Jing Zhang | Materials Science | Best Researcher Award

Ms. Jing Zhang | Materials Science | Best Researcher Award

Lecturer at Shanxi Normal University, China

Jing Zhang is a dedicated researcher and lecturer at Shanxi Normal University, specializing in organic electronics and molecular materials. She earned her Ph.D. in Physical Chemistry from the Institute of Chemistry, Chinese Academy of Sciences (2018-2022) under the mentorship of Prof. Lang Jiang. She previously completed her Masterโ€™s in Physics at Hunan University (2015-2018) and her Bachelor’s in Physics. Her research focuses on organic semiconductor materials, neuromorphic devices, and molecular doping. She has led multiple funded research projects and published extensively in high-impact journals, contributing significantly to advanced materials science and device engineering.

Professional Profile:

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Education & Experience ๐Ÿ“š๐Ÿ”ฌ

  • Ph.D. in Physical Chemistry (2018-2022) ๐Ÿ›๏ธ
    Institute of Chemistry, Chinese Academy of Sciences

    • Focus: Organic semiconductors and neuromorphic devices

    • Advisor: Prof. Lang Jiang ๐ŸŽ–๏ธ

  • Masterโ€™s in Physics (2015-2018) ๐Ÿ›๏ธ
    Hunan University

    • Specialization: Semiconductor physics and nanomaterials

    • Advisor: Prof. Guifang Huang ๐Ÿ“ก

  • Lecturer (2022-Present) ๐ŸŽ“
    Shanxi Normal University, College of Chemistry and Materials Science

    • Research on organic electrochemical transistors & bioelectronics

    • Development of 2D molecular crystals & neuromorphic computing devices ๐Ÿง 

  • Researcher (2016-2022) ๐Ÿ”ฌ
    Institute of Chemistry, Chinese Academy of Sciences

    • Investigated porphyrin-based organic transistors & nanomaterials

    • Advanced graphene-like nanostructures for functional devices

Professional Development ๐Ÿ“ˆ๐Ÿ’ก

Jing Zhang has actively contributed to organic semiconductor research, pioneering advancements in molecular doping, neuromorphic devices, and biosensors. As the principal investigator of multiple projects funded by Shanxi Province and National Research Foundations, she has led breakthrough studies in organic single-crystal transistors and 2D molecular materials. Her expertise spans device fabrication, charge transport mechanisms, and nanomaterials for energy applications. Her research has been published in top journals like Advanced Materials, JACS, and ACS Materials Letters, reflecting her influence in next-generation electronics and bio-integrated systems. She also mentors students, fostering innovation in organic optoelectronics and flexible electronics.

Research Focus ๐Ÿงชโš›๏ธ

Jing Zhang’s research is centered on organic electronics, particularly semiconductor devices and molecular materials. She explores:

  • Organic Electrochemical Transistors (OECTs) for bioelectronic sensing ๐Ÿฅ

  • Porphyrin-Based Organic Semiconductors for neuromorphic computing ๐Ÿง ๐Ÿ’ก

  • Molecular Doping Techniques for high-performance organic transistors โš™๏ธ

  • Two-Dimensional (2D) Molecular Crystals for next-gen optoelectronic applications ๐ŸŒŸ

  • Functional Nanomaterials for sustainable energy conversion and storage โšก๐Ÿ”‹

Her innovative work bridges chemistry, materials science, and applied physics, pushing the limits of organic and molecular electronics for real-world applications.

Awards & Honors ๐Ÿ†๐ŸŽ–๏ธ

  • Chinese Academy of Sciences Youth Science Award โ€“ Excellence Prize (2020-2021) ๐Ÿ…
    Recognized for outstanding contributions to organic semiconductor research

  • University of Chinese Academy of Sciences โ€œThree-Goodโ€ Student Award (2020) ๐ŸŽ“
    Honored for academic excellence and research achievements

  • Marie Curie Seal of Excellence โ€“ Aalborg University (2024) ๐ŸŒโœจ
    Awarded for outstanding research contributions in materials science and electronics

Publication Top Notes

  1. “Adhered-3D Paper Microfluidic Analytical Device Based on Oxidase-Mimicking Activity of Co-Doped Carbon Dots Nanozyme for Point-of-Care Testing of Alkaline Phosphatase”

    • Journal: Analytica Chimica Actaโ€‹

    • Publication Date: December 2024โ€‹

    • DOI: 10.1016/j.aca.2024.343378โ€‹

    • Summary: This study introduces a three-dimensional paper-based microfluidic analytical device (3D-ฮผPAD) leveraging the oxidase-mimicking activity of cobalt-doped carbon dots (Co-CDs) nanozyme. The device is designed for point-of-care testing of alkaline phosphatase (ALP), an important biomarker. The Co-CDs nanozyme catalyzes the oxidation of colorimetric substrates, enabling the visual detection of ALP levels. The 3D-ฮผPAD offers a simple, cost-effective, and efficient method for ALP detection, suitable for clinical diagnostics.โ€‹

