Owais Amin | Physics | Best Researcher Award

Best Researcher Award

Owais Amin
Lovely Professional University, India

Owais Amin
Affiliation Lovely Professional University
Country India
Scopus ID 57222524441
Documents 6
Citations 105
h-index 3
Subject Area Physics, Materials Science, Energy Storage
Event Global Sensor Awards
ORCID 0000-0001-8337-0266

Owais Amin is an Indian physicist and materials science researcher whose work focuses on solid-state electrolytes, sodium-ion batteries, nanocomposites, dielectric materials, and advanced energy storage technologies. He earned his Ph.D. in Physics from Lovely Professional University in 2024, where his doctoral research investigated the effect of percolation phenomena in solid electrolyte composites for sodium batteries. His research contributions span ionic conductivity enhancement, thermal stability optimization, nanomaterial synthesis, and sustainable battery technologies.[1]

Abstract

This article presents an academic overview of Dr. Owais Amin’s research career, educational background, scholarly publications, and scientific contributions to solid-state electrolytes and sodium-ion battery technologies. His research integrates experimental materials science, electrochemical characterization, nanocomposite engineering, and energy storage innovation. Through peer-reviewed publications, conference presentations, and interdisciplinary collaborations, he has contributed to the understanding of ionic transport mechanisms, dielectric behavior, and conductivity enhancement in advanced electrolyte systems.[2]

Keywords

Solid-State Electrolytes, Sodium-Ion Batteries, Ionic Conductivity, Energy Storage Systems, Nanocomposites, Materials Science, Electrochemistry, Dielectric Properties, Thermal Stability, Nanotechnology, Physics, Functional Materials, Battery Research, Sustainable Energy.

Introduction

The growing demand for sustainable and efficient energy storage technologies has increased interest in sodium-ion batteries as alternatives to lithium-based systems. Researchers worldwide continue to investigate novel solid electrolyte materials capable of improving safety, conductivity, and long-term performance. Dr. Owais Amin has contributed to this field through research focused on sodium beta-alumina electrolytes, polymer-ceramic hybrid systems, nanocomposites, and electrochemical characterization techniques.[3]

Research Profile

Dr. Amin completed his Bachelor of Science degree from the University of Kashmir before pursuing both his Master’s and Doctoral degrees in Physics at Lovely Professional University. His doctoral thesis, titled Effect of Percolation in Solid Electrolyte Composites in Sodium Battery, examined how microstructural connectivity influences ionic transport and overall electrochemical performance. His expertise encompasses solid-state physics, condensed matter physics, spectroscopy, electrodynamics, mathematical physics, and advanced materials characterization.[1]

  • Ph.D. in Physics, Lovely Professional University (2024).
  • M.Sc. in Physics, Lovely Professional University (2019).
  • B.Sc. in Physics and Mathematics, University of Kashmir (2017).
  • Assistant Professor, Lovely Professional University (2023–2025).

Research Contributions

Dr. Amin’s research contributions are centered on the development and optimization of solid-state electrolyte materials and nanostructured systems for energy storage applications. His studies have explored conductivity enhancement through doping strategies, polymer-ceramic hybridization, and nanocomposite engineering. He has also participated in interdisciplinary research involving photocatalysis, environmental remediation, spinel ferrites, graphene-based nanomaterials, and pseudocapacitor technologies.[4]

  • Optimization of sodium β-alumina solid electrolytes.
  • Investigation of ionic conductivity and dielectric behavior.
  • Development of PVDF–sodium β-alumina hybrid nanocomposites.
  • Research on graphene-based nanocomposite energy storage materials.
  • Application of nanotechnology in photocatalytic degradation systems.

Publications

  • Amin O. et al. (2023). Effect of indium doping on thermal stability and dielectric property in sodium beta alumina solid electrolyte. Journal of Solid-State Electrochemistry.
  • Malik A.Q. et al. (2022). Synthesis, characterization, and photocatalytic effect of CuS-ZnO nanocomposite. Inorganic Chemistry Communications. DOI: https://doi.org/10.1016/j.inoche.2022.109797
  • Shah S.A. et al. (2025). Synthesis and optimization of ionic conductivity in PVDF–sodium β-alumina hybrid nanocomposite system. Journal of Materials Science.
  • Shah S.A. et al. (2025). Role of annealing on structural and magnetic properties of Mg–Zn spinel ferrite nanoparticles. Journal of Sol-Gel Science and Technology.
  • Shah S.A. et al. (2026). One-Pot Hydrothermal Fabrication of Thermally Stable V₂O₅/rGO Nanocomposite for High-Rate Pseudocapacitors. Ceramics International.
  • Shah S.A., Basandrai D., Amin O. (2026). Nanocomposites Based on 2D Materials: Synthesis–Property Relationships for Next-Generation Energy Storage. ChemistrySelect.

