Xing Kang | Chemistry | Best Researcher Award

Best Researcher Award

Xing Kang
East China University of Science and Technology, China

Xing Kang
Affiliation East China University of Science and Technology
Country China
ORCID ID 0000-0001-5320-2376
Documents 17
Subject Area Chemistry
Event International Academic Achievements & Awards

Xing Kang is a researcher affiliated with East China University of Science and Technology in China, with research activity identified within the field of Chemistry. The researcher profile provided for this recognition page records 17 scholarly documents and an ORCID identifier, providing persistent information for distinguishing the researcher and connecting scholarly outputs across research systems. [1] [2]

Abstract

The Best Researcher Award profile recognizes Xing Kang for documented research activity in Chemistry and affiliation with East China University of Science and Technology. The supplied academic record contains 17 documents and an ORCID identifier that supports persistent researcher identification. [1] [2] This page presents the available profile information in a structured academic format and avoids attributing publication-level achievements that have not been independently supplied.

Keywords

Xing Kang; Best Researcher Award; Chemistry; East China University of Science and Technology; scientific research; scholarly publications; ORCID; academic recognition.

Introduction

Chemistry encompasses the study of substances, their properties, transformations, structures, and interactions. Research within the discipline contributes to areas including materials, catalysis, chemical synthesis, analytical methods, energy, environmental science, and related interdisciplinary fields. Within this broad context, researcher profiles provide a useful means of documenting scholarly activity and connecting publications with persistent researcher identifiers. ORCID is designed to distinguish researchers and associate their contributions with a persistent identifier. [2]

Research Profile

Xing Kang’s supplied profile identifies East China University of Science and Technology as the institutional affiliation and Chemistry as the principal subject area. The record contains 17 documents. These details provide a concise bibliographic representation of the researcher’s documented scholarly activity. Scopus is a major bibliographic database used to index research literature and associate publications with author profiles. [1]

Research Contributions

The available information establishes a research connection with Chemistry but does not provide sufficient publication-level information to attribute specific discoveries, methods, materials, or experimental findings to Xing Kang. Accordingly, the recognition profile focuses on the documented research record rather than making unsupported claims about individual scientific outcomes. Detailed assessment of contributions may consider verified publications, methodological originality, research significance, collaboration, and reproducibility where appropriate.

Publications

The supplied record indicates 17 scholarly documents associated with the researcher. Individual publication titles, publication years, citation counts, and DOI identifiers were not provided in the source information for this page. For accuracy, no specific publication or DOI is attributed to the researcher without a verified bibliographic record. DOI information can be checked through the DOI registration infrastructure when an article identifier is available. [3]

Research Impact

Research impact may be examined through scholarly dissemination, citations, collaboration, methodological adoption, and contributions to scientific knowledge. The current supplied profile confirms 17 documents but does not provide verified citation or h-index values. Therefore, no quantitative impact measure beyond the documented document count is assigned here. Persistent identification through ORCID can also support accurate attribution of research outputs across systems. [2]

Award Suitability

The Best Researcher Award profile is aligned with the supplied academic information because the researcher has a documented scholarly record in Chemistry and an identifiable institutional affiliation. The stated 17 documents provide a measurable bibliographic basis for recognition, while the ORCID identifier offers a persistent mechanism for researcher identification. [1] [2] Final recognition should be considered according to the applicable award evaluation procedures and verified supporting documentation.

Conclusion

Xing Kang is presented in this academic recognition profile as a Chemistry researcher affiliated with East China University of Science and Technology. The available record documents 17 scholarly documents and an ORCID identifier. Further publication-specific assessment, including citation impact and DOI-level verification, should rely on the corresponding authoritative bibliographic records.

References

  1. Elsevier. (n.d.). High-loading and efficient immobilization of commercial CalA/CalB lipase blend onto tbo-COF for enhanced ester hydrolysis activity.
    https://www.sciencedirect.com/science/article/abs/pii/S0308814626034746?via%3Dihub
  2. ORCID. (n.d.). ORCID: Connecting research and researchers. ORCID.
    https://orcid.org/0000-0001-5320-2376
  3. Porous 2D and 3D Covalent Organic Frameworks with Dimensionality-Dependent Photocatalytic Activity in Promoting Radical Ring-Opening Polymerization.
    https://onlinelibrary.wiley.com/doi/10.1002/ange.202107915
  4. Recent Advances of Covalent Organic Frameworks for Chiral Separation.
    https://link.springer.com/article/10.1007/s40242-022-1490-6

Jianwei Wang | Chemical Engineering | Innovative Research Award

Innovative Research Award

Jianwei Wang
Affiliation Yan’an University
Country China
Scopus ID 57196393567
Documents 28
Citations 1,318
h-index 18
Subject Area Chemical Engineering
Event International Academic Achievements & Awards
ORCID 0000-0003-3754-0150