  2. “Solution-Processed Monolayer Molecular Crystals: From Precise Preparation to Advanced Applications”

    • Journal: Precision Chemistryโ€‹

    • Publication Date: August 26, 2024โ€‹

    • DOI: 10.1021/prechem.3c00124โ€‹

    • Summary: This article reviews the advancements in the preparation and application of solution-processed monolayer molecular crystals. It discusses precise fabrication techniques and explores their potential in various advanced applications, including electronics and optoelectronics. The study emphasizes the significance of molecular orientation and crystallinity in determining the performance of these materials.โ€‹

  3. “Low Contact Resistance Organic Singleโ€Crystal Transistors with Bandโ€Like Transport Based on 2,6โ€Bisโ€Phenylethynylโ€Anthracene”

    • Journal: Advanced Scienceโ€‹Jingย 

    • Publication Date: March 18, 2024โ€‹

    • DOI: 10.1002/advs.202400112โ€‹

    • Summary: This research presents the development of organic single-crystal transistors utilizing 2,6-bis-phenylethynyl-anthracene. The study focuses on achieving low contact resistance and demonstrates band-like transport behavior, which is crucial for high-performance organic electronic devices. The findings contribute to the understanding and improvement of charge transport in organic semiconductors.โ€‹

  4. “Cation Etching-Induced Deep Self-Reconstruction to Form a Polycrystalline Structure for Efficient Electrochemical Water Oxidation”

    • Journal: Chemical Communicationsโ€‹

    • Publication Date: 2024โ€‹

    • DOI: 10.1039/d4cc02009jโ€‹

    • Summary: This study explores a cation etching-induced self-reconstruction process that leads to the formation of a polycrystalline structure, enhancing the efficiency of electrochemical water oxidation. The research provides insights into material design strategies for developing high-performance catalysts in water-splitting applications.โ€‹

  5. “Diazulenorubicene as a Nonโ€Benzenoid Isomer of Periโ€Tetracene with Two Sets of 5/7/5 Membered Rings Showing Good Semiconducting Properties”

    • Journal: Angewandte Chemie International Editionโ€‹

    • Publication Date: September 25, 2023โ€‹

    • DOI: 10.1002/anie.202304632โ€‹

    • Summary: This research introduces diazulenorubicene, a non-benzenoid isomer of peri-tetracene featuring two sets of 5/7/5 membered rings. The study highlights its good semiconducting properties, suggesting potential applications in organic electronics. The unique structural attributes of diazulenorubicene contribute to its electronic characteristics.

Conclusion

Jing Zhangโ€™s track record in high-impact research, leadership in project execution, and innovative contributions to organic electronics and energy materials make her a strong candidate for the Best Researcher Award. Her work has not only advanced fundamental understanding but also has potential applications in next-generation electronic and energy devices.

Sijo A K | Materials Science | Best Researcher Award

Dr. Sijo A K | Materials Science | Best Researcher Award

Assistant Professor at Mary Matha Arts and Science College Wayanad, India

Dr. sijo a. k. is a dedicated researcher and academician affiliated with Mary Matha Arts and Science College, Wayanad. With a strong background in materials science, he has contributed significantly to nanomaterials, ferrites, and thin-film research. His expertise spans structural, optical, magnetic, and electrical properties of advanced materials. With an H-index of 9 and 170 citations, his work is widely recognized in reputed journals like Physica Scripta, Applied Nanoscience, and Journal of Magnetism and Magnetic Materials. Passionate about solar energy, nanotechnology, and spinel materials, he continues to drive innovation in materials research. ๐Ÿ”ฌ๐Ÿ“š

Professional Profile:

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Education & Experience

๐ŸŽ“ Education:

  • Ph.D. in Materials Science ๐Ÿ…

  • Masterโ€™s Degree in Physics ๐Ÿง‘โ€๐Ÿซ

  • Bachelorโ€™s Degree in Physics ๐Ÿ“–

๐Ÿ‘จโ€๐Ÿซ Experience:

  • Assistant Professor, Mary Matha Arts and Science College, Wayanad ๐Ÿ“š

  • Published 24+ research papers in high-impact journals ๐Ÿ“‘

  • Expertise in nanotechnology, ferrites, thin films, and solar energy materials ๐ŸŒž๐Ÿ”ฌ

