Yunyun Zhai | Surface Engineering | Best Researcher Award

Best Researcher Award

Yunyun Zhai,
Jiaxing University.

Yunyun Zhai
Affiliation Jiaxing University
Country China
Scopus ID 54890784900
Documents 49
Citations 1,744
h-index 22
Subject Area Composite Separators for Lithium Metal Batteries
Event Global Metallurgy Awards
ORCID 0000-0001-5677-3000

Yunyun Zhai is a researcher affiliated with Jiaxing University, China, whose documented research includes functional materials, electrochemical sensing, lithium-ion and lithium-metal battery systems, and separator technologies. Bibliographic records identify contributions involving nanostructured materials and electrochemical applications. [1] [2]

Abstract

Yunyun Zhai’s documented research profile encompasses functional materials, electrochemical analysis, and advanced battery technologies, with particular relevance to lithium-metal battery separators and ion-transport regulation. Her publication record includes studies of nanostructured and composite materials for electrochemical applications, providing a bibliographic basis for recognition within materials and metallurgical research. [1] [3]

Keywords

  • Lithium-metal batteries
  • Composite separators
  • Electrochemical materials
  • Metal-organic frameworks
  • Nanostructured materials
  • Ion transport

Introduction

Lithium-metal batteries are an important research area because separator structure and ion transport can influence deposition behavior, electrochemical stability, and cycling performance. Yunyun Zhai’s documented work addresses functional separator and materials strategies relevant to these challenges, including modified porous structures and ion-flux regulation for lithium-metal battery systems. [3] [4]

Research Profile

The supplied bibliographic profile records 49 documents, 1,744 citations, and an h-index of 22 for Yunyun Zhai. Her documented affiliations are associated with Jiaxing University, where published research covers functional materials, electrochemical sensing, battery materials, and separator engineering. Her ORCID identifier provides an additional persistent mechanism for researcher identification. [1] [2]

Research Contributions

Published studies involving Yunyun Zhai include composite and modified separators designed to influence lithium-ion distribution and suppress undesirable lithium dendrite formation. One reported approach uses an open-pore MFI zeolite nanosheet-modified separator to regulate lithium-ion flux, while another investigates Zn(Bim)OAc-functionalized polyacrylonitrile composite separators. [3] [4]

Publications

The publication record includes research articles spanning electrochemical sensing, nanostructured materials, and lithium-based battery technologies. A 2024 Chemical Communications article by Zhai and co-authors examined an open-pore MFI zeolite nanosheet-modified separator for lithium-metal batteries, with DOI 10.1039/D3CC05702J. Earlier work also includes electrochemical molecular-imprinted sensors and other functional-material studies. [3] [2]

Research Impact

The supplied bibliometric indicators report 1,744 citations and an h-index of 22 across 49 documents, providing quantitative evidence of citation activity within the indexed research record. Individual publications further demonstrate application-oriented work in battery separators and electrochemical materials, including studies directed toward lithium-ion redistribution and dendrite-control strategies. [1] [4]

Award Suitability

For the Best Researcher Award category, the available record provides several measurable indicators for academic consideration, including publication volume, citation count, h-index, institutional affiliation, and documented research contributions. Her work on advanced battery materials and composite separators also aligns with materials-focused research themes relevant to the Global Metallurgy Awards. [1] [3]

Conclusion

Yunyun Zhai’s documented research record combines electrochemical materials research with lithium-metal battery technologies and separator engineering. The supplied bibliometric indicators and published studies establish a research profile with measurable scholarly activity, while her documented contributions to functional separators provide a specific technical focus within advanced materials and energy-storage research. [1] [3]

References

  1. Zhai, Y., Wu, Y., Sheng, J., Liu, H., Huang, Z., Xiao, Q., & Li, L. (2024). An open-pore MFI zeolite nanosheet-modified separator with Li-ion flux regulation for lithium-metal batteries. Chemical Communications, 60, 324–327. DOI: 10.1039/D3CC05702J.

    https://doi.org/10.1039/D3CC05702J

  2. Ju, Y., Liu, H., Chen, Y., Sheng, J., Zhai, Y., Dong, B., Cheng, R., Zhou, Y., & Li, L. (2022). An Ultrathin Zn-Bdc MOF Nanosheets Functionalized Polyacrylonitrile Composite Separator with Anion Immobilization and Li+ Redistribution for Dendrite-Free Li Metal Battery. SSRN.

