Zhen Tang | Flexible Electronics | Innovative Research Award

Innovative Research Award

Zhen Tang | Xiangtan Institute of Technology

Zhen Tang
Affiliation Xiangtan Institute of Technology
Country China
Scopus ID 57199840521
Documents 1
Citations 11
h-index 1
Subject Area Flexible Electronics
Event Global Mechanics Awards

Zhen Tang is a researcher affiliated with Xiangtan Institute of Technology, China, whose stated research area is flexible electronics. The available bibliographic profile records one document, 11 citations, and an h-index of 1. These indicators provide a concise bibliometric snapshot of the researcher’s indexed scholarly activity and may be considered alongside the nature, originality, relevance, and potential applications of the underlying research. [1]

The Innovative Research Award profile presents Zhen Tang in the context of the World Neuroscientists Awards. Because the supplied research information identifies flexible electronics as the principal subject area, the academic profile is best understood through the broader interdisciplinary significance of flexible and deformable electronic technologies, which have applications across sensing, wearable systems, biomedical interfaces, and other emerging technology domains. [2]

Abstract

This academic recognition profile concerns Zhen Tang, affiliated with Xiangtan Institute of Technology in China, whose identified subject area is flexible electronics. Flexible electronics is an interdisciplinary field concerned with electronic devices and systems capable of conforming to curved, deformable, or mechanically flexible structures. The field combines concepts from materials science, electronics, engineering, fabrication, sensing, and related disciplines. [2] The available Scopus profile records one indexed document, 11 citations, and an h-index of 1. [1] These bibliometric values should be interpreted as indicators of indexed research activity rather than as standalone measures of research quality.

Keywords

  • Zhen Tang
  • Xiangtan Institute of Technology
  • Flexible electronics
  • Flexible electronic devices
  • Wearable electronics
  • Electronic materials
  • Innovation
  • Interdisciplinary research
  • Bibliometric profile
  • Research impact

Introduction

Flexible electronics has developed as an important research direction within modern electronics and materials engineering. Unlike conventional rigid electronic systems, flexible electronic technologies seek to maintain electrical functionality while allowing mechanical bending, stretching, folding, or conformal integration. Such approaches can support new device architectures and applications in areas where conventional rigid components present mechanical or geometrical limitations. [2]

Research in the field commonly involves flexible substrates, conductive materials, semiconducting components, sensors, thin-film structures, fabrication methods, and device integration. The development of mechanically compliant electronic systems has also contributed to research into wearable and bio-integrated technologies, where electronics may need to operate on or near non-planar surfaces. [3]

Within this broader research landscape, Zhen Tang’s stated subject area of flexible electronics places the research profile within a multidisciplinary domain characterized by interaction between materials, device engineering, manufacturing, and application-oriented electronics. The available bibliometric record provides an indexed basis for documenting this research profile. [1]

Research Profile

Zhen Tang is associated with Xiangtan Institute of Technology in China. The supplied Scopus author identifier is 57199840521, providing a persistent identifier for the indexed author profile. The current supplied metrics comprise one document, 11 citations, and an h-index of 1. [1]

The research subject area specified for this profile is flexible electronics. This area encompasses research directed toward electronic systems that incorporate mechanical flexibility or conformability, including technologies based on flexible substrates, thin-film structures, advanced materials, and integrated sensing or electronic components. [2]

Research Contributions

The supplied research information identifies flexible electronics as Zhen Tang’s principal subject area. In this context, the relevant contribution profile can be situated within the broader development of electronics that combine electrical performance with mechanical compliance. Flexible electronics research is significant because it enables electronic functionality to be incorporated into surfaces and structures that cannot readily accommodate conventional rigid components. [2]

  • Flexible device development: Flexible electronics research supports the design of electronic components and systems capable of operating under mechanical deformation.
  • Materials integration: The field requires coordinated development and integration of substrates, conductors, semiconductors, functional materials, and encapsulation technologies. [2]
  • Wearable and conformal applications: Flexible electronic architectures can facilitate technologies designed to conform to curved or moving surfaces, including wearable systems. [3]
  • Interdisciplinary engineering: Progress in flexible electronics draws on materials science, electrical engineering, mechanical engineering, device physics, and manufacturing science.

The specific supplied data do not provide sufficient information to attribute individual inventions, patents, experimental findings, or detailed technical outcomes directly to Zhen Tang. Accordingly, the contribution discussion is limited to the identified research domain and the documented bibliometric profile rather than making unsupported claims about particular research achievements.

