Xinyang He | Thermoelectric Fiber | Young Researcher Award

Assoc. Prof. Dr. Xinyang He | Thermoelectric Fiber | Young Researcher Award

Associate Professor | Nantong University | China

Xinyang He is an Associate Professor at the College of Textiles and Clothing, Nantong University, with research expertise in thermoelectric fibers, smart textiles, and optical-thermal-electrical sensor devices. He completed his doctoral studies in Textile Engineering at Donghua University and was selected for the prestigious Young Talent Support Program of the China Association for Science and Technology. He has been recognized as an outstanding graduate and received government sponsorship to pursue collaborative research with Professor Ouyang Jianyong at the National University of Singapore. He has also led competitive research projects supported by national and institutional funding programs. Dr. He has established a strong research profile, publishing widely in leading international journals such as Nature Communications, Advanced Functional Materials, ACS Nano, and Engineering, with several of his papers recognized among the most highly cited in their field. His work is widely referenced, reflecting the influence of his contributions to wearable energy-harvesting technologies and advanced textile applications. Beyond research, he actively supports the scientific community as a member of the Young Editorial Board for several journals, including Chinese Chemical Letters, Carbon Neutralization, Clean Energy Science and Technology, and Renewable and Sustainable Energy, while also serving as editorial assistant for Research and Textile Research Journal and as a reviewer for multiple other journals. In addition, he has contributed scholarly works to international publications, including a book chapter on thermoelectric materials and devices in Wiley’s Electrospinning. His achievements reflect his dedication to advancing smart materials and innovative textile engineering.

Profile:   ORCID  |  Google Scholar

Featured Publications

He, X., Gu, J., Hao, Y., Zheng, M., Wang, L., Yu, J., & Qin, X. (2022). Continuous manufacture of stretchable and integratable thermoelectric nanofiber yarn for human body energy harvesting and self-powered motion detection. Chemical Engineering Journal, 450, 137937.

He, X., Shi, J., Hao, Y., He, M., Cai, J., Qin, X., Wang, L., & Yu, J. (2022). Highly stretchable, durable, and breathable thermoelectric fabrics for human body energy harvesting and sensing. Carbon Energy, 4(4), 621–632.

Sun, Z., Feng, L., Xiong, C., He, X., Wang, L., Qin, X., & Yu, J. (2021). Electrospun nanofiber fabric: An efficient, breathable and wearable moist-electric generator. Journal of Materials Chemistry A, 9(11), 7085–7093.

Hao, Y., Yan, Q., Liu, H., He, X., Zhang, P., Qin, X., Wang, R., Sun, J., Wang, L., & Yu, J. (2023). A stretchable, breathable, and self-adhesive electronic skin with multimodal sensing capabilities for human-centered healthcare. Advanced Functional Materials, 33(44), 2303881.

He, X., Hao, Y., He, M., Qin, X., Wang, L., & Yu, J. (2021). Stretchable thermoelectric-based self-powered dual-parameter sensors with decoupled temperature and strain sensing. ACS Applied Materials & Interfaces, 13(50), 60498–60507.

He, X., Shi, J., Hao, Y., Wang, L., Qin, X., & Yu, J. (2021). PEDOT:PSS/CNT composites based ultra-stretchable thermoelectrics and their application as strain sensors. Composites Communications, 27, 100822.

Hao, Y., He, X., Wang, L., Qin, X., Chen, G., & Yu, J. (2022). Stretchable thermoelectrics: Strategies, performances, and applications. Advanced Functional Materials, 32(13), 2109790.

He, X., Li, B., Cai, J., Zhang, H., Li, C., Li, X., Yu, J., Wang, L., & Qin, X. (2023). A waterproof, environment-friendly, multifunctional, and stretchable thermoelectric fabric for continuous self-powered personal health signal collection at high humidity. SusMat, 3(5), 709–720.

