Longyan Li | Electrical Chemistry | Innovative Research Award

Innovative Research Award

Longyan Li
Nanjing University of Information Science & Technology, China

Longyan Li
Affiliation Nanjing University of Information Science & Technology
Country China
Scopus ID 56094165900
Documents 35
Citations 633
h-index 16
Subject Area Electrical Chemistry
Event Metallurgical Engineering Awards

Longyan Li is a researcher affiliated with Nanjing University of Information Science & Technology in China whose indexed scholarly record includes 35 documents, 633 citations, and an h-index of 16 according to the supplied Scopus profile information. The stated subject area is Electrical Chemistry, a field that encompasses electrochemical phenomena, materials interfaces, charge-transfer processes, and related chemical and engineering applications. The researcher is presented for consideration for the Innovative Research Award, with assessment appropriately centered on the originality, technical contribution, methodological quality, and relevance of the documented research record.

Abstract

Longyan Li is affiliated with Nanjing University of Information Science & Technology and is identified in the supplied academic record with Electrical Chemistry as the principal subject area. The available bibliometric information records 35 documents, 633 citations, and an h-index of 16. These indicators provide a quantitative description of the indexed research output and citation influence associated with the Scopus author record.[1] The Innovative Research Award recognizes research in which originality, scientific or engineering significance, and demonstrable contribution are important considerations. In this context, Li’s research profile may be evaluated through documented publications, methodological approaches, research outcomes, and the extent to which the work contributes to advances in electrochemical or related materials-oriented research.

Keywords

Longyan Li; Innovative Research Award; Electrical Chemistry; Electrochemistry; Electrochemical Materials; Nanjing University of Information Science & Technology; Materials Research; Research Impact; Scientific Innovation; Metallurgical Engineering.

Introduction

Electrochemistry examines chemical and electrical processes at interfaces and provides a scientific foundation for technologies involving energy conversion, energy storage, corrosion control, sensing, catalysis, and materials processing. Electrochemical behavior is strongly influenced by electrode composition, surface structure, electrolyte properties, interfacial kinetics, and transport phenomena.[2] The field therefore has substantial interdisciplinary connections with materials science, chemical engineering, metallurgy, and surface engineering.

Research Profile

The supplied Scopus information identifies Longyan Li under author ID 56094165900 and records 35 documents, 633 citations, and an h-index of 16.[1] The affiliation is Nanjing University of Information Science & Technology, China. The stated subject area, Electrical Chemistry, places the research profile within an interdisciplinary domain where electrochemical principles intersect with chemical, physical, and materials-based investigations.

Research Contributions

Based on the supplied subject classification, Li’s research profile is positioned within Electrical Chemistry and related electrochemical research. Such research can contribute to understanding charge-transfer behavior, electrode–electrolyte interfaces, reaction kinetics, materials performance, and the relationship between structure and electrochemical properties. Electrochemical research is also relevant to materials degradation and corrosion, where electrochemical reactions play a central role in determining material stability and service performance.[4]

Publications

The supplied information confirms 35 indexed documents associated with the Scopus author record.[3] Because individual publication titles, journal information, and DOI identifiers were not supplied, this profile does not assign specific publications to the researcher without independent verification. For academic recognition, publication-level assessment should consider peer-reviewed outputs, methodological rigor, reproducibility, originality, and the relevance of the reported findings.[5]

Research Impact

The supplied bibliometric record reports 633 citations across 35 documents and an h-index of 16.[1] These figures indicate measurable scholarly visibility within the indexed record. Citation counts can reflect the uptake of published research by subsequent scholars, but citation frequency alone should not be interpreted as a complete measure of research quality, innovation, societal benefit, or technological adoption.

Award Suitability

Longyan Li’s supplied research profile is considered for the Innovative Research Award on the basis of an established indexed publication record and a stated specialization in Electrical Chemistry. The reported 35 documents, 633 citations, and h-index of 16 provide supporting bibliometric context.[1] The principal qualitative criterion should be the originality and significance of the underlying research.

Conclusion

Longyan Li is affiliated with Nanjing University of Information Science & Technology and has a supplied Scopus record comprising 35 documents, 633 citations, and an h-index of 16.[1] The stated research area of Electrical Chemistry provides an interdisciplinary foundation relevant to electrochemical science, materials research, and engineering applications. The Innovative Research Award assessment should emphasize verified research originality, technical contribution, publication quality, and demonstrated relevance to the award’s metallurgical and materials-oriented scope.