    https://doi.org/10.2139/ssrn.4195931

  3. Zhang, F., Sun, Q., Li, P., Sheng, J., Zhai, Y., Wang, W., Huo, Y., Liu, H., & Li, L. (2026). Ultrathin 2D Co-BDC metal-organic frameworks nanosheets as a buffer layer for regulating lithium-ion flow in lithium-metal batteries.

    https://doi.org/10.1016/j.jpowsour.2026.239681

  4. Ouyang, Q., Liu, M., Hu, Y., Ge, F., Huang, J., Zhang, H., Zhang, Y., Sheng, J., & Zhai, Y. (2025). Fluorine-free composite nanofibrous membrane with enhanced far-infrared emissivity, waterproofness, and breathability via electrospinning/spray process.

    https://doi.org/10.1016/j.coco.2025.102593

Xinjian Yuan | Surface Engineering | Innovative Research Award

Innovative Research Award

Xinjian Yuan
Affiliation Chongqing University
Country China
Scopus ID 13404793500
Documents 85
Citations 1633
h-index 24
Subject Area Welding Surfacing Technology
Event Global Metallurgy Awards

Xinjian Yuan,
Chongqing University

Xinjian Yuan, affiliated with Chongqing University, China, is recognized for scholarly contributions in welding surfacing technology. His publication record, citation impact, and sustained research activity demonstrate consistent academic productivity and international research visibility within metallurgy and advanced manufacturing disciplines.[1]

Abstract

This academic profile summarizes the research achievements of Xinjian Yuan in welding surfacing technology. The article highlights research productivity, publication performance, scholarly influence, and suitability for recognition through the Innovative Research Award based on publicly available bibliometric information and academic records.[1]

Keywords

Welding Surfacing Technology, Metallurgy, Surface Engineering, Materials Science, Welding Engineering, Advanced Manufacturing, Research Excellence, Citation Impact, Scopus Author, Innovative Research Award.[2]

Introduction

Xinjian Yuan has established an active research career focused on welding surfacing technology and metallurgical engineering. His work contributes to understanding advanced welding processes, material performance, and engineering applications while supporting scientific progress through peer-reviewed publications and collaborative research initiatives worldwide.[1] [2]

Research Profile

The research profile demonstrates sustained scholarly productivity with 85 indexed publications, 1,633 citations, and an h-index of 24. These bibliometric indicators reflect consistent publication quality, academic visibility, and meaningful engagement within the international metallurgy and welding engineering research community.[1]

Research Contributions

Research contributions include investigations into welding surfacing techniques, coating technologies, material behavior, and process optimization. The published studies support industrial manufacturing, improve surface performance, and advance engineering knowledge through innovative experimental methodologies and collaborative scientific research activities.[2] [3]

Publications

The publication portfolio consists of peer-reviewed journal articles addressing metallurgy, welding science, surface engineering, and materials processing. Numerous publications have received scholarly citations, indicating continued relevance and recognition by researchers working across manufacturing and materials engineering disciplines.[3]

Research Impact

Citation performance and publication quality indicate measurable research influence within welding and metallurgy. The accumulated citation record demonstrates that published findings continue to inform subsequent investigations, encouraging scientific collaboration and supporting technological development across relevant engineering research fields.[1]

Award Suitability

Based on available bibliometric indicators and research achievements, the candidate demonstrates qualifications aligned with the objectives of the Innovative Research Award. Sustained publication activity, citation influence, and technical contributions support consideration for academic recognition within the Global Metallurgy Awards.[1]

Conclusion

Xinjian Yuan’s academic record reflects continuous contributions to welding surfacing technology through impactful publications, measurable citation performance, and international research engagement. These accomplishments provide a strong scholarly foundation supporting professional recognition and continued advancement in metallurgical engineering research.[1]

External Links

References

  1. Elsevier. (n.d.). Scopus Author Details: Xinjian Yuan, Author ID 13404793500. Scopus.

    https://www.scopus.com/authid/detail.uri?authorId=13404793500

  2. Li, Z., Yuan, X., Luo, Y., Wang, K., Zhao, Y., Sun, J., Qiu, C., & Yuan, Y. (2026). Failure behavior of power transmission engineering lap structures under dynamic impacts. International Journal of Impact Engineering.

    https://doi.org/10.1016/j.ijimpeng.2025.105515

  3. Global Metallurgy Awards. Award evaluation guidelines.

    https://metallurgyaward.com