Publications

The supplied Scopus information records one document associated with the author profile and reports 11 citations. [1] The bibliographic details of that document, including its title, journal or conference venue, publication year, authorship, and DOI, were not included in the supplied profile data. Therefore, no specific publication title is attributed to the researcher in this article.

For contextual purposes, the development of flexible electronics is documented extensively in the scientific literature. Foundational work has described flexible and stretchable electronic systems and their potential applications, while later reviews have examined the materials, architectures, fabrication approaches, and technological challenges associated with the field. [2] [3]

Research Impact

The supplied bibliometric profile reports 11 citations for one indexed document, together with an h-index of 1. [1] Citation counts can provide an indication of the extent to which indexed scholarly work has been referenced by subsequent publications, although such measures are influenced by publication age, disciplinary citation practices, database coverage, collaboration patterns, and the size of the relevant research community.

In flexible electronics, research impact may extend beyond citation metrics because advances in materials, device structures, fabrication methods, and system integration can contribute to future technological development. Flexible and stretchable electronics have been investigated for applications including wearable devices, sensors, human-machine interfaces, and bio-integrated electronics. [3]

On the available evidence, the documented citation activity demonstrates that the indexed work has received scholarly references. A comprehensive assessment of broader research impact would require additional evidence such as publication-level citation context, patents, technology transfer, collaborations, funded projects, datasets, or documented applications.

Award Suitability

The profile is presented in connection with the World Neuroscientists Awards and the Innovative Research Award category. The identified subject area of flexible electronics represents a technology-oriented field with potential interdisciplinary relevance to sensing, wearable systems, human-machine interfaces, and biomedical technologies. Flexible electronic systems have been investigated for applications involving interaction with biological tissues and the human body, creating areas of overlap between electronics, materials science, biomedical engineering, and neuroscience-related technologies. [3]

The supplied information supports consideration of the research profile on the basis of its identified research domain, documented publication activity, and citation record. However, formal award eligibility or selection should be determined according to the official criteria of the awarding organization and any supporting evidence submitted by the nominee. This article does not independently certify award eligibility or imply that an award has been conferred.

  • Identified research specialization in flexible electronics.
  • Documented Scopus-indexed research activity.
  • Reported citation activity associated with the indexed publication record.
  • Interdisciplinary relevance of flexible electronic technologies to emerging sensing and biomedical applications.
  • Potential alignment with innovation-oriented recognition, subject to the official award criteria.

Conclusion

Zhen Tang, affiliated with Xiangtan Institute of Technology in China, is identified in the supplied information as a researcher working in the area of flexible electronics. The available Scopus profile records one document, 11 citations, and an h-index of 1. [1] Flexible electronics is an interdisciplinary research field with established significance for deformable electronic systems, wearable technologies, sensing, and bio-integrated applications. [2] [3]

The available evidence provides a concise academic profile suitable for documenting the researcher’s stated specialization and indexed research activity. A more comprehensive evaluation of innovative achievement would require additional primary evidence concerning specific publications, research methodologies, inventions, technological outcomes, collaborations, and real-world applications.

References

  1. Elsevier. (n.d.). Scopus author details: Zhen Tang, Author ID 57199840521. Scopus.
    https://www.scopus.com/pages/authors/57199840521
  2. Rogers, J. A., Someya, T., & Huang, Y. (2010). Materials and mechanics for stretchable electronics. Science, 327(5973), 1603–1607.
    DOI: https://doi.org/10.1126/science.1182383
  3. Wang, S., Xu, J., Wang, W., Wang, G.-J. N., Rastak, R., Molina-Lopez, F., Chung, J. W., Niu, S., Feigelman, S., Lopez, J., Lei, T., Kime, Y., Yem, T., Wang, J., Tok, J. B.-H., Bao, Z. (2018). Skin electronics from scalable fabrication of an intrinsically stretchable transistor array. Nature, 555, 83–88.
    DOI: https://doi.org/10.1038/nature25494
  4. Rogers, J. A., Lagally, M. G., & Nuzzo, R. G. (2001). Synthesis, integration and properties of semiconductor nanomembranes. Nature, 410, 526–529.
    DOI: https://doi.org/10.1038/35068586
  5. World Neuroscientists Awards. (n.d.). Official awards website.
    https://neuroscientists.net/