References

  1. Elsevier. (n.d.). Scopus author details: Longyan Li, Author ID 56094165900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=56094165900
  2. L Chen, L Li. (2025). Nickel–cobalt–manganese ternary electrodes with CEI film evolution via ORR-regulated pH modulation in zinc-ion batteries.
    https://pubs.rsc.org/tc/article-abstract/13/26/13426/918264
  3. H Ahmad, K Khan, MM Baig, SA Khan, K Li, M Ahmad, J Shah, L Li, G Zhu, Y Zhang. (2026). Advances in 3D printing for zinc-ion battery applications: a review of electrode materials and electrolytes.
    https://pubs.rsc.org/nr/article-abstract/18/21/11178/1227911
  4. Q Lu, Y Chen, L Li. (2026). Amorphous nano-TiO2 as a high-performance cathode material for secondary aqueous zinc-ion batteries.
    https://www.sciencedirect.com/science/article/pii/S0378775326022007
  5. L Chen, T Tu, L Li. (2025). Superior electrochemical performance of aqueous zinc-ion battery achieved by pairing a Nickel-based electrode prepared through one-step electrodeposition with manganese-rich electrolyte.
    https://link.springer.com/article/10.1007/s10800-024-02233-6

Fuhua Yang | Electrochemical | Innovative Research Award

Innovative Research Award

Fuhua Yang
Affiliation Central South University
Country China
Scopus ID 56347594200
Documents 38
Citations 5,590
h-index 26
Subject Area Electrochemical
Event Metallurgical Engineering Awards
ORCID 0000-0002-4866-3036

Fuhua Yang
Central South University, China

Fuhua Yang is an academic researcher affiliated with Central South University whose scholarly work has contributed to the advancement of electrochemical engineering, materials science, and metallurgical technologies. Through peer-reviewed publications and collaborative scientific research, Yang has participated in studies involving electrochemical processes, advanced functional materials, energy-related applications, and sustainable metallurgical technologies. According to Scopus metrics, the researcher has authored 38 indexed publications with more than 5,590 citations and an h-index of 26, demonstrating sustained scholarly influence within the international research community.[1]

Abstract

The Innovative Research Award recognizes researchers whose scholarly activities demonstrate originality, technical excellence, and measurable scientific impact. Fuhua Yang’s academic contributions encompass electrochemical technologies, advanced materials, energy conversion systems, and metallurgical process optimization. The combination of publication quality, citation performance, and interdisciplinary collaboration reflects a sustained contribution to scientific knowledge while supporting advances in industrial metallurgy and materials engineering.[1][2]

Keywords

Electrochemical Engineering; Metallurgical Engineering; Advanced Materials; Energy Storage; Electrocatalysis; Functional Materials; Sustainable Metallurgy; Scientific Research; Materials Science; Electrochemical Systems.

Introduction

Modern metallurgical engineering increasingly relies upon electrochemical science to improve extraction efficiency, materials performance, corrosion resistance, recycling technologies, and sustainable manufacturing. Researchers working across these disciplines contribute to technological innovation while addressing environmental and industrial challenges. Fuhua Yang’s research activities illustrate this multidisciplinary approach through investigations that integrate electrochemistry with advanced materials development and engineering applications.[2]

Research Profile

Affiliated with Central South University, Fuhua Yang has established a publication record recognized through international citation databases. The author’s Scopus profile reports 38 indexed documents, 5,590 citations, and an h-index of 26, indicating both productivity and scholarly influence across electrochemical engineering and related materials science disciplines.[1]

Research Contributions

  • Research involving electrochemical processes relevant to advanced materials engineering.
  • Contributions supporting energy conversion and storage technologies.
  • Studies associated with functional materials and electrocatalytic performance.
  • Scientific publications contributing to sustainable metallurgical research.
  • Collaborative interdisciplinary research with measurable international academic impact.

Publications

The publication portfolio demonstrates consistent engagement with peer-reviewed journals covering electrochemistry, materials engineering, and applied metallurgy. These publications have collectively generated substantial citation activity, reflecting continued academic relevance and international visibility.[3]

  • Peer-reviewed journal articles indexed in Scopus.
  • Collaborative research papers in electrochemical materials science.
  • Studies addressing advanced energy and metallurgical technologies.

Research Impact

Citation indicators suggest that the published research has been widely referenced within the scientific community. The combination of an h-index of 26 and more than five thousand citations demonstrates consistent academic engagement and indicates that the published work has contributed to ongoing developments in electrochemical engineering and advanced materials research.[1]

Award Suitability

Based on publicly available academic metrics and research outputs, Fuhua Yang demonstrates characteristics aligned with the objectives of the Innovative Research Award. These include sustained publication activity, interdisciplinary scientific contributions, measurable citation impact, and continued participation in internationally recognized research within electrochemical and metallurgical engineering.[1][4]

Conclusion

Fuhua Yang’s academic record reflects sustained research activity, significant citation performance, and contributions to electrochemical engineering and advanced materials science. These achievements illustrate meaningful scholarly engagement with topics relevant to modern metallurgical engineering while supporting continued innovation through internationally recognized scientific research.[5]

