Izaz Ul Haq | Materials Science | Research Excellence Award

Research Excellence Award

Izaz Ul Haq
Researcher Izaz Ul Haq
Affiliation Nanjing Tech University
Country China
Scopus ID 57426382800
Documents 7
Citations 486
h-index 5
Subject Area Materials Science
Event Global Particle Physics Excellence Awards

The Research Excellence Award article presents an academic overview of the scholarly profile of Izaz Ul Haq, a researcher affiliated with Nanjing Tech University, China. The profile summarizes publicly available bibliometric indicators, research activities, publication record, scientific impact, and relevance to international research recognition programs. The information is intended to provide a neutral overview consistent with encyclopedic and academic documentation standards.[1]

Abstract

Izaz Ul Haq has contributed to the field of Materials Science through scholarly publications indexed in Scopus. His research profile indicates consistent engagement with materials characterization, advanced functional materials, and interdisciplinary scientific investigations. Bibliometric indicators including publication count, citation performance, and h-index provide measurable evidence of scientific influence within the research community.[1][2]

Keywords

  • Materials Science
  • Advanced Materials
  • Nanomaterials
  • Scientific Publications
  • Research Impact
  • Scopus Author Profile
  • Research Excellence Award
  • Global Particle Physics Excellence Awards

Introduction

Research evaluation commonly incorporates publication quality, citation metrics, collaboration networks, and scientific contributions. Publicly available bibliographic databases such as Scopus provide standardized indicators that facilitate transparent assessment of research productivity across disciplines.[1]

Research Profile

According to the available Scopus author profile, Izaz Ul Haq has authored seven indexed documents and accumulated 486 citations with an h-index of 5. The recorded publications demonstrate participation in peer-reviewed scientific research associated with Materials Science and related interdisciplinary domains.[1]

Research Contributions

The available publication portfolio reflects investigations involving advanced materials, synthesis methods, characterization techniques, and material performance analysis. Such research contributes to the broader understanding of functional materials with applications across engineering and applied sciences.[2]

  • Development of advanced material systems.
  • Experimental characterization techniques.

Publications

The publication record indexed in Scopus demonstrates sustained scholarly output. Representative research topics include advanced materials, nanostructured systems, and material engineering methodologies. Individual articles are associated with persistent digital identifiers (DOIs) where assigned by publishers.[2]

Research Impact

Citation-based indicators suggest that the research has received measurable academic attention. Citation counts and h-index values provide quantitative evidence of scholarly visibility while recognizing that research impact may also extend through collaboration, technological applications, and educational influence.[1]

Award Suitability

Based on publicly available bibliometric information, the researcher demonstrates characteristics commonly considered during evaluations for scientific recognition programs, including peer-reviewed publications, citation performance, and active participation in Materials Science research. Final eligibility for the Global Particle Physics Excellence Awards remains subject to the official review criteria established by the organizing committee.[3]

Conclusion

The academic profile of Izaz Ul Haq reflects measurable scholarly activity supported by indexed publications and citation metrics. Continued research dissemination, collaboration, and scientific innovation are expected to strengthen future academic contributions within Materials Science and related interdisciplinary fields.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Izaz Ul Haq, Author ID 57426382800. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57426382800
  2. Muhammad, S., Muhammad, I., ul Haq, I., Sang, P., Niu, K., Zhang, Z., & Li, Y. (2026). Stability and efficiency improvement of CsSnI3-based perovskite solar cells by DFT and SCAPS simulations. Physica Scripta, 101(21), 215904..
    https://doi.org/10.1088/1402-4896/ae6bdb
  3. Rehman, W. U., Ali, A., Alsalhi, S. A., Saidani, T., Haq, I. U., & Khan, I. (2025). Strain-induced effects on the physical properties of rare-earth magnetic oxides RMO₃ (R = La, Pr; M = Fe, Mn) via first principles. Materials Science in Semiconductor Processing, 188.
    https://doi.org/10.1016/j.mssp.2024.109153

Minyan Yan | Materials Science | Best Researcher Award

Pro. Minyan Yan | Materials Science | Best Researcher Award

Scopus Profile

Educational Details:

Prof. Minyan Yan earned a PhD in Materials Science and Engineering, specializing in hydrogen storage materials and systems. His doctoral research focused on experimental studies and theoretical modeling of materials aimed at advancing hydrogen storage technologies, specifically the Li-Mg-N-H systems.