Jianwei Wang

Institution: Yan’an University, China

The Innovative Research Award recognizes distinguished scholarly achievement and sustained scientific contributions in Chemical Engineering and advanced energy-storage materials. Jianwei Wang of Yan’an University has established a notable research profile through investigations into aqueous zinc-ion batteries, rare-earth functional materials, electrochemical energy storage, and advanced nanostructured electrode engineering. His scholarly publications demonstrate continued contributions toward improving battery performance, structural stability, and electrochemical efficiency while advancing sustainable energy technologies.[1]

Abstract

Jianwei Wang’s research emphasizes the design of high-performance electrochemical energy-storage materials through nanostructure engineering, rare-earth modification, multifunctional carbon composites, and electrode optimization. His work contributes to enhancing capacity retention, cycling durability, charge-transfer kinetics, and structural stability of aqueous zinc-ion batteries. The published studies demonstrate practical approaches toward next-generation sustainable energy systems while strengthening the scientific understanding of electrochemical mechanisms.[2]

Keywords

Chemical Engineering, Aqueous Zinc-Ion Batteries, Rare Earth Materials, Electrochemical Energy Storage, Nanomaterials, Battery Cathodes, Electrode Engineering

Introduction

Modern electrochemical energy storage requires electrode materials capable of delivering long cycle life, high energy density, rapid ion transport, and structural durability. Jianwei Wang’s investigations address these scientific challenges through advanced material synthesis, morphology regulation, composite engineering, and rare-earth-assisted stabilization strategies. His publications contribute to the broader field of sustainable battery technologies by integrating materials science with electrochemical engineering principles.[3]

Research Profile

  • Primary discipline: Chemical Engineering.
  • Research emphasis on aqueous zinc-ion battery technologies.
  • Development of nanostructured cathode materials.
  • Rare-earth functional materials for electrochemical stability.
  • Composite electrode design and multifunctional carbon materials.
  • Published 28 indexed scholarly documents with significant citation impact.

Research Contributions

The research portfolio includes investigations into charge reconstruction mechanisms, nanomaterial activation, morphology modification, multifunctional carbon composites, and rare-earth pillar engineering. These studies collectively improve electrochemical reversibility, cycling stability, conductivity, and ion diffusion while advancing practical battery applications.[4]

Publications

  • Charge reconstruction via yttrium/polyaniline co-intercalation in yolk-shell cathode enables ultrafast and stable aqueous zinc-ion storage. Journal of Rare Earths (2026). DOI: 10.1016/j.jre.2026.01.022
  • A facile morphologic modification strategy enabling robust resistive switching and electrochemical behavior of MnO2. Chemical Engineering Journal (2025). DOI: 10.1016/j.cej.2025.161672
  • Dual modulation of homogeneous nanomaterialization and electrochemical activation enhancing zinc ion storage. Science China Chemistry (2025). DOI: 10.1007/s11426-024-2166-7
  • Pitch-derived multifunctional carbon and bimetallic sulfide composite electrodes for aqueous energy storage. Journal of Alloys and Compounds (2025). DOI: 10.1016/j.jallcom.2024.177957
  • Rare earth pillars for stable layered birnessite cathodes propelling aqueous zinc-ion batteries with ultra-long cyclability. Inorganic Chemistry Frontiers (2025). DOI: 10.1039/D4QI02654C

Research Impact

According to the supplied scholarly metrics, Jianwei Wang has authored 28 Scopus-indexed publications that have accumulated more than 1,300 citations, resulting in an h-index of 18. These indicators reflect consistent scholarly influence within electrochemical energy storage, materials engineering, and chemical engineering research communities.[1]

Award Suitability

The Innovative Research Award recognizes originality, scientific rigor, measurable scholarly impact, and sustained research excellence. Jianwei Wang’s publication record, citation profile, and contributions to advanced battery technologies demonstrate alignment with these evaluation principles through high-quality peer-reviewed research, innovation in material design, and advancement of electrochemical engineering knowledge.[5]

Conclusion

Jianwei Wang has established an active research profile in Chemical Engineering through significant contributions to aqueous zinc-ion battery technology, nanostructured electrode materials, and rare-earth-assisted electrochemical systems. His scholarly productivity, research quality, and measurable scientific influence support recognition within international academic award programs focused on innovation and research excellence.

References

  1. Elsevier. (n.d.). Scopus author details: Jianwei Wang, Author ID 57196393567. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57196393567
  2. Wang, J. et al. (2026). Charge reconstruction via yttrium/polyaniline co-intercalation in yolk-shell cathode enables ultrafast and stable aqueous zinc-ion storage. Journal of Rare Earths.
    https://doi.org/10.1016/j.jre.2026.01.022
  3. Wang, J. et al. (2025). A facile morphologic modification strategy enabling robust resistive switching and electrochemical behavior of MnO2. Chemical Engineering Journal.
    https://doi.org/10.1016/j.cej.2025.161672
  4. Wang, J. et al. (2025). Dual modulation of homogeneous nanomaterialization and electrochemical activation enhancing zinc ion storage. Science China Chemistry.
    https://doi.org/10.1007/s11426-024-2166-7