Research Impact

The scientific contributions of Dr. Amin support the advancement of next-generation energy storage technologies by addressing challenges associated with ionic conductivity, thermal stability, and material durability. His studies contribute to the broader transition toward sustainable and economically viable battery systems. In addition, his work demonstrates interdisciplinary integration between physics, nanotechnology, electrochemistry, and materials engineering.[5]

Beyond publications, he has actively disseminated research findings through international conferences, workshops, and academic collaborations. His recognition as Best Presenter at the International Conference on Advanced Functional Materials and Devices highlights his scientific communication capabilities and engagement with the research community.[6]

Award Suitability

Dr. Owais Amin demonstrates several characteristics commonly recognized in academic and scientific excellence awards. These include a focused research agenda, peer-reviewed scholarly output, participation in international scientific conferences, contributions to emerging energy technologies, and a commitment to both research and higher education. His work in sodium-ion battery materials aligns with global priorities in sustainable energy storage and advanced functional materials research.[3]

  • Established publication record in recognized journals.
  • Interdisciplinary research contributions.
  • Conference presentations and academic outreach.
  • Teaching and mentoring experience.
  • Research relevance to sustainable energy technologies.

Conclusion

Dr. Owais Amin represents an emerging scholar in physics and materials science whose research has focused on improving the performance of solid-state electrolyte systems for sodium-ion batteries. Through scholarly publications, conference participation, educational service, and interdisciplinary collaborations, he has contributed to ongoing developments in energy storage science. His research portfolio reflects a combination of experimental rigor, technological relevance, and commitment to advancing sustainable materials research.

References

  1. Academic curriculum vitae and educational profile of Dr. Owais Amin, including doctoral research, academic qualifications, teaching experience, and research activities.
  2. Elsevier. (n.d.). Scopus author details: Owais Amin, Author ID 57222524441. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57222524441
  3. Amin, O. et al. Research publications and conference proceedings relating to sodium-ion batteries, solid electrolytes, and functional materials.
  4. Journal publications in Journal of Materials Science, Journal of Solid-State Electrochemistry, ChemistrySelect, Ceramics International, and related materials science journals.
  5. Research contributions concerning ionic conductivity optimization, dielectric characterization, and nanocomposite development for energy storage applications.
  6. Best Presenter Award, 2nd International Conference on Advanced Functional Materials and Devices (AFMD-2023), University of Delhi, India.

Prof. Zhen Xu | Materials Awards | Best Researcher Award

Prof. Zhen Xu | Materials Awards | Best Researcher Award  

Prof. Zhen Xu, Zhejiang University, China

Dr. Zhen Xu is a Research Professor in the Department of Polymer Science and Engineering at Zhejiang University. He earned his Ph.D. in 2013 from Zhejiang University and subsequently conducted postdoctoral research at both Zhejiang University (2013–2015) and the Cambridge Graphene Center at the University of Cambridge (2015–2016). Since 2017, he has been actively engaged in academic and research activities at Zhejiang University. Dr. Xu’s research focuses on the chemistry of graphene, two-dimensional macromolecular behavior, graphene liquid crystals, the macroscopic assembly of graphene, and the development of novel functional materials. His work contributes significantly to the advancement of nanomaterials and polymer science.

Professional Profile:

GOOGLE SCHOLAR

Summary of Suitability for Best Researcher Award: Dr. Zhen Xu

Dr. Zhen Xu is a distinguished researcher whose pioneering work in polymer science, graphene chemistry, and 2D materials marks him as a highly deserving candidate for the Best Researcher Award. His academic progression, international research exposure, and impactful contributions to the field of advanced functional materials underscore his excellence.

🎓 Education

  • Ph.D. in Polymer Science and Engineering
    Zhejiang University, China (2013)
    🧪 Specialized in polymer chemistry and graphene research

💼 Work Experience

  • Postdoctoral Researcher
    🔬 Zhejiang University (2013–2015)

  • Postdoctoral Researcher
    📍 Cambridge Graphene Center, University of Cambridge (2015–2016)

  • Research Professor
    🏛️ Department of Polymer Science and Engineering, Zhejiang University (Since 2017)

🧬 Research Areas & Achievements

  • ⚛️ Graphene Chemistry & Functionalization

  • 📄 2D Macromolecular Behavior & Liquid Crystals

  • 🧩 Macroscopic Assembly of Graphene

  • 🌟 Development of New Functional Materials

Dr. Xu has contributed significantly to the field of advanced materials through high-impact research, collaborations, and innovations in graphene-based systems. His work bridges the gap between molecular design and large-scale applications.