Arash NourbakhshSadabad | Renewable Energy | Best Researcher Award

Dr. Arash NourbakhshSadabad | Renewable Energy | Best Researcher Award

Dr.  Arash NourbakhshSadabad, University of Tabriz, Iran

Dr. Arash NourbakhshSadabad is a distinguished researcher, academic, and innovator in the field of mechanical engineering with expertise in energy conversion, fluid mechanics, and thermodynamics. He completed his Bachelor’s, Master’s, and PhD degrees in Mechanical Engineering at Tabriz University with an excellent academic record,  during his doctoral studies. Alongside his academic journey, he has been a lecturer at Tabriz University, teaching key courses such as heat transfer, thermodynamics, fluid mechanics, and turbomachinery while also serving as a research assistant in advanced projects. He has authored and co-authored several books and published numerous articles in reputable international and national journals, focusing on areas such as cavitation, renewable energy systems, hydrogen production, exergy analysis, and aerodynamic studies. His innovative contributions are highlighted by multiple patents, including compact and foldable hydraulic seats, a fan umbrella with sunlight detection capabilities, and self-retractable sunshades for vehicles. In addition to academia, he is the CEO of Bornafidar Rasa Company, where he has overseen projects introducing pioneering technologies in Iran, including handheld sprays, 3D spacer mesh devices, vacuum forming machines, and GPC wall panels. His excellence has been recognized with prestigious honors, including being named an exemplary student of Tabriz University, recognition from the Alborz Foundation and Elite Foundation, and multiple awards at the International Harakat Festival for innovation and creativity. He has also held leadership positions such as secretary-general of national mechanical and scientific associations, promoting collaboration and advancing academic and industrial growth. Skilled in engineering tools such as ANSYS, CATIA, MATLAB, Python, and OpenFOAM, he continues to bridge the gap between research, teaching, and industry. His career reflects a deep commitment to advancing mechanical engineering, renewable energy technologies, and innovative solutions, marking him as a rising leader in the global engineering community.

Profile : Google Scholar 

Featured Publications

Nourbakhsh, A., Nami Khalilehdeh, M., Faramarzi, S., & Mafi, M. (2021). Energy, exergy and economic analysis of a hydrogen liquefaction process integrated with a PRICO cycle. Gas Processing Journal, 9(2), 83–102.

Aryanfar, Y., Keçebaş, A., Nourbakhsh Sadabad, A., Alcaraz, J. L. G., Fernandez, J. B., & Wu, W. (2024). Production of biodiesel from industrial sludge: Recent progress, challenges, perspective. Processes, 12(11), 2517.

Nourbakhshsadabad, A., Nami Khalilehdeh, M., Abdollahi, S. A., & Ranjbar, F. (2024). A review of the methods of experimental detection and vibration effects of cavitation phenomenon in centrifugal pump. Journal of Pump, 39(54), 15–32.

Aryanfar, Y., Nourbakhsh Sadabad, A., Nami Khalilehdeh, M., Keçebaş, A., Mirzaei, F., & others. (2024). Synthetic biodegradable polymers as adsorbents of dyes. Elsevier.

Zonouzi, P., Nami Khalilehdeh, M., Nourbakhsh, A., Khajehnasiri, A., & others. (2023). Modeling and emission analysis of a Wankel internal combustion engine through EES software. Gas Processing Journal, 11(2), 1–10.

Ramyakrishna Pothu | Energy Conversion | Best Researcher Award

Ms. Ramyakrishna Pothu | Energy Conversion | Best Researcher Award

Ms. Ramyakrishna Pothu | Hunan University | China

Ms. Ramyakrishna Pothu is a dedicated researcher with a strong background in material chemistry, energy conversion, and storage. Currently pursuing her Ph.D. at Hunan University, China, she has garnered experience in advanced analytical techniques and nanomaterials. With a proven track record of publications in esteemed journals and awards, including the Chinese Scholarship Council and Silver Medal, she demonstrates exceptional research capabilities. Her expertise extends to electrospinning, MOFs, MXenes, and graphene nanosheets. As a lecturer and research scholar, she showcases her ability to adapt to new environments and collaborate effectively, driving innovation in her field.

