Prof. Wang Fengyun | Experimental methods | Best Researcher Award

Prof. Wang Fengyun | Experimental methods | Best Researcher Award

Professor at Qingdao university | China

Fengyun Wang is an accomplished scientist whose interdisciplinary research bridges chemistry, physics, materials science, and various engineering disciplines. With a focus on cutting-edge materials such as low-dimensional metal oxide semiconductors, perovskites, and Mxenes, Wang has contributed significantly to the development of next-generation bioelectronics, photonics, and energy storage devices.

👨‍🎓Profile

Scopus

ORCID

🎓 Early Academic Pursuits

Dr. Wang’s academic journey began with a strong foundation in the fundamental sciences. Through early exposure to materials synthesis and characterization, Wang developed a passion for understanding the physical and chemical behavior of novel semiconductor materials. This passion laid the groundwork for a research path centered on innovative material solutions for high-tech applications.

🧑‍🔬 Professional Endeavors

Wang has presided over eight national and provincial research projects, playing a pivotal role in exploring topics ranging from quantum dot/metal oxide heterojunctions for photovoltaic transistors to the controllable preparation of III–V semiconductor nanowires. These projects are backed by prestigious institutions like the National Natural Science Foundation of China and the Shandong Province Key R&D Program.

🔬 Contributions and Research Focus

Dr. Wang’s research contributions lie primarily in the synthesis and application of low-dimensional semiconductor materials. By integrating disciplines, Wang has developed metal oxide nanofibers, indium phosphide nanowires, and multifaceted nanostructures for use in field-effect transistors, UV detectors, and flexible solar cells. These innovations address critical challenges in energy harvesting, optoelectronics, and next-gen computing.

🌍 Impact and Influence

Fengyun Wang’s work has earned widespread recognition. With over 80 SCI-indexed publications in esteemed journals such as Advanced Materials, Advanced Functional Materials, IEEE Electron Device Letters, and Nano Research, Wang’s findings have been cited more than 2400 times, showcasing global academic impact. The research has pushed boundaries in device efficiency and material integration across multiple application areas.

📚 Academic Publications & Citations

  • 80+ SCI papers published internationally

  • Journals include Adv. Mater., Adv. Funct. Mater., IEEE Electron Device Lett., and Nano Res.

  • Total citations: 2400+, underscoring the relevance and reliability of the research

  • Invited author of the monograph Semiconducting Metal Oxide Thin-Film Transistors, published by the British Physical Society

🧪 Research Skills

Dr. Fengyun Wang possesses advanced expertise in the synthesis of low-dimensional materials, including 1D and 2D structures, and the fabrication of nanofibers and nanowires. His skills extend to quantum dot integration, heterojunction construction, and the design and optimization of thin-film transistors. Additionally, he excels in engineering optoelectronic and photovoltaic devices. These capabilities enable him to lead and execute highly complex, interdisciplinary projects at the forefront of materials science and electronic device innovation.

👨‍🏫 Teaching Experience

Though specifics on teaching are not provided, Wang’s leadership in multiple national-level projects and publication of an academic monograph suggests active involvement in mentoring graduate students, postdocs, and likely contributing to advanced university-level courses in semiconductor physics, nanomaterials, and optoelectronics.

🏅 Awards and Honors

Dr. Fengyun Wang holds 5 authorized national invention patents, showcasing his originality and the practical impact of his innovations. He has been selected for key provincial talent programs, including the prestigious Shandong Excellent Youth, recognizing his potential and contributions to scientific advancement. Additionally, he is a recognized author by international scientific societies, reflecting his scholarly excellence and influence in the global research community.

🌟 Legacy and Future Contributions

Looking ahead, Dr. Fengyun Wang is poised to continue leading transformative research in material innovation, particularly in the realm of flexible and high-efficiency electronics. With a growing body of influential work, patented technologies, and academic outreach, Wang’s future contributions will likely shape the next generation of green energy solutions and bio-integrated electronics.

Publications Top Notes

Integrated Sensing-Memory-Computing Artificial Tactile System for Physiological Signal Processing Based on ITO Nanowire Synaptic Transistors

  • Authors: Y. Zhang, J. Xu, M. Wei, S.A. Ramakrishna, F. Wang (Fengyun Wang)
    Journal: ACS Applied Nano Materials
    Year: 2025

Negative Photoconductivity in Nanowires/QDs Heterojunction Network for Neuromorphic Visual Perception

  • Authors: S. Xin, T. Wang, K. Dou, Y. Zhou, F. Wang (Fengyun Wang)
    Journal: Advanced Functional Materials
    Year: 2025

Bionic Gustatory Receptor for pH Identification Based on ZnSnO Nanofiber Synaptic Transistor

  • Authors: P. Xu, W. Zhang, F. Wang (Fengyun Wang)
    Journal: IEEE Electron Device Letters
    Year: 2025

Flexible Electrolyte-Gated Transistor Based on InZnSnO Nanowires for Self-Adaptive Applications

  • Authors: L. Zheng, Z. Liu, S. Xin, R. Seeram, F. Wang (Fengyun Wang)
    Journal: Applied Materials Today
    Year: 2024

Fast Ultraviolet Detection Response Achieved in High-Quality Cs₃Bi₂Br₉ Single Crystals Grown by an Improved Anti-Solvent Method

  • Authors: T. Wang, S. Xin, Y. Liu, B. Teng, S. Ji
    Journal: Journal of Materials Chemistry C
    Year: 2024

 

 

Samira Mansouri Majd | Sensor | Member

Dr. Samira Mansouri Majd | Sensor | Member

PHD at Analytical Chemistry Kurdistan University, Iran

Samira Mansouri Majd is a distinguished analytical chemist hailing from Iran. With an illustrious academic journey, she graduated as the top student in her B.Sc, M.Sc, and Ph.D. Her expertise spans electrochemistry, spectroscopy, and nanotechnology. Samira’s research interests include solar cells, biosensors, and electrochemical synthesis methods. She has contributed significantly to academia, serving as a laboratory instructor and head of the Nanotechnology Society at Kurdistan University. As a reviewer for esteemed journals, she continues to make impactful strides in her field. Samira’s dedication to excellence and innovation marks her as a leading figure in analytical chemistry and nanotechnology.