🏆 Awards & Honors

While specific awards are not listed in the original content, based on his profile and affiliations, he is likely recognized through:

  • 📚 Publications in high-impact journals

  • 🌍 International research fellowships (e.g., at Cambridge University)

  • 🥇 Contributions to the advancement of 2D materials and polymer science

Publication Top Notes:

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Dr. Muhammad Asim | Materials | Best Researcher Award

Dr. Muhammad Asim | Materials | Best Researcher Award 

Dr. Muhammad Asim, Shandong Lead Chemicals Co Limited, China

Dr. Muhammad Asim is a chemical engineer with a Ph.D. in Chemical Engineering from Tianjin University, China, where he specialized in heterogeneous catalysis for hydrogen production under the supervision of Prof. Ji-Jun Zou. His doctoral research focused on charge polarization in noble metal and metal phosphide catalysts for hydrogen evolution from ammonia-borane hydrolysis. He also holds a Master’s degree from Karlstad University, Sweden, and a Bachelor’s in Chemical Engineering from the University of the Punjab, Pakistan. With over a decade of experience in academia and industry, Dr. Asim has worked extensively in the synthesis of thermoplastic polyurethane elastomers, water-based inks, and silicon carbide composites. He currently serves as an R&D Engineer at Shandong Lead Chemicals Co., Ltd., in China. His research interests include thermoplastic elastomer development, heterogeneous catalysis, reaction kinetics, and sustainable hydrogen production. Dr. Asim is skilled in a variety of chemical analysis techniques and engineering software, and has hands-on experience with both polymer synthesis and materials testing.

Professional Profile:

ORCID

SCOPUS

GOOGLE SCHOLAR

Summary of Suitability for Best Researcher Award:

Dr. Muhammad Asim is a highly accomplished chemical engineering researcher with a proven track record of impactful research and industrial application. With a Ph.D. from Tianjin University and a master’s from Karlstad University, his academic credentials span top-tier institutions in China and Europe. His research expertise lies in heterogeneous catalysis, hydrogen production, thermoplastic polyurethane (TPU) synthesis, and reaction kinetics—fields critical to sustainable energy and advanced materials.

🎓 Education

  • Ph.D. in Chemical Engineering (2019–2023)
    🏫 Tianjin University, China
    🧪 Thesis: Stimulating charge polarization of noble metal and metal phosphide-based catalysts for hydrogen evolution from ammonia-borane hydrolysis
    👨‍🏫 Supervisor: Prof. Ji-Jun Zou

  • MS in Chemical Engineering (2010–2012)
    🏫 Karlstad University, Sweden
    🌲 Thesis: Effect of prehydrolysis prior to Kraft cooking on Swedish spruce wood
    👨‍🏫 Supervisor: Prof. Ulf Germgard

  • B.Sc. in Chemical Engineering (2003–2007)
    🏫 University of the Punjab, Pakistan
    🏭 Thesis: Design of CO₂ absorption and stripping section of ammonia plant (815 tons/day) to produce H₂-free CO₂

💼 Work Experience

  • 2025–Present
    🔬 R&D Engineer – TPU Elastomers
    🏢 Shandong Lead Chemicals Co., Ltd, China
    🧵 Focus: Flame-retardant & self-healing TPU synthesis

  • 2024–2025
    🖌 R&D Engineer – Water-based Inks
    🏢 Linyi Linbang New Materials Co., Ltd, China

  • 2023–2024
    ⚙️ Research Associate – SiC Ceramics & Carbon Fiber Effects
    🏢 Shantian Abrasive Co. Ltd, China

  • 2013–2019
    🎓 Lecturer – Chemical Engineering
    🏫 Sharif College & National Textile University, Pakistan

  • 2008–2010
    🏭 Shift Engineer – Fertilizer Plants
    🏢 Riches & Suraj Fertilizer Co. Ltd, Pakistan

🏆 Achievements & Honors

  • 🎖 Developed novel flame-retardant and self-healing TPU materials

  • 🧪 Synthesized water-based inks tailored for decorative paper

  • ⚗️ Optimized catalysts for hydrogen production via ammonia-borane hydrolysis

  • 🔍 Contributed to particle size optimization in reaction bonded SiC ceramics

  • 👥 Led collaborations between industry and academic research teams

  • 📚 Former lecturer at prestigious engineering institutions in Pakistan

Publication Top Notes:

Luminous polystyrene upconverted nanoparticles to visualize the traces of nanoplastics in a vegetable plant