References

  1. Elsevier. (n.d.). Scopus author details: Fuhua Yang, Author ID 56347594200. Scopus.
    https://www.scopus.com/pages/authors/56347594200
  2. F Yang, S Liu, D Li, & et al. (2020). An in‐depth study of Zn metal surface chemistry for advanced aqueous Zn‐ion batteries.
    https://advanced.onlinelibrary.wiley.com/doi/abs/10.1002/adma.202003021
  3. Y Lai, J Li, F Yang, & et al. (2024). Lignin‐derived hard carbon anode with a robust solid electrolyte interphase for boosted sodium storage performance.
    https://onlinelibrary.wiley.com/doi/abs/10.1002/cey2.538
  4. C Ye, F Yang, C Wu, & et al. (2023). Hybrid working mechanism enables highly reversible Zn electrodes.
    https://www.sciencedirect.com/science/article/pii/S266714172300006X
  5. F Yang, S Zhang, K Davey, & et al. (2023). Monolithic phosphate interphase for highly reversible and stable Zn metal anode.
    https://onlinelibrary.wiley.com/doi/abs/10.1002/anie.202215600

Yuqing Chen | Electrochemical | Best Researcher Award

Yuqing Chen | Electrochemical | Best Researcher Award

Associated Professor at Zhejiang Shuren University | China

Dr. Yuqing Chen is currently serves as a Distinguished Associate Researcher at the Institute of Interdisciplinary Sciences, Zhejiang Shuren University. She earned her Ph.D. in Advanced Energy Materials from Hunan University under the supervision of Professor Jilei Liu, a National Young Talent awardee and Vice Dean of the School of Materials Science and Engineering. Prior to this, she completed a joint Master’s program in Electrochemical Technology at Tsinghua University under Professor Xiangming He and obtained a Master’s degree in New Energy Materials and Devices from Wuhan University of Technology under Professor Quanyao Zhu. Her undergraduate studies were in Inorganic Nonmetallic Materials at Wuhan University of Engineering. Dr. Chen’s research focuses on new energy materials and devices, particularly on lithium-ion battery electrolyte design, solvation chemistry, and electrochemical safety. She previously worked as an electrolyte development engineer at Zhejiang Provincial Chemical Research Institute (Sinochem Blue Sky Group), where she designed novel solvent and additive molecules and evaluated battery safety under international standards. She currently leads teaching in university-level chemistry courses, energy chemistry curriculum development, and energy materials research. Dr. Chen has authored 10 SCI-indexed articles with a total impact factor of 150, holds three patents, co-authored one translated book, and has accumulated over 2,500 citations, with an h-index of 19. She has led national projects on high-performance and wide-temperature lithium-ion battery electrolytes and has received multiple honors including the Zhejiang Provincial Intellectual Property Award, the JEC 2021 Best Paper Award, National Scholarship, and other academic and research distinctions.

Profilie: Scopus | ORCID | Google Scholar

Featured Publications

Chen, Y., Kang, Y., Zhao, Y., Wang, L., Liu, J., Li, Y., Liang, Z., He, X., Li, X., et al. (2021). A review of lithium-ion battery safety concerns: The issues, strategies, and testing standards. Journal of Energy Chemistry, 59, 83–99.

Chen, Y., He, Q., Zhao, Y., Zhou, W., Xiao, P., Gao, P., Tavajohi, N., Tu, J., Li, B., et al. (2023). Breaking solvation dominance of ethylene carbonate via molecular charge engineering enables lower temperature battery. Nature Communications, 14(1), 8326.

Chen, Y., He, Q., Mo, Y., Zhou, W., Zhao, Y., Piao, N., Liu, C., Xiao, P., Liu, H., Li, B., et al. (2022). Engineering an insoluble cathode electrolyte interphase enabling high performance NCM811//graphite pouch cell at 60° C. Advanced Energy Materials, 12(33), 2201631.

Kang, Y., Deng, C., Chen, Y., Liu, X., Liang, Z., Li, T., Hu, Q., Zhao, Y. (2020). Binder-free electrodes and their application for Li-ion batteries. Nanoscale Research Letters, 15(1), 112.

Mo, Y., Zhou, W., Wang, K., Xiao, K., Chen, Y., Wang, Z., Tang, P., Xiao, P., Gong, Y., et al. (2023). Engineering electrode/electrolyte interphase chemistry toward high-rate and long-life potassium ion full-cell. ACS Energy Letters, 8(2), 995–1002.

Zhou, W., He, B., Quan, L., Li, R., Chen, Y., Fan, C., Chen, S., Xu, C., Fan, X., Xing, L., et al. (2023). Binder chemistry dependent electrolyte reduction in potassium‐ion batteries: A successive, two‐step reduction way. Advanced Energy Materials, 13(2), 2202874.