Guoqing Wu | Material Science | Excellence in Research Award

Excellence in Research Award

Guoqing Wu
Researcher Guoqing Wu
Affiliation Yangzhou University
Country China
Scopus ID 55483749200
Documents 31
Citations 447
h-index 10
Subject Area Material Science
Event Global Particle Physics Excellence Awards

The Excellence in Research Award recognizes sustained scholarly achievement, research productivity, and scientific contributions within the field of material science. Guoqing Wu, affiliated with Yangzhou University, has developed an academic profile characterized by peer-reviewed publications, measurable citation impact, and continued engagement in materials-related research. The evaluation presented in this article summarizes publicly available bibliometric indicators together with an overview of research activities and academic contributions.[1]

Abstract

This article summarizes the academic profile of Guoqing Wu using publicly available bibliometric information and scholarly records. The profile indicates continued research activity in material science, supported by peer-reviewed publications, citation performance, and collaboration within the scientific community. Recognition through the Excellence in Research Award reflects scholarly productivity and professional contribution rather than a single publication or project.[1]

Keywords

  • Material Science
  • Research Excellence
  • Scientific Publications
  • Bibliometric Analysis
  • Citation Impact
  • Academic Recognition

Introduction

Academic awards acknowledge researchers whose work demonstrates sustained scientific engagement and measurable scholarly influence. Bibliometric indicators including publication output, citation counts, and h-index are commonly used as complementary measures when evaluating research performance alongside qualitative academic achievements.[2]

Research Profile

Guoqing Wu is affiliated with Yangzhou University in China and conducts research within the field of material science. According to publicly available Scopus records, the researcher has authored 31 indexed publications that have collectively received 447 citations, resulting in an h-index of 10. These indicators reflect continued scholarly activity and participation in peer-reviewed scientific research.[1]

Research Contributions

The available publication record indicates contributions to material science through experimental investigation, scientific collaboration, and dissemination of research findings in scholarly journals. Continued publication activity contributes to knowledge development while supporting collaboration across the broader scientific community.[1]

  • Peer-reviewed scientific publications.
  • Research collaboration within material science.

Publications

The publication portfolio comprises peer-reviewed articles indexed within Scopus. Individual publications contribute collectively to the researcher’s citation profile and academic visibility. Many scholarly publications incorporate Digital Object Identifiers (DOIs), providing persistent identification and long-term accessibility for published research.[3]

Research Impact

Bibliometric indicators demonstrate measurable research influence. With 31 indexed publications, 447 citations, and an h-index of 10, the available metrics suggest continuing scholarly engagement within the discipline. Citation-based indicators should be interpreted alongside peer review, scientific quality, originality, and broader academic contribution.[2]

Award Suitability

Based on publicly available academic information, Guoqing Wu demonstrates characteristics commonly considered during research award evaluations, including sustained publication activity, Final award decisions typically incorporate additional qualitative assessment such as originality, scientific significance, innovation, leadership, and professional service.[2]

Conclusion

The academic record of Guoqing Wu reflects continued engagement in material science research through peer-reviewed publications and measurable citation impact. The profile aligns with the objectives of the Excellence in Research Award by highlighting sustained scholarly activity while emphasizing the importance of balanced quantitative and qualitative evaluation in academic recognition.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Guoqing Wu, Author ID 55483749200. Scopus.
    https://www.scopus.com/pages/authors/55483749200
  2. Morphology and magneto-electronic transport of (MoxBi1−x)2Se3 (x = 0.1): Evidence for topological semimetal behavior. Materials Science and Engineering: B, 325, 119115.
    https://doi.org/10.1016/j.mseb.2025.119115
  3. opological semiconducting behavior in (VxBi1−x)2Se3 (x = 0.1): Atomic-scale structure, morphology and magneto-electronic transport. Solid State Communications, 409, 116301..
    https://doi.org/10.1016/j.ssc.2025.116301

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

Lijun Luan | Materials Science | Research Excellence Award

Research Excellence Award

Lijun Luan
Affiliation Chang’an University
Country China
Scopus ID 24171546900
Documents 68
Citations 713
h-index 16
Subject Area Materials Science
Event Global Particle Physics Excellence Awards

Lijun Luan is a researcher affiliated with Chang’an University, China, whose scholarly activities are primarily associated with materials science, crystal growth, semiconductor materials, magnetic materials, and computational investigations of advanced functional materials. According to publicly available Scopus author metrics, the researcher has produced a substantial body of peer-reviewed work, achieving measurable academic influence through publications, citations, and collaborative research contributions.[1] The present article evaluates the academic profile, research achievements, and suitability of Lijun Luan for recognition through a Research Excellence Award within the framework of the Global Particle Physics Excellence Awards.

