Best Researcher Award

Jinyan Cao
Kunming University of Science and Technology, China

Jinyan Cao
Affiliation Kunming University of Science and Technology
Country China
Scopus ID 57189333089
Documents 12
Citations 1,669
h-index 11
Subject Area Environmental Science
Event International Research Hypothesis Excellence Award
ORCID 0000-0001-9440-8135

Jinyan Cao is a researcher affiliated with Kunming University of Science and Technology in China whose documented research contributions are situated within environmental science and environmental engineering. The publication record supplied for this profile includes studies of catalytic materials, photocatalytic degradation of pharmaceutical and antibiotic contaminants, sulfur dioxide absorption, and catalytic removal of nitrogen oxides. [1]

Abstract

This article presents an academic recognition profile of Jinyan Cao in connection with the Best Researcher Award associated with the International Research Hypothesis Excellence Award. The supplied research record demonstrates activity in environmental science, with particular emphasis on heterogeneous catalysis, photocatalytic environmental remediation, pollutant degradation, and flue-gas treatment. The publication set includes investigations into yttrium-decorated Cu/SAPO-34 for nitric oxide removal, phosphorus-doped BiOCl for tetracycline degradation, WC/BiOCl composite photocatalysts for sulfamethoxazole degradation, morpholine cyclic amines for sulfur dioxide absorption, and manganese-doped BiOCl for metronidazole degradation. [2] [3] [4]

Keywords

Jinyan Cao; Environmental Science; Environmental Engineering; Photocatalysis; Heterogeneous Catalysis; Pollutant Degradation; Nitrogen Oxide Removal; Sulfur Dioxide Absorption; Antibiotic Degradation; BiOCl Photocatalysts; Cu/SAPO-34; Chemical Engineering; Environmental Remediation; Research Impact; Best Researcher Award.

Introduction

Environmental pollution control requires approaches capable of treating chemically diverse contaminants while maintaining adequate activity, stability, selectivity, and practical feasibility. Research in environmental catalysis and photocatalysis therefore explores material composition, surface properties, charge-transfer mechanisms, reaction pathways, and operating conditions that can improve pollutant transformation. The publication record associated with Jinyan Cao reflects this broad research landscape through studies involving catalytic removal of nitrogen oxides, photocatalytic degradation of antibiotics and pharmaceuticals, and absorption of sulfur dioxide from flue gas. [2] [3] [4]

Research Profile

The supplied profile identifies Jinyan Cao with Kunming University of Science and Technology, China, and classifies the principal subject area as Environmental Science. The listed Scopus author identifier is 57189333089. The supplied indexed record contains 12 documents, 1,669 citations, and an h-index of 11. [1]

Research Contributions

The documented contributions can be grouped around the design, modification, characterization, and application of catalytic materials for environmental treatment. In the study of Cu/SAPO-34, yttrium decoration was investigated in relation to hydrothermal stability and NO removal at both low and high temperatures. This work addresses an important practical consideration for catalyst performance because environmental catalysts may encounter changing operating temperatures and hydrothermal conditions. [2]

Publications

The following publications are included in the supplied research record. DOI identifiers are provided where available and link directly to the corresponding DOI resolver.

1. Boosting low-temperature and high-temperature hydrothermal stability of Cu/SAPO-34 for NO removal via yttrium decoration.
Chemical Engineering Journal, 2023-01.

2. P-doped BiOCl for visible light photodegradation of tetracycline: An insight from experiment and calculation.
Chemical Engineering Journal, 2022-05

3. WC/BiOCl binary composite photocatalyst for accelerating interfacial charge separation and sulfamethoxazole degradation.
Applied Surface Science, 2021-12.

Research Impact

The supplied Scopus information reports 1,669 citations and an h-index of 11 for the researcher identifier 57189333089. Such indicators can be useful for describing the visibility and citation activity of a research record, although citation counts vary over time and should not be treated as a standalone measure of scientific quality. [1][5] [6]

The documented impact profile can therefore be considered across several dimensions:

  • Scholarly visibility: The supplied citation and h-index information indicates measurable citation activity in indexed literature.
  • Environmental relevance: The publications address pollutants and treatment challenges of direct environmental significance.
  • Materials innovation: Several studies investigate doped, decorated, or composite catalytic materials.

Award Suitability

For the purposes of the International Research Hypothesis Excellence Award, the supplied record presents several characteristics that may be considered when evaluating suitability for a Best Researcher Award. These include a documented body of peer-reviewed research, publication in established scientific journals, an environmental research focus, measurable citation activity, and contributions addressing multiple pollutant-treatment challenges. [1]

Potential evaluation dimensions include:

  1. Research productivity: consideration of the documented publication record and continuity of research activity.
  2. Scientific relevance: assessment of how the research addresses significant environmental and engineering problems.

Conclusion

Jinyan Cao’s supplied academic record reflects research activity in environmental science focused on catalytic and photocatalytic approaches to pollution control. The documented publications address NO removal, SO2 absorption, and degradation of pharmaceutical and antibiotic contaminants through investigations of catalyst composition, photocatalytic charge separation, degradation pathways, and environmental reaction mechanisms. [4] [5] [6]

References

  1. Elsevier. (n.d.). Scopus author details: Jinyan Cao, Author ID 57189333089. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57189333089
  2. Gao, L., Gao, W., Wang, H., Xu, S., Tian, X., Cao, J., Chen, J., Zhang, Q., Ning, P., & Hao, J. (2023). Boosting low-temperature and high-temperature hydrothermal stability of Cu/SAPO-34 for NO removal via yttrium decoration. Chemical Engineering Journal.
    DOI: https://doi.org/10.1016/j.cej.2022.140520
  3. Cao, J., Cen, W., Jing, Y., Du, Z., Chu, W., & Li, J. (2022). P-doped BiOCl for visible light photodegradation of tetracycline: An insight from experiment and calculation. Chemical Engineering Journal.
    DOI: https://doi.org/10.1016/j.cej.2022.134683
  4. Cao, J., Jing, Y., Du, Z., Chu, W., Li, J., & Cen, W. (2021). WC/BiOCl binary composite photocatalyst for accelerating interfacial charge separation and sulfamethoxazole degradation. Applied Surface Science.
    DOI: https://doi.org/10.1016/j.apsusc.2021.151201
  5. Cheng, C., Li, J., Cao, J., Guo, J., & Cen, W. (2021). The absorption of SO2 by morpholine cyclic amines with sulfolane as the solvent for flue gas. Journal of Hazardous Materials.
    DOI: https://doi.org/10.1016/j.jhazmat.2020.124462
  6. Cao, J., Li, J., Chu, W., & Cen, W. (2020). Facile synthesis of Mn-doped BiOCl for metronidazole photodegradation: Optimization, degradation pathway, and mechanism. Chemical Engineering Journal.
    DOI: https://doi.org/10.1016/j.cej.2020.125813
Jinyan Cao | Environmental Science | Best Researcher Award

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