Søren Taverniers | Mechanics of Functional Materials | Best Researcher Award

Dr. Søren Taverniers | Mechanics of Functional Materials | Best Researcher Award

Research Scientist at Stanford University, United States

Dr. Sorentav is a computational scientist specializing in energy science and engineering. With expertise in neural networks, physics-informed machine learning, and computational fluid dynamics, he has contributed significantly to advancing numerical modeling techniques. His research focuses on shock physics, subsurface flows, additive manufacturing, and uncertainty quantification. He has developed innovative computational frameworks for high-fidelity simulations and accelerated engineering applications. Dr. Sorentav has published in leading scientific journals, reviewed research papers, and supervised students and interns. His interdisciplinary approach bridges machine learning with physics-based simulations, enhancing predictive accuracy in various domains. He is proficient in multiple programming languages, including Python, C++, MATLAB, and OpenFOAM, and has a strong background in Unix/Linux environments. Through collaborations with academic institutions and industry, he has contributed to cutting-edge projects in materials science, energy systems, and computational mechanics.

Pofile

scholar

Education 

Dr. Sorentav holds a Ph.D. in Computational Science from the University of California, San Diego (UCSD), where he developed novel numerical techniques for solving complex physics-informed problems in energy and material sciences. His doctoral research focused on advancing simulation accuracy for multiphysics systems, particularly in shock-particle interactions and uncertainty quantification. Prior to his Ph.D., he earned a Master’s degree in Computational Science from UCSD, specializing in physics-informed neural networks and high-performance computing. He also holds a Bachelor’s degree from Katholieke Universiteit Leuven, where he built a solid foundation in applied mathematics, fluid dynamics, and numerical modeling. Throughout his academic career, Dr. Sorentav has received multiple awards for research excellence, including recognition for his Ph.D. dissertation. His education has equipped him with expertise in Monte Carlo simulations, finite difference/volume methods, and applied probability, which he integrates into cutting-edge computational science applications.

Experience

Dr. Sorentav has extensive experience in computational modeling, numerical methods, and physics-informed machine learning. He has worked on developing and validating high-fidelity simulations for energy applications, materials science, and shock physics. His research contributions include designing neural network architectures for scientific computing, implementing uncertainty quantification methods, and improving computational efficiency in large-scale simulations. Dr. Sorentav has collaborated with leading institutions, including Stanford University and UCSD, to accelerate computational model development for industrial and research applications. He has also contributed to proposal writing, conference presentations, and peer-reviewed journal publications. His technical expertise spans various software tools, including PyTorch, OpenFOAM, MATLAB, FEniCS, and Mathematica. Additionally, he has experience supervising student research projects, mentoring interns, and leading interdisciplinary teams. His work integrates applied probability, numerical analysis, and machine learning to address challenges in subsurface flows, additive manufacturing, and compressible fluid dynamics.

Publications

Graph-Informed Neural Networks & Machine Learning in Multiscale Physics

Graph-informed neural networks (GINNs) for multiscale physics ([J. Comput. Phys., 2021, 33 citations])

Mutual information for explainable deep learning in multiscale systems ([J. Comput. Phys., 2021, 15 citations])

Machine-learning-based multi-scale modeling for shock-particle interactions ([Bulletin of the APS, 2019, 1 citation])

These papers focus on integrating neural networks into multiscale physics, leveraging explainability techniques, and improving shock-particle simulations through ML.

2. Monte Carlo Methods & Uncertainty Quantification

Estimation of distributions via multilevel Monte Carlo with stratified sampling ([J. Comput. Phys., 2020, 32 citations])

Accelerated multilevel Monte Carlo with kernel-based smoothing and Latinized stratification ([Water Resour. Res., 2020, 19 citations])

Impact of parametric uncertainty on energy deposition in irradiated brain tumors ([J. Comput. Phys., 2017, 4 citations])

This work revolves around Monte Carlo methods, uncertainty quantification, and their applications in medical physics and complex simulations.

3. Stochastic & Hybrid Models in Nonlinear Systems

Noise propagation in hybrid models of nonlinear systems ([J. Comput. Phys., 2014, 16 citations])

Conservative tightly-coupled stochastic simulations in multiscale systems ([J. Comput. Phys., 2016, 9 citations])

A tightly-coupled domain decomposition approach for stochastic multiphysics ([J. Comput. Phys., 2017, 8 citations])

This research contributes to computational physics, specifically in stochastic and hybrid system modeling.