Publication Profile

Scopus Profile

ORCID

Academic Background

Ms. Ramyakrishna Pothu academic journey is marked by distinction and dedication. She is pursuing her Ph.D. in Material Chemistry at Hunan University, China, building on her strong foundation in chemistry. Her academic credentials include a Master’s degree in Chemistry from Osmania University, Hyderabad, and a Bachelor’s degree in Chemistry, Computer Science, and Mathematics from Satavahana University, Karimnagar. Throughout her education, she has consistently demonstrated academic excellence, laying the groundwork for her research endeavors. Her educational background has equipped her with a comprehensive understanding of chemical principles, preparing her for a successful research career.

Professional Experience

Ms. Ramyakrishna Pothu has accumulated valuable experience in research and academia. As a lecturer in chemistry, she has demonstrated her ability to impart knowledge and inspire students. Her experience as a research scholar at Hunan University and research project assistant at Beijing University of Chemical Technology has honed her skills in conducting independent and collaborative research. Additionally, she has worked as an R&D chemist, applying her knowledge of chemical analysis and synthesis to real-world problems. Her diverse experience has equipped her with a unique blend of teaching, research, and industry expertise, making her a versatile professional in her field.

Awards and Honors

Ms. Ramyakrishna Pothu has garnered several prestigious awards and honors for her outstanding contributions. She received the Chinese Scholarship Council award for her academic excellence. Additionally, she was awarded the Silver Medal and WIIPA Special Award at the International Invention Innovation Competition in Canada for her groundbreaking research on hydrogen-enriched syngas and carbon nanotubes production. Her research excellence has also earned her recognition in various international conferences, showcasing her capabilities as a promising researcher in her field. These accolades underscore her dedication to scientific innovation and discovery

Research Focus

Ms. Ramyakrishna Pothu research is centered on developing innovative materials and technologies for energy conversion and storage. Her work focuses on nanomaterials, nanodevices, and catalysts, with applications in environmental sustainability and renewable energy. She explores advanced materials like MXenes, graphene nanosheets, and metal-organic frameworks to address pressing energy challenges. Her research also delves into biomass valorization, CO2 utilization, and circular economy principles. By combining experimental and theoretical approaches, she aims to create sustainable solutions that can positively impact the environment and society, contributing to a more sustainable future through cutting-edge research and development.

Publication Top Notes

Transesterification of neem seed oil for environmentally friendly biolubricants: Promoting circular economy in industrial processes
Citations: 1
Year: 2025

Biofilm inhibition against Staphylococcus aureus and alizarin red dye-removing capability of plant-based green synthesis of lanthanum oxide nanoparticles
Year: 2025

Bioactive hydrogels (Bio-HyGs): Emerging trends in drug delivery and wound healing applications
Citations: 5
Year: 2025

Transesterification of castor oil and ethanol using green catalyst for biodiesel production through Box–Behnken design
Citations: 3
Year: 2025

Natural product extract fractions as potential arthritis treatments: A detailed analysis using in-silico, in-vivo, and in-vitro methods
Citations: 13
Year: 2025

Recent advances in electrocatalytic transesterification: Enhancing biodiesel synthesis for sustainable energy
Year: 2025

Exploring the diverse nanomaterials employed in dental prosthesis and implant techniques: An overview
Citations: 5
Year: 2025

Conclusion

Ms. Ramyakrishna Pothu is a highly accomplished researcher with significant contributions to the field of material chemistry and energy storage. Her extensive research experience, strong publication record, and awards make her an excellent candidate for the Best Researcher Award. With further development of her leadership skills and expansion of her research collaborations, she has the potential to make even greater impacts in her field.