Abstract

This article presents a scholarly overview of the research profile of Lijun Luan. The evaluation focuses on publication productivity, research themes, citation performance, and contributions to materials science. Through investigations involving crystal growth, semiconductor materials, magnetic ferrites, dielectric materials, and computational modeling.Available bibliometric indicators demonstrate sustained academic productivity and international scientific engagement.[1]

Keywords

Materials Science; Semiconductor Materials; Crystal Growth; Magnetic Materials; Functional Materials; Ferrites; Computational Materials Science; Nanostructures; Research Excellence Award; Scientific Impact

Introduction

Materials science plays a central role in technological innovation by enabling the development of advanced electronic, magnetic, optical, and structural materials. Researchers in this field contribute to the understanding of material properties and their applications across engineering and industrial sectors. Lijun Luan’s scholarly activities align with these objectives through investigations into crystal engineering, semiconductor technologies, magnetic materials, and theoretical material analysis.[2]

Research Profile

Based on available Scopus author information, Lijun Luan has authored or co-authored 68 indexed documents and accumulated 713 citations, resulting in an h-index of 16.[1] The research profile demonstrates active collaboration with national and international researchers and reflects engagement with both experimental and computational approaches to materials science.

  • Advanced semiconductor materials research.
  • Crystal growth and defect engineering.

Research Contributions

A notable component of Luan’s research portfolio involves the investigation of crystal growth mechanisms and optimization of material properties for electronic and photonic applications.dielectric enhancement strategies, and heterojunction structures for energy conversion applications.Such investigations support the development of advanced materials with improved functionality for technological applications.[3][4]

Publications

Selected recent publications associated with Lijun Luan include:

  • Asymmetric Surface Modification of CdTe Single Crystals for Electrode Optimization in Photon-Counting Detectors (2026).
  • First-Principles Calculations of a Direct Z-Scheme AsP/SnSe2 Heterojunction with High Solar-to-Hydrogen Efficiency (2025).

Research Impact

Research impact may be evaluated through scholarly output, citation influence, and the relevance of contributions to scientific advancement. The available metrics indicate that Lijun Luan’s publications have received substantial scholarly attention, with citations distributed across a broad collection of scientific documents. The h-index further reflects a sustained pattern of cited research contributions.[1]

Award Suitability

Lijun Luan demonstrates several characteristics commonly associated with Research Excellence Award recognition, including sustained publication activity, measurable citation impact, active participation in collaborative scientific research, and contributions to the advancement of materials science. The researcher’s work spans both fundamental and applied investigations, supporting innovation in electronic, magnetic, and semiconductor material systems.

  • Consistent publication record in peer-reviewed journals.
  • Demonstrated citation impact.

Conclusion

The academic record of Lijun Luan reflects meaningful contributions to materials science through research on semiconductor materials, crystal growth, magnetic ferrites, and computational material design. Bibliometric indicators and publication activity demonstrate a productive research career characterized by scientific collaboration and scholarly influence. These achievements support consideration for recognition through a Research Excellence Award in acknowledgment of sustained contributions to scientific research and innovation.

References

  1. Elsevier. (n.d.). Scopus author details: Lijun Luan, Author ID 24171546900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=24171546900
  2. Luan, L., Han, S., Zhao, Y., & Zheng, X. (2026). Synergistic regulation of dielectric and magnetic properties of yttrium iron garnet via co-doping with Bi and rare-earth elements. Journal of Alloys and Compounds, 1077, 189515. Journal of Alloys and Compounds.
    https://doi.org/10.1016/j.jallcom.2026.189515
  3. Zhang, S., Qiao, Y., Li, G., Yang, B., Cheng, Y., Ding, S., & Luan, L. (2026). Single crystal growth, point defects and optoelectronic properties of Cd0.9Mn0.1Te. Journal of Crystal Growth, 682, 128531. Journal of Alloys and Compounds.
    https://doi.org/10.1016/j.jcrysgro.2026.128531
  4. Luan, L., et al. (2025). Zheng, X., Luan, L., Lv, X., Han, S., Zhang, S., & Duan, L. (2025). First-principles calculations of a direct Z-scheme AsP/SnSe₂ heterojunction with high solar-to-hydrogen efficiency. Micro and Nanostructures, 208, 208348..
    https://doi.org/10.1016/j.micrna.2025.208348

Sergey Taskaev | Generation of Neutrons and Their Applications | Research Excellence Award

Research Excellence Award

Sergey Taskaev
Affiliation Budker Institute of Nuclear Physics
Country Russia
Scopus ID 55886288000
Documents 192
Citations 2036
h-index 22
Subject Area Generation of Neutrons and Their Applications
Event Global Particle Physics Excellence Awards