4. Computational Fluid Dynamics (CFD) & Shock-Wave Interactions

Two-way coupled Cloud-In-Cell modeling for non-isothermal particle-laden flows ([J. Comput. Phys., 2019, 7 citations])

Multi-scale simulation of shock waves and particle clouds ([Int. Symp. Shock Waves, 2019, 1 citation])

Inverse asymptotic treatment for capturing discontinuities in fluid flows ([J. Comput. Sci., 2023, 2 citations])

S. Taverniers has significantly contributed to shock-wave interaction modeling, with applications in aerodynamics and particle-fluid interactions.

5. Computational Plasma & Dielectric Breakdown Modeling

2D particle-in-cell modeling of dielectric insulator breakdown ([IEEE Conf. Plasma Science, 2009, 11 citations])

This early work focuses on plasma physics and dielectric breakdown simulations.

6. Nozzle Flow & Additive Manufacturing Simulations

Finite element methods for microfluidic nozzle oscillations ([arXiv, 2023])

Accelerating part-scale simulations in liquid metal jet additive manufacturing ([arXiv, 2022])

Modeling of liquid-gas meniscus dynamics in arbitrary nozzle geometries (US Patent, 2024)

Conclusion

Based on their remarkable academic achievements, innovative research, and ability to collaborate effectively across disciplines, this candidate is highly deserving of the Best Researcher Award. However, by broadening their industrial collaborations, increasing their research visibility, and considering the wider impact of their work, they could elevate their research contributions even further, making an even greater impact on both academia and industry.

 

Jen-Taut Yeh | communication substrate materials | Best Researcher Award

Prof.  MatSE Department/Hubei University, china

Prof. Jen-taut Yeh has established himself as a leading figure in the field of materials science and engineering, particularly in the areas of functional polymers, nanocomposite materials, and high-performance textiles. His academic journey, spanning several decades, has been marked by significant contributions to research, innovation, and education, positioning him as an influential scientist and educator in the global materials science community. Currently serving as a chair professor in the Department of Materials Science and Engineering (MatSE) at Hubei University in Wuhan, China, Prof. Yeh continues to lead cutting-edge research and mentor the next generation of scientists.

Professional Profiles:

🌟 Prof. Jen-taut Yeh: A Distinguished Career in Materials Science

🎓 Academic Background

Prof. Jen-taut Yeh embarked on his illustrious academic journey with a Bachelor of Science (B.S.) in Chemical Engineering from National Taiwan University in 1981. His passion for polymers led him to pursue a Ph.D. in the polymer science program at the Department of Materials Science and Engineering (MatSE) at Penn State University, where he earned his degree in 1989. This solid foundation laid the groundwork for his future groundbreaking research in materials science.

đź§Ş Early Research Experience

After completing his Ph.D., Prof. Yeh spent six months as a Research Scientist at the MatSE Department of the University of Pennsylvania, working closely with Professor N. Brown. This period allowed him to further hone his research skills and gain valuable experience in the field of materials science, setting the stage for his future academic contributions.

👨‍🏫 Academic Career at NTUST

In 1990, Prof. Yeh returned to Taiwan and joined the faculty of the National Taiwan University of Science and Technology (NTUST) as an associate professor. His dedication to research and teaching earned him a promotion to full professor in the Department of Materials Science and Engineering in 1995. During his tenure at NTUST, Prof. Yeh made significant strides in the development of functional polymers and nanocomposite materials, contributing over 200 peer-reviewed publications to the scientific community.

🌍 Global Impact and Patents

Prof. Yeh’s research has had a profound impact on both academia and industry. As an inventor and co-inventor, he holds more than 35 patents, particularly in the areas of functional polymers, nanocomposite materials, and high-performance textiles. His innovations have led to advancements in various industries, including textiles, electronics, and biotechnology, making him a prominent figure in the field of materials science.

🏫 Leadership at Kun San and Hubei University

After retiring from NTUST in 2013, Prof. Yeh continued to contribute to academia as a chair professor in the MatSE Department at Kun San (Tainan, Taiwan) and later at Hubei University (Wuhan, China). In these roles, he has continued to lead research initiatives and mentor young scientists, ensuring the continued advancement of materials science.

📚 Legacy and Contributions

Prof. Yeh’s career is marked by a dedication to advancing knowledge in materials science. His contributions to functional polymers, nanocomposite materials, and high-performance textiles have left a lasting legacy in both research and practical applications. His work exemplifies the integration of scientific research with real-world innovation, making him a highly respected and influential figure in the global materials science community.