Professional Experience

Prof. Yan is currently a faculty member at Taiyuan University of Science and Technology, China. He leads three significant research projects: one funded by the National Natural Science Foundation of China, another supported by the Fundamental Research Program of Shanxi Province, and a third sponsored by the Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi. With a strong background in both academic research and industry consultancy, Prof. Yan has contributed to three consultancy/industry projects, demonstrating his ability to bridge research and practical applications.

Research Interest

Prof. Yan’s research focuses on hydrogen storage materials, particularly lightweight Li-Mg-N-H systems. His work includes experimental research, theoretical modeling, and developing advanced technologies for improving hydrogen storage performance. He has made key contributions in understanding heat transfer limitations and transition metal effects on hydrogen storage at the electronic structure level, and he has developed a numerical model for Li-Mg-N-H systems that accounts for temperature and pressure fields.

Top Notable Publications

Zhang, H., Yan, M., Gong, C., Zhang, M., & Yan, X. (2024). Effect of V doping on the electronic structure and hydrogen storage performance of the Li-Mg-N-H material. Computational Materials Science, 236, 112850.
Citations: 0

Hu, X., Shen, K., Han, C., Yan, M., & Zhang, M. (2023). Uniform loading of ultrathin MoS2 nanosheets on hollow carbon spheres with mesoporous walls as efficient sulfur hosts for promising lithium-sulfur batteries. Journal of Alloys and Compounds, 965, 171427.
Citations: 6

Xing, Y., Zhang, M., Guo, J., Zhao, M., & Yan, M. (2023). CeO2/Ce2S3 modified carbon nanotubes as efficient cathode materials for lithium-sulfur batteries. Journal of Solid State Electrochemistry, 27(4), 1033–1044.
Citations: 7

Hu, X., Shen, K., Han, C., Yan, M., & Zhang, M. (2023). Ultra-thin MoO2 nanosheets loaded on hollow mesoporous carbon spheres promoting polysulfide adsorption and redox kinetics for lithium-sulfur batteries. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 660, 130881.
Citations: 3

Hu, X., Shen, K., Han, C., Yan, M., & Zhang, M. (2022). Rational design of ultrathin Mo2C/C nanosheets decorated on mesoporous hollow carbon spheres as a multifunctional sulfur host for advanced Li-S batteries. Journal of Alloys and Compounds, 918, 165667.
Citations: 11

Xing, Y., Zhang, M., Guo, J., Hu, X., & Yan, M. (2022). Simple synthesis of PEG@CeO2-CNT/S composite materials as anode materials for lithium-sulfur batteries. Journal of Physics and Chemistry of Solids, 169, 110832.
Citations: 3

Yan, M., Gong, C., Zhang, H., & Zhang, M. (2022). First-Principles Study on the Effect of Ti Doping on Hydrogen Storage Performance of Li-Mg-N-H Materials. Journal of Synthetic Crystals, 51(2), 297–303.
Citations: 1

Yan, M., Sun, F., Liu, X., Wang, S., & Jiang, L. (2016). Hydrogen desorption properties of Mg(NH2)2-2LiH material influenced by ambient air. Chinese Journal of Rare Metals, 40(7), 666–672.
Citations: 0

Yan, M.-Y., Sun, F., Liu, X.-P., Wang, S.-M., & Jiang, L.-J. (2015). Effects of graphite content and compaction pressure on hydrogen desorption properties of Mg(NH2)2-2LiH based tank. Journal of Alloys and Compounds, 628, 63–67.
Citations: 13

Conclusion

In summary, Prof. Minyan Yan’s robust academic background, significant research contributions, successful project leadership, and engagement with industry position him as an exceptional candidate for the Best Researcher Award. His work has a meaningful impact on the field of materials science and addresses pressing challenges in hydrogen storage.