Sergey Taskaev is a Russian physicist associated with the Budker Institute of Nuclear Physics whose research has contributed significantly to neutron generation technologies, accelerator-based neutron sources, boron neutron capture therapy (BNCT), radiation instrumentation, and applied nuclear physics. His scholarly record includes extensive publications and citations, reflecting sustained contributions to the development of neutron production systems and their applications in medicine, materials science, and experimental physics.[1]

Abstract

This article presents an academic overview of Sergey Taskaev and his contributions to neutron generation technologies and their scientific applications. His work has focused on accelerator-based neutron sources, neutron beam diagnostics, boron neutron capture therapy, neutron detector development, and nuclear reaction measurements.[2]

Keywords

Generation of Neutrons; Accelerator Physics; Boron Neutron Capture Therapy; Nuclear Instrumentation; Fast Neutron Detection; Radiation Physics; Neutron Sources; Particle Physics Applications; Nuclear Reactions; Beam Diagnostics.

Introduction

Neutron science represents a significant branch of modern nuclear and particle physics due to its applications in medicine, materials characterization, reactor technology, and experimental investigations.Sergey Taskaev’s research activities align closely with these objectives through the development of accelerator-driven neutron systems and related instrumentation.[1]

Research Profile

Taskaev’s scholarly portfolio demonstrates extensive involvement in nuclear physics, accelerator technology, neutron production, radiation measurement systems, and therapeutic neutron applications. His publication record includes peer-reviewed articles addressing neutron source engineering, detector technologies, proton beam diagnostics, neutron moderation systems, and nuclear reaction measurements.[3]

  • Accelerator-based neutron source development
  • Boron neutron capture therapy technologies
  • Fast neutron detection systems

Research Contributions

His research also includes neutron moderation systems employing advanced materials, neutron detector registration technologies, beam parameter measurements, and studies of irradiation methods using vacuum-insulated tandem accelerators. Such developments contribute to precision measurements and enhanced performance of neutron-based experimental facilities.[3]

Publications

  • Accelerator Based Neutron Source VITA for Boron Neutron Capture Therapy and Other Applications (2026).
  • A Polyethylene Moderator with Volumetric Bismuth Inclusions for Boron Neutron Capture Therapy (2026).
  • Fast Neutron Detector Registration System (2026).

Research Impact

The research output associated with Sergey Taskaev demonstrates measurable scholarly influence through a substantial citation record and an established h-index. His investigations have contributed to the international development of neutron-based therapeutic technologies and advanced experimental instrumentation. The interdisciplinary nature of his work connects nuclear physics, particle physics, medical physics, and engineering applications.[1]

Award Suitability

Sergey Taskaev’s research profile aligns strongly with the objectives of the Global Particle Physics Excellence Awards. His sustained contributions to neutron generation technologies, accelerator-based systems, radiation instrumentation, and particle-related applications demonstrate scientific significance and practical relevance..[2]

Conclusion

Sergey Taskaev has established a significant academic presence through research focused on neutron generation and its applications. His work supports scientific progress in accelerator physics, nuclear instrumentation, radiation technologies, and medical applications. The breadth of his publications and impact metrics indicates a sustained contribution to contemporary nuclear and particle physics research.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Sergey Taskaev, Author ID 55886288000. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=55886288000
  2. Maltseva, V. D., Bykov, T. A., Chesnokova, Y. L., Deeb, R., Degtyareva, M. A., Dmitrieva, E. S., Kasatova, A. I., Kasatov, D. A., Taskaeva, I., Uspenskii, S. A., & Taskaev, S. Y. (2026). Application of the prompt γ-ray spectroscopy in the boron neutron capture therapy of pets. Applied Radiation and Isotopes, 234, 112648.
    https://doi.org/10.1016/j.apradiso.2026.112648
  3. Taskaev, S. (n.d.). Google Scholar profile. Google Scholar.
    https://scholar.google.com/citations?user=LCWzYloAAAAJ&hl=ru

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Mozahar Ali | Computational Materials | Best Researcher Award

Assis Prof Dr. Mozahar Ali | Computational Materials | Best Researcher Award

Orcid Profile 

Google Scholar Profile

Educational Details:

md. mozahar ali holds a Ph.D. in Engineering with a specialization in Functional Material Systems from the University of Yamanashi, Japan, awarded in 2017. He also obtained a Postgraduate Diploma in Condensed Matter Physics from the Abdus Salam International Centre for Theoretical Physics (ICTP) in Italy in 2011. His academic excellence is further demonstrated by his M.Sc. in Solid State Physics, where he achieved 1st class honors, ranking 4th in his class at the University of Rajshahi in 2007. He earned his B.Sc. (Hons.) in Physics from the same university, graduating with 1st class honors and securing the 3rd position in 2006. Additionally, he completed his Higher Secondary Certificate (H.S.C.) in Science from Govt. A. H. College, Bogura, with a 1st Division in 2002, and his Secondary School Certificate (S.S.C.) in Science from A. U. C. M. High School, Bogura, also with a 1st Division in 2000.