Strengths for the Award

  1. Extensive Research Contributions: Professor Yeh has authored over 200 peer-reviewed publications, showcasing a prolific and impactful research career in materials science and polymer engineering. His extensive body of work indicates a deep commitment to advancing knowledge in his field.
  2. Innovative Patents: With more than 35 patents related to functional polymers, nano-composite materials, and high-performance textiles, Professor Yeh has demonstrated significant innovation. These patents highlight his role in developing cutting-edge technologies that have practical applications in various industries.
  3. Diverse Expertise: His research spans functional polymers, nano-composites, and textiles, reflecting a broad and versatile expertise. This diverse focus is valuable for addressing complex problems in material science and engineering.
  4. International Experience: Having held prestigious positions at institutions in Taiwan and China, and experience as a Research Scientist at the University of Pennsylvania, Professor Yeh brings a global perspective and a wealth of international experience to his research.
  5. Long-Term Academic Influence: His academic career, including roles as an associate professor, professor, and chair professor, illustrates long-term influence and leadership in the field of materials science and engineering.

Areas for Improvement

  1. Recent Research Trends: While Professor Yeh has a strong historical track record, continuous adaptation to the latest research trends and emerging technologies is crucial. Keeping abreast of the latest developments in materials science and integrating them into his work could further enhance his contributions.
  2. Collaborative Research: Expanding collaborative efforts with researchers in emerging fields or interdisciplinary areas could lead to new innovations and applications. Collaborations with industry partners or researchers from other scientific disciplines might yield groundbreaking results.
  3. Research Impact Metrics: While the number of publications and patents is impressive, focusing on increasing the impact and citation of his work could strengthen his profile. Engaging more actively in high-impact journals or conferences might enhance his research visibility.

 

✍️Publications Top Note :

Poly(ether ketone ketone)/Silica Nanotubes Substrate Films:

Publication: Journal of Polymer Research, 2024, 31(2), 33.

Summary: This work explores the use of PEKK combined with silica nanotubes to create advanced substrate films suitable for 6G communication systems. The research highlights the material’s potential to enhance performance in high-frequency applications.

Poly(ether ketone ketone)/Hollow Silica Filler Substrates:

Publication: Polymer International, 2024.

Summary: Similar to the previous research, this study investigates PEKK substrates but with hollow silica fillers, focusing on improving material properties for 6G applications.

Fifth Generation (5G) Communication Materials

Poly(ether ketone ketone)/Modified Montmorillonite Substrate:

Publication: Macromolecular Research, 2022, 30(2), pp. 107–115.

Summary: This study focuses on substrates made from PEKK and modified montmorillonite for use in 5G communication technologies, examining how these materials can improve signal performance.

SiO2 Filled Functional Polypropylene Substrates:

Publication: Journal of Macromolecular Science, Part B: Physics, 2022, 61(6), pp. 696–718.

Summary: This research evaluates the performance of polypropylene substrates filled with SiO2 for 5G communication, focusing on functional properties that enhance communication efficiency.

Sustainable and Renewable Materials

ScCO2-Processed Thermoplastic Starch/Chitosan Oligosaccharide Blown Films:

Publication: Journal of Polymer Engineering, 2024.

Summary: This study investigates the use of supercritical CO2 (ScCO2) to process thermoplastic starch and chitosan oligosaccharides, producing blown films with oxygen barrier and antibacterial properties.

Fully Renewable Oxygen Barrier Films from ScCO2-Processed Thermoplastic Starch/Sugar Alcohol Blends:

Publication: Journal of Polymer Engineering, 2024.

Summary: The focus here is on creating oxygen barrier films from renewable resources, particularly thermoplastic starch and sugar alcohol blends, processed with ScCO2.

Renewable Thermoplastic Starch/Sugar Alcohol Blends:

Publication: Polymer Engineering and Science, 2024, 64(1), pp. 231–242.

Summary: This work continues the exploration of renewable thermoplastic starch blended with sugar alcohols, aiming to develop materials with practical applications in oxygen barrier technology.

Material Processing and Performance Enhancement

Effect of Supercritical CO2 and Alkali Treatment on Oxygen Barrier Properties:

Publication: Journal of Polymer Engineering, 2023, 43(10), pp. 833–844.

Summary: This article explores the impact of supercritical CO2 processing and alkali treatment on the oxygen barrier properties of thermoplastic starch/PVA films.

