Research, Clinical Studies, Biomedical Science, Cancer Research, Liver Disease Research, Healthcare Innovation, Translational Medicine, Academic Publications.

Introduction

Research in hepatology and oncology contributes significantly to the understanding, diagnosis, treatment, and prevention of complex diseases. Scientific investigations in these disciplines support advancements in clinical practice and healthcare outcomes. Fatema Safri’s academic work forms part of this broader research landscape through studies that contribute to evidence-based medical knowledge and patient care strategies.[2]

Research Profile

The available bibliometric indicators reflect participation in peer-reviewed research and collaborative scientific studies. These metrics provide insight into publication visibility and scholarly engagement within the research community.[1]

Research Contributions

  • Participation in hepatology-related clinical and translational research.
  • Contributions to oncology studies involving disease progression and treatment outcomes.

Publications

The researcher has contributed to scholarly publications addressing topics associated with hepatology, oncology, and related biomedical disciplines. Published work supports ongoing scientific discussion and dissemination of research findings.[1][3]

  1. Peer-reviewed journal articles.
  2. Collaborative biomedical research publications.

Research Impact

Citation records indicate engagement with the research output by other scholars and healthcare researchers. The citation count and publication metrics suggest that the published work has contributed to scientific discussions within relevant biomedical fields.[1][2]

Award Suitability

Fatema Safri’s scholarly record demonstrates participation in scientific research, publication activity, and contribution to biomedical knowledge. These attributes align with common evaluation criteria used in academic recognition programs that acknowledge research productivity, scholarly engagement, and scientific contribution. Such accomplishments support consideration for recognition through the International Physics and Quantum Physics Awards framework.[1]

Conclusion

Fatema Safri’s academic profile reflects active engagement in hepatology and oncology research through publication, collaboration, and scientific investigation. Her contributions form part of the broader effort to advance biomedical knowledge and improve understanding of important healthcare challenges. The documented research activities and scholarly outputs illustrate ongoing participation in the scientific community.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Fatema Safri, Author ID 58944753700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=58944753700
  2. R., Safri, F., Xu, Y., Zhou, Y., Bao, J.-F., George, J., & Qiao, L. (2026). CDKN2A alterations as possible molecular link between environmental pollutants and pathogenesis of liver cancer: Epidemiology, mechanisms, and insights. Hepatobiliary & Pancreatic Diseases International. Advance online publication.
    https://doi.org/10.1016/j.hbpd.2026.05.008
  3. Nguyen, R., Safri, F., Sharma, A., Howell, J., Roberts, S. K., Strasser, S. I., Zekry, A., Wigg, A., Adams, L. A.Clinical need and research investment for liver cancer in Australia. Asia-Pacific Journal of Clinical Oncology. Advance online publication.
    https://doi.org/10.1111/ajco.70055

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Muhammad Mohsin | Energies | Research Excellence Award

Mr. Muhammad Mohsin | Energies | Research Excellence Award

Seoul National University of Science and Technology | South Korea

Muhammad Mohsin, design and numerical validation of a compact 50 W linear generator intended for integration with a 30 W-class radioisotope Stirling converter, targeting high-reliability power systems for space and remote applications. Conducted by Muhammad Mohsin, Dae-Jin Kim, and Kyuho Sim, the work scales down a proven 1 kW reference model to achieve high efficiency while maintaining a reduced form factor suitable for constrained environments. Electromagnetic and system-level simulations were carried out using ANSYS Maxwell and SAGE software to optimize key parameters such as magnetic circuit geometry, winding configuration, air-gap dimensions, and operating frequency. The proposed design achieves a stable electrical output of 50 W with approximately 90% conversion efficiency, demonstrating effective electromagnetic coupling and minimized losses. The finalized generator exhibits a compact overall size of 96 mm, making it well suited for applications where mass, volume, and long-term operational stability are critical. Simulation results confirm reliable performance under expected operating conditions and validate the feasibility of integrating the generator with low-power Stirling engines. The study provides valuable design guidelines for scaling linear alternators to lower power levels without compromising efficiency, and it contributes to the advancement of compact energy conversion technologies for robotics, radioisotope power systems, and future space exploration missions.

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