Professional Profiles:

Education

Diploma in Experimental Science Golshan High School, Kermanshah, Iran Graduated in 2005 Average Score: 19.77/20, Rank: 1/27 B.Sc in Applied Chemistry Kurdistan University, Sanandaj, Iran Graduated in 2009 Average Score: 17.65/20, Rank: 1/28 Project: Basic steps of QSAR/QSPR investigations M.Sc in Analytical Chemistry Kurdistan University, Sanandaj, Iran Graduated in 2012 Average Score: 18.97/20, Rank: 1/10 Thesis: Fabrication of electrochemical Theophylline (TP) sensor... Ph.D in Analytical Chemistry Kurdistan University, Sanandaj, Iran Graduated in 2018 Average Score: 19.76/20, Rank: 1/5 Thesis: Field-effect transistor electrochemical sensors… Postdoc in Analytical Chemistry Razi University, Kermanshah, Iran (2019-2021) Kurdistan University, Sanandaj, Iran (2021-now) Research Focus: Field effect transistor electrochemical sensors and biosensors, Photoelectrochemical sensors and biosensors

Teaching Experience

General chemistry and Analytical chemistry laboratory at the University of Kurdistan, various years. Olympiad of Chemistry, University of Kurdistan, 2014. General chemistry courses, University of Kurdistan, 2021-2022.

Awards

Top student (1/28) in B.Sc. Top student (1/10) in M.Sc. Top student (1/5) in PhD. Best student award, University of Kurdistan, 2007-2008. Best student award in chemistry in Iran, 2018.

Research Interests

Solar cells. Lateral flow strips (rapid tests). Field Effect Transistors (FETs) and their applications in sensors and biosensors. Fabrication of nano and bio electrochemical sensors for study and determination of medicinal and biological compounds. Electrocatalytic methods for determination of biological and pharmaceutical compounds. Electrochemical synthesis methods for preparation of biological and pharmaceutical compounds. Design and manufacture of batteries and supercapacitors. Design and manufacture of portable smart-phones sensor and biosensors.

Instrumental Skills

Proficient in various electrochemistry techniques, electrochemical impedance spectroscopy, and optical spectroscopy techniques

Research Focus:

Samira Mansouri Majd has made significant contributions to the field of analytical chemistry and biosensors, particularly in the development of ultrasensitive detection methods for cancer markers. Her research focuses on the fabrication and optimization of field-effect transistor (FET)-based aptasensors and biosensors. She has pioneered innovative techniques using nanomaterials such as multi-walled carbon nanotubes, graphene, and metal oxides to enhance sensor performance. Majd’s work demonstrates a commitment to advancing early cancer detection through label-free and highly sensitive detection platforms. Her expertise lies at the intersection of nanotechnology, electrochemistry, and biomedical engineering, driving forward the frontier of biosensing technologies for improved healthcare diagnostics.

Publications

  1. Microfluidic electrolyte-gated TiS3 nanoribbons-based field-effect transistor as ultrasensitive label-free immunosensor for prostate cancer marker analysis, Publication: 2024.
  2. Highly sensitive and selective detection of the pancreatic cancer biomarker CA 19-9 with the electrolyte-gated MoS 2-based field-effect transistor immunosensor, Publication: 2023.
  3. Ultrasensitive immunosensor for monitoring of CA 19-9 pancreatic cancer marker using electrolyte-gated TiS3 nanoribbons field-effect transistorPublication: 2023.
  4. Design of a novel aptamer/molecularly imprinted polymer hybrid modified Ag–Au@ Insulin nanoclusters/Au-gate-based MoS2 nanosheet field-effect transistor for attomolar detection, Publication: 2023.
  5. Transport Properties of a Molybdenum Disulfide and Carbon Dot Nanohybrid Transistor and Its Applications as a Hg2+ Aptasensor, Publication: 2020.
  6. The development of radio frequency magnetron sputtered p-type nickel oxide thin film field-effect transistor device combined with nucleic acid probe for ultrasensitive label, Publication: 2018.
  7. Ultrasensitive flexible FET-type aptasensor for CA 125 cancer marker detection based on carboxylated multiwalled carbon nanotubes immobilized onto reduced graphene oxide film, Publication: 2018.
  8. An ultrasensitive detection of miRNA-155 in breast cancer via direct hybridization assay using two-dimensional molybdenum disulfide field-effect transistor biosensorPublication: 2018.
  9. Label-free attomolar detection of lactate based on radio frequency sputtered of nickel oxide thin film field effect transistor, Publication: 2017.
  10. Manganese oxide nanoparticles/reduced graphene oxide as novel electrochemical platform for immobilization of FAD and its application as highly sensitive persulfate sensor, Publication: 2016.
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