Micro Foaming of Glutaraldehyde/Hexametaphosphate/Thermoplastic Starch Foams:

Publication: Cellular Polymers, 2022, 41(3), pp. 119–143.

Summary: This research deals with the micro-foaming performance of thermoplastic starch foams modified with alkali treatment and montmorillonite nano-platelets, processed with ScCO2.

Advanced Fiber Materials

Multistage Drawing of ScCO2-Assisted UHMWPE/Activated Nanocarbon Fibers:

Publication: Journal of Polymer Research, 2022, 29(3), 78.

Conclusion

Professor Jen-Taut Yeh is a distinguished researcher with a substantial and impactful career in materials science. His extensive publication record, innovative patents, and diverse research interests are notable strengths. To further enhance his candidacy for the Best Researcher Award, focusing on current research trends, expanding collaborative efforts, and improving research impact metrics could be beneficial. His proven track record and ongoing contributions make him a strong contender for recognition in the field of materials science and engineering.

Dr Sadiq Khareem – Material Science/ flexible supercapacitors and are best suited for high-frequency region applications.-data storage appliances, and magnetic recording mediums.

Dr Sadiq Khareem : Leading Researcher In  Material Science/ flexible supercapacitors and are best suited for high-frequency region applications.-data storage appliances, and magnetic recording mediums.

Congradulations, Dr Sadiq Khareem, on winning the esteemed  Paper Best Researcher Award Sciencefather!

Congratulations, Dr Sadiq Khareem In recognition of your outstanding contributions to the field of Material Science, we extend our heartfelt congratulations on receiving the prestigious  Best Researcher Award by ScienceFather Your dedication to advancing knowledge in clinical Material Science, and the exploration of Material Science is truly commendable.Your commitment to excellence and tireless efforts in research have not only enriched our academic community but have also contributed significantly to the broader scientific community.

May this award serve as a testament to your exceptional skills, unwavering dedication, and the impactful influence you’ve had on your field.  We look forward to witnessing your continued success and the many more groundbreaking contributions to come.Once again, congratulations on this well-deserved achievement!

 

Professional Profiles:

 

 

Education:

 

  • PHD – DEPARTMENT OF PHYSICS faculty of Science, Sana’a University.
  • MASTER’S DEGREE IN PHYSICS College of Science, Sana’a University
  • PHYSICS CLEARINGHOUSE Faculty of Science – Sana’a University
  • BA IN PHYSICS, Amran University
  • MODERN SECRETARIAL DIPLOMA American National Institute
  • ENGLISH PROFICIENCY CERTIFICATE Center of Translation and Language Teaching, Sana’a University
  • COMPUTER PROFICIENCY CERTIFICATE Computer Center at Sana’a University.

 

Citations:
  • Citations 19
  • h-index    2
  • 10 index  0

 

Publications: 

 

  •   Investigations on Optical and Electrical Conductivity of Ba/Ni/Zn/Fe 16 O 27 Ferrite Nanoparticles – 2022
  •   Influence of Zn2+ Ions Doping on the Antibacterial Activity of Barium-Nickel Ferrite Nanoparticles. –  2022
  •   FTIR Spectra Analysis of Zinc Substituted Barium Nickel Ferrite – 2022
  •   Influence of Zn+2 Doping on Dielectric Properties of Ba-Based Nanoferrites – 2022

 

Memberships:

 

01/02/2021 – CURRENT Member Arabia Unit Academics for training and professional studies

10/01/2019 – CURRENT Member in the International Association of Scientific Researcher under No. 20192103889

08/01/2019 – CURRENT Member of Academics & Researchers Platforms (IFAD)

 

Conferences and Seminars:

 

21/11/2021 – 22/11/2021 – Malaysia Participation and attendance at the Second International Scientific Conference (Multiple Solutions, Modern Strategies and Programs     the Field of Education Higher  NETWORKS AND MEMBERSHIPS CONFERENCES AND SEMINARS

10/10/2021 – Libya. Participation and attendance at the Virtual International Scientific Forum (Innovation in Scientific Research)

22/05/2021 – 23/05/2021 – Amman University. F0 76 Participation and attendance at the First International Scientific Forum for Nanotechnology Applications,

18/12/2022 – 20/12/2022 – Cairo, Egypt The Fourth Hybrid International Conference on Molecular Modeling and Spectroscopy Infrared Spectral Studies Analysis of Barium-Nickel Ferrite Doped by Zinc Sadiq Hassan Yahya Khoreem