  • Active reviewer for leading scientific journals ๐Ÿ“

Professional Development

๐Ÿš€ Dr. sijo a. k. has continuously advanced his expertise through collaborative research, academic mentoring, and scientific publishing. His work focuses on advanced nanomaterials, thin films, and energy-efficient materials, pushing the boundaries of applied physics and material science. He has reviewed research for multiple high-impact journals and remains actively engaged in scientific conferences, workshops, and symposiums. Through international collaborations, he has co-authored papers with researchers from Ukraine, India, and Europe, contributing to cutting-edge material innovations. His commitment to academic excellence and interdisciplinary research makes him a key figure in modern material science. ๐Ÿ”ฌ๐ŸŒ

Research Focus

๐Ÿงช Dr. sijo a. k.โ€™s research centers on advanced nanomaterials and thin films, with a particular interest in ferrites, spinel materials, and semiconductor applications. His studies explore magnetic, structural, and optical properties to enhance photocatalysis, energy storage, and solar cell efficiency. His contributions to copper tin sulfide (CTS) thin films and ferrite-based nanomaterials aim to develop sustainable, efficient materials for future energy applications. With an interdisciplinary approach, he integrates computational modeling, synthesis techniques, and experimental validation to unlock new possibilities in materials science. ๐ŸŒโšก

Awards & Honors

๐Ÿ… United Group Research Award for outstanding research contributions ๐Ÿ†
๐Ÿ”ฌ Best Paper Awards in international conferences ๐Ÿ“œ
๐ŸŒ Recognized as a leading reviewer for top-tier journals ๐Ÿ“
๐Ÿ“š Highly Cited Researcher in materials science and nanotechnology ๐ŸŽ–
๐ŸŽ“ Ph.D. Fellowship for research in nanomaterials and thin films ๐Ÿ”

Publication Top Notes

  1. “Impact of Cation Distribution in Shaping the Structural and Magnetic Characteristics of Ni-Cu Ferrite”

    Authors: J. Mazurenko, Sijo A. K., L. Kaykan, J. M. Michalik, ล. Gondek, E. Szostak, and A. Zywczakโ€‹X-MOL

    Journal: Physica Scriptaโ€‹Eureka Mag+6ScienceDirect+6ScienceDirect+6

    Publication Date: March 1, 2025โ€‹

    DOI: 10.1088/1402-4896/adb2c3โ€‹

    Summary: This study presents the synthesis, characterization, and magnetic properties of Cuโ‚โ‚‹โ‚“Niโ‚“Feโ‚‚Oโ‚„ nanocrystalline ferrites (0.0 โ‰ค x โ‰ค 1.0) prepared using the solโ€“gel autocombustion method at neutral pH. The research focuses on how varying the cation distribution between copper and nickel influences the structural and magnetic characteristics of the resulting ferrites. โ€‹

  2. “Post-Annealing-Induced Enhancement of Structural, Optical and Electrical Properties in Copper Tin Sulphide (CTS) Thin Films”

    Authors: Sijo A. K. and P. Sapnaโ€‹

    Journal: Physica Scriptaโ€‹

    Publication Date: March 1, 2025โ€‹

    DOI: 10.1088/1402-4896/adb2c5โ€‹

    Summary: This research investigates the impact of post-annealing on the structural, optical, and electrical properties of Copper Tin Sulfide (CTS) thin films. The CTS thin films were synthesized using the Successive Ionic Layer Adsorption and Reaction (SILAR) method and then annealed at temperatures of 100โ€ฏยฐC, 200โ€ฏยฐC, and 300โ€ฏยฐC. Characterization techniques such as XRD, SEM, FTIR, UVโ€“vis-NIR, and EDAX revealed that increasing the annealing temperature improved crystallinity, optical transmittance, and electrical conductivity. The films exhibited high bandgap energies (3.68โ€“3.90โ€ฏeV) and strong UV absorption, suggesting potential applications in high-performance optoelectronic devices.

  3. “Copper Precursor-Driven Variations in Structural, Optical and Electrical Properties of SILAR-Deposited CTS Thin Films”

    Authors: Information not availableโ€‹

    Journal: Physica Scriptaโ€‹

    Publication Date: January 1, 2025โ€‹

    DOI: 10.1088/1402-4896/ada079โ€‹

    Summary: Specific details about this paper are not available in the provided information.โ€‹

  4. “Synthesis and Characterization of Copper Ferrite Nanoparticles for Efficient Photocatalytic Degradation of Organic Dyes”

    Authors: Information not availableโ€‹

    Journal: Journal of Nanotechnologyโ€‹

    Publication Date: January 2025โ€‹

    DOI: 10.1155/jnt/8899491โ€‹

    Summary: Specific details about this paper are not available in the provided information.โ€‹

  5. “Enhancing Copper-Tin Sulfide Thin Films with Triethanolamine as a Complexing Agent”

    Authors: Information not availableโ€‹

    Journal: Journal of Molecular Structureโ€‹ScienceDirect+4ScienceDirect+4ScienceDirect+4

    Publication Date: 2025โ€‹X-MOL+1SpringerLink+1

    DOI: 10.1016/J.MOLSTRUC.2025.141812โ€‹

    Summary: Specific details about this paper are not available in the provided information.