 

Professional Experience

md. mozahar ali has accumulated extensive academic experience through various positions in higher education. He currently serves as an Assistant Professor at the American International University-Bangladesh (AIUB) since May 2022. Prior to this, he held the position of Assistant Professor in the Department of Basic Sciences at Primeasia University, Dhaka, from October 2021 to May 2022. His experience also includes serving as an Assistant Professor in the Department of Mathematics and Natural Sciences at BRAC University from May 2019 to July 2020, and earlier as an Assistant Professor at AIUB from May 2018 to April 2019. Additionally, he worked as an Assistant Professor at the International Islamic University Chittagong (IIUC) from July 2017 to May 2018 and as a Lecturer at the same institution from March 2013 to September 2013. In 2019, he further enhanced his teaching skills by completing a professional training program in Theory and Practice of Learner-Centered Teaching at BRAC University.

Research Interest

md. mozahar ali’s research focuses on:

Crystal growth and characterization of functional oxides

Computational physics

Ab-initio studies of metal alloys, semiconductors, and superconductors

He has published a significant body of work and has been recognized with several awards, including the United Group Research Award in 2019 for outstanding research in General Science and Engineering and a gold medal for academic excellence during his B.Sc. (Hons.) studies.

Top Notable Publications

Superconducting Double Perovskite Bismuth Oxide Prepared by a Low‐Temperature Hydrothermal Reaction
MHK Rubel, A Miura, T Takei, N Kumada, M Mozahar Ali, M Nagao, …
Angewandte Chemie 126 (14), 3673-3677, 2014
Citations: 101

Hydrothermal synthesis, crystal structure, and superconductivity of a double-perovskite Bi oxide
MHK Rubel, T Takei, N Kumada, MM Ali, A Miura, K Tadanaga, K Oka, …
Chemistry of Materials 28 (2), 459-465, 2016
Citations: 68

Hydrothermal synthesis of a new Bi-based (Ba<sub>0.82</sub>K<sub>0.18</sub>)(Bi<sub>0.53</sub>Pb<sub>0.47</sub>)O<sub>3</sub> superconductor
MHK Rubel, T Takei, N Kumada, MM Ali, A Miura, K Tadanaga, K Oka, …
Journal of Alloys and Compounds 634, 208-214, 2015
Citations: 43

Physical properties of a novel boron-based ternary compound Ti<sub>2</sub>InB<sub>2</sub>
MM Ali, MA Hadi, I Ahmed, A Haider, A Islam
Materials Today Communications 25, 101600, 2020
Citations: 37

First− principles study: Structural, mechanical, electronic and thermodynamic properties of simple− cubic− perovskite (Ba<sub>0.62</sub>K<sub>0.38</sub>)(Bi<sub>0.92</sub>Mg<sub>0.08</sub>)O<sub>3</sub>
MHK Rubel, MM Ali, MS Ali, R Parvin, MM Rahaman, KM Hossain, …
Solid State Communications 288, 22-27, 2019
Citations: 31

Hydrothermal Synthesis, Structure, and Superconductivity of Simple Cubic Perovskite (Ba<sub>0.62</sub>K<sub>0.38</sub>)(Bi<sub>0.92</sub>Mg<sub>0.08</sub>)O<sub>3</sub> with Tc ∼ 30 K
MHK Rubel, T Takei, N Kumada, MM Ali, A Miura, K Tadanaga, K Oka, …
Inorganic Chemistry 56 (6), 3174-3181, 2017
Citations: 30

New superconductor (Na<sub>0.25</sub>K<sub>0.45</sub>)Ba<sub>3</sub>Bi<sub>4</sub>O<sub>12</sub>: A first-principles study
MS Ali, M Aftabuzzaman, M Roknuzzaman, MA Rayhan, F Parvin, MM Ali, …
Physica C: Superconductivity and its Applications 506, 53-58, 2014
Citations: 29

DFT investigations into the physical properties of a MAB phase Cr<sub>4</sub>AlB<sub>4</sub>
MM Ali, MA Hadi, ML Rahman, FH Haque, A Haider, M Aftabuzzaman
Journal of Alloys and Compounds 821, 153547, 2020
Citations: 25

Influence of heavy Hf doping in CeO<sub>2</sub>: prediction on various physical properties
KM Hossain, SK Mitro, SA Moon, MM Ali, S Chandra, MA Hossain
Results in Physics 37, 105569, 2022
Citations: 10

Conclusion

In summary, Assist Prof Dr. Md. Mozahar Ali stands out as a highly qualified candidate for the Best Researcher Award due to his exemplary educational background, extensive professional experience, significant research contributions, and alignment with current scientific challenges. His commitment to advancing knowledge in computational materials and his impactful research trajectory make him an excellent choice for this honor.