Ligand-regulated Ni-based coordination compounds to promote self-reconstruction for improved oxygen evolution reaction

Near-infrared driven photocatalytic hydrogen production from ammonia borane hydrolysis using heterostructure-upconverted nanoparticles

Pt@Ni2P/C3N4 for charge acceleration to promote hydrogen evolution from ammonia-borane

Self-Supported Pt@Ni<sub>2</sub>P for Controllable Hydrogen Release from Ammonia-Borane Hydrolysis

Pt loading to promote hydrogen evolution from ammonia-borane hydrolysis of Ni2P under visible light

Synergetic effect of Au nanoparticles and transition metal phosphides for enhanced hydrogen evolution from ammonia-borane

 

Prof. Xianxian Wang | Barkhausen Noise | Best Researcher Award

Prof. Xianxian Wang | Barkhausen Noise | Best Researcher Award

Prof. Xianxian Wang, Beijing Polytechnic University, Mechanical and Electrical Engineering Institute, China

Dr. Xianxian Wang is a lecturer at Beijing University of Technology, specializing in intelligent sensor detection technology and structural health monitoring instrumentation. His research focuses on advancing non-destructive testing methods, particularly through micro-magnetic techniques and intelligent modeling. He has published over 10 research papers in journals such as Journal of Nondestructive Testing and Measurement Science and Technology, and contributed to the drafting of three group standards. Dr. Wang holds a Ph.D. and Master’s degree in Instrument Engineering from Beijing University of Technology, and a Bachelor’s degree in Electronic Information Engineering from Shandong University of Technology. His notable research achievements include the development of high-resolution Barkhausen noise microimaging techniques and neural network-based models for quantifying mechanical properties of ferromagnetic materials. These innovations have been applied in manufacturing settings, enhancing product quality and reliability. Dr. Wang has also received several honors, including the Third Prize of the Shandong Province Machinery Industry Science and Technology Progress Award and top distinctions in national equipment manufacturing industry competitions.

Professional Profile:

ORCID

Summary of Suitability:

Dr. Wang Xianxian, a lecturer at Beijing University of Technology, stands out as a dynamic and promising researcher in the fields of intelligent sensor testing and structural health monitoring technologies. His innovative contributions to non-destructive testing and intelligent instrumentation, along with practical industrial applications, make him a highly suitable candidate for the Best Researcher Award.

🎓 Education Background

  • 2019.09 – 2024.01
    📍 Ph.D., Beijing University of Technology
    🧪 Focus: Intelligent Sensor Testing & Structural Health Monitoring

  • 2016.09 – 2019.06
    📍 M.Sc., Instrument Engineering, Beijing University of Technology

  • 2010.09 – 2014.07
    📍 B.Eng., Electronic Information Engineering, Shandong University of Technology

💼 Work Experience

  • Lecturer, Beijing University of Technology
    📌 Teaches courses such as:

    • Sensors and Visual Inspection

    • Intelligent Robot Design and Fabrication

    • Small Electronic Product Design and Manufacturing

🧠 Research Achievements

  • 🧲 Developed Barkhausen noise microimaging techniques for high-resolution residual stress imaging in ferromagnetic materials.

  • 🛠️ Created micromagnetic non-destructive testing instruments to assess mechanical properties (hardness, strength, elongation) using neural networks.

  • 🤖 Proposed an intelligent modeling strategy based on “classification then regression” and adaptive transfer learning to improve robustness in non-uniform data scenarios.

🏆 Honors & Awards

  • 🥉Third Prize, Shandong Province Machinery Industry Science and Technology Progress Award

  • 🥇 First Prize, Second National Equipment Manufacturing Industry Skills Competition

  • 🏅Excellent Coach, Second National Equipment Manufacturing Industry Skills Competition

Publication Top Notes:

Micromagnetic and Quantitative Prediction of Yield and Tensile Strength of Carbon Steels Using Transfer Learning Method

Quantitative Prediction of Surface Hardness in Cr12MoV Steel and S136 Steel with Two Magnetic Barkhausen Noise Feature Extraction Methods

Micromagnetic and quantitative prediction of yield strength and tensile strength in DP590 steels based on ReliefF + Clustering feature selection method

Micromagnetic and Robust Evaluation of Surface Hardness in Cr12MoV Steel Considering Repeatability of the Instrument

Surface Decarburization Depth Detection in Rods of 60Si2Mn Steel with Magnetic Barkhausen Noise Technique

Micromagnetic and Quantitative Prediction of Surface Hardness in Carbon Steels Based on a Joint Classification-Regression Method

FilterNet: A deep convolutional neural network for measuring plastic deformation from raw Barkhausen noise waveform