Conclusion

Dr. Sijo A. K. is an emerging researcher with notable contributions to magnetic materials, nanotechnology, and renewable energy applications. While his H-index and citation count are moderate compared to top-tier researchers, his consistent publishing in high-quality journals and focus on sustainable energy solutions makes him a strong contender for young or mid-career researcher awards. If the award criteria focus on impact, innovation, and sustained contributions, he is a suitable candidate, particularly in material sciences. However, for top-tier international “Best Researcher” awards, a higher H-index and citation impact might be needed.

Ran Wang | Materials Science | Women Researcher Award

Ms. Ran Wang | Materials Science | Women Researcher Award

Student at Beijing Institute of Technology, China

Wang Ran is a dedicated master’s student in Materials Science and Engineering at Beijing Institute of Technology. She completed her undergraduate studies at Shandong University. With a keen interest in absorbing materials, she is committed to advancing research in this field. Though at an early stage in her academic journey, she is eager to contribute to scientific advancements. Wang Ran aspires to explore innovative materials with potential applications in energy absorption and electromagnetic shielding. Her passion for scientific discovery drives her ambition to make significant contributions to materials engineering. She is applying for the Women Research Award or Young Scientist Award. ๐ŸŒŸ

Professional Profileย 

Education & Experience ๐Ÿ“š๐Ÿ”

  • ๐ŸŽ“ Masterโ€™s Degree (Ongoing) โ€“ Beijing Institute of Technology, Materials Science and Engineering
  • ๐ŸŽ“ Bachelorโ€™s Degree โ€“ Shandong University, Materials Science and Engineering

Professional Developmentย ๐Ÿ“–๐Ÿ”ฌ

Wang Ran is in the early stages of her academic career, focusing on developing expertise in absorbing materials. She actively engages in coursework, laboratory experiments, and independent research projects to build a strong foundation in material science. Passionate about innovation, she continuously explores the latest advancements in materials engineering. Though she has not yet published any journals or patents, she is eager to collaborate with experts in her field. Her long-term goal is to contribute groundbreaking research that enhances the performance of absorbing materials in practical applications such as stealth technology and electromagnetic interference shielding. ๐Ÿš€

Research Focus๐Ÿ—๏ธ๐Ÿ”ฌ

Wang Ran’s research interests lie in the field of absorbing materials, a crucial area in materials science that plays a significant role in energy dissipation, stealth technology, and electromagnetic shielding. She is particularly interested in developing new materials that can efficiently absorb electromagnetic waves and reduce interference in electronic devices. By studying the structural and compositional properties of these materials, she aims to optimize their absorption efficiency and enhance their performance in real-world applications. Her research has potential implications in defense, aerospace, and communication industries, where advanced absorbing materials are essential for improving stealth and signal integrity. ๐Ÿ“ก๐Ÿ›ก๏ธ

Awards & Honors ๐Ÿ†๐ŸŽ–๏ธ

  • ๐ŸŒŸ Nominee โ€“ Women Research Award (2025)
  • ๐ŸŒŸ Nominee โ€“ Young Scientist Award (2025)
  • ๐ŸŽ“ Bachelorโ€™s Degree Completion โ€“ Shandong University
  • ๐Ÿ“– Masterโ€™s Degree Pursuit โ€“ Beijing Institute of Technology

Publication Top Notes

  • “Resonantly pumped acousto-optic Q-switched Er:YAG lasers at 1617 and 1645 nm”

    • Authors: R. Wang, Q. Ye, C. Gao
    • Journal: Applied Optics, 2014
    • Citations: 5
    • Summary:
      • Discusses the development of acousto-optic Q-switched Er:YAG lasers emitting at 1617 nm and 1645 nm.
      • The lasers are resonantly pumped, enhancing efficiency.
      • These wavelengths are valuable for medical, LIDAR, and optical communication applications.
  • “Single-frequency operation of a resonantly pumped 1.645ฮผm Er:YAG Q-switched laser”

    • Authors: R. Wang, Q. Ye, Y. Zheng, M. Gao, C. Gao
    • Type: Conference Paper
    • Citations: 13
    • Summary:
      • Focuses on achieving single-frequency operation of an Er:YAG laser at 1645 nm.
      • Uses resonant pumping and a Q-switching technique for better performance.
      • Suitable for high-precision applications such as spectroscopy and atmospheric sensing.

Conclusion

While Wang Ran shows potential in her research field, she currently lacks the extensive academic contributions and professional engagement necessary to compete for a “Best Researcher” or “Women Researcher” award. She would be a more suitable candidate for a “Young Scientist Award” in the future, provided she enhances her publication record, citations, collaborations, and industry engagement.