Ying Chen | Energy Transition | Best Researcher Award

Best Researcher Award

Ying Chen
Hubei University of Technology

Ying Chen
Affiliation Hubei University of Technology
Country China
Scopus ID 57846948300
Documents 8
Citations 148
h-index 6
Subject Area Energy Transition
Event Petroleum Engineering Awards

Ying Chen is a researcher affiliated with Hubei University of Technology in Wuhan, China, whose indexed research record includes eight documents and 148 citations, with a reported h-index of 6. The available Scopus profile identifies research activity relevant to advanced materials, sensing technologies and areas that can contribute to broader energy-transition research. [1] The profile also records the 2025 open-access article Facile synthesis of an α-Fe2O3–TiO2-MXene heterojunction for enhanced acetone gas sensors, published in RSC Advances, illustrating work at the intersection of functional materials and gas-sensing applications. [2]

Abstract

Ying Chen of Hubei University of Technology, China, has an indexed research profile comprising eight Scopus documents, 148 citations and an h-index of 6. [1] Available publication information indicates research involving functional nanomaterials and gas-sensing systems, including a study of an α-Fe2O3–TiO2-MXene heterojunction for acetone gas detection. [2] Such research is relevant to the development of advanced sensing platforms, materials engineering and technological approaches that can support monitoring and intelligent systems associated with evolving energy and industrial environments.

Keywords

  • Energy Transition
  • Functional Materials
  • Gas Sensors
  • Nanomaterials
  • MXene

Introduction

Energy transition increasingly depends on technologies capable of improving efficiency, monitoring industrial processes and supporting reliable environmental and operational measurements. Advanced functional materials and sensing devices represent one component of this technological landscape because they can provide selective and responsive detection of chemical species in diverse environments. Chen’s available publication record includes research on heterojunction-based gas sensors, providing a documented example of work in this broader technological context. [2]

Research Profile

The indexed profile of Ying Chen records eight documents, 148 citations and an h-index of 6. [1] The Scopus record identifies Hubei University of Technology as the researcher’s affiliation and China as the associated country. The available publication evidence points toward research in functional materials and sensing, with particular relevance to heterostructured materials and gas-detection technologies.

Research Contributions

One documented contribution is the development and investigation of an α-Fe2O3–TiO2-MXene heterojunction for enhanced acetone gas sensing. The work was published in RSC Advances in 2025 and is identified as an open-access article in the Scopus record. [2] Heterojunction architectures such as this combine distinct material properties to engineer functional interfaces, while MXene-based components are studied for their electrical and surface characteristics in sensing applications.

  • Investigation of advanced heterojunction materials for gas-sensing applications.
  • Application of functional nanomaterials to chemical detection.

Publications

The available Scopus information identifies the following publication among the researcher’s indexed documents:

  1. Yang, Zhenyuan; Chen, Ying. Facile synthesis of an α-Fe2O3–TiO2-MXene heterojunction for enhanced acetone gas sensors. RSC Advances, 2025. [2]

The supplied Scopus profile indicates eight documents in total, while the accessible publication result provided for this article contains one displayed record. Consequently, this page does not infer titles, authorship or DOI information for the remaining documents where those details have not been supplied. [1]

Research Impact

The reported 148 citations across eight Scopus-indexed documents indicate that Chen’s published work has received measurable scholarly attention. The h-index of 6 provides an additional bibliometric indicator of citation performance. [1] Bibliometric indicators should be interpreted alongside publication quality, research originality, methodological contribution and relevance to the relevant scientific field rather than as standalone measures of research quality.

Award Suitability

Based on the supplied research profile, Ying Chen demonstrates a documented record of scholarly publication, citation activity and research involving advanced functional materials and gas-sensing technologies. These areas can intersect with the technological needs of energy transition through improved monitoring, materials innovation and sensing capabilities. The reported Scopus metrics further provide a quantitative basis for considering the profile within an academic recognition process. [1]

Conclusion

Ying Chen is an Hubei University of Technology researcher with eight Scopus-indexed documents, 148 citations and an h-index of 6. [1] The available publication evidence demonstrates research involving α-Fe2O3–TiO2-MXene heterojunctions and acetone gas sensing, highlighting work in functional materials and sensing technology. [2] On the evidence supplied, the profile presents a reasonable scholarly basis for consideration for the Best Researcher Award, subject to verification against the complete research record and award criteria.

References

  1. Elsevier. (n.d.). Scopus author details: Ying Chen, Author ID 57846948300. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=57846948300
  2. Yang, Zhenyuan; Chen, Ying. (2025). Facile synthesis of an α-Fe2O3–TiO2-MXene heterojunction for enhanced acetone gas sensors. RSC Advances.
    https://pubs.rsc.org/en/journals/journalissues/ra
  3. Chen, Y., & Yang, Z. (2025). Facile synthesis of an α-Fe₂O₃-TiO₂-MXene heterojunction for enhanced acetone gas sensors. RSC Advances, 15(4), 3040–3046.

Tingting Ke | Geothermal Energy from Oil & Gas Reservoirs | Best Researcher Award

Dr. Tingting Ke | Geothermal Energy from Oil & Gas Reservoirs | Best Researcher Award

Engineer at Shaanxi Institute of Geological Survey, China

Tingting Ke is a geothermal energy specialist whose career blends rigorous academic training with practical engineering application. With a PhD focused on geothermal resource potential assessment, she has contributed significantly to China’s geothermal development, particularly in sedimentary basins and karst reservoirs. Her work spans thermal modeling, lithospheric heat flow analysis, and geothermal exploitation simulations. Currently an engineer at the Shaanxi Institute of Geological Survey, she is known for integrating spatial data techniques into geothermal evaluation. Through field studies and multi-national conference presentations, she promotes sustainable energy strategies and advances scientific understanding in geological thermal systems.

Profile

Scopus

Education

Her educational journey began with a Bachelor’s in Environmental Engineering, followed by a Master’s and then a PhD from Xi’an Jiaotong University. Her graduate studies focused intensively on geothermal resource exploitation and heat transfer modeling. During her doctorate (2017–2022), she led research on geothermal potential using spatial data integration. Her academic work laid the foundation for her application-based innovations, combining deep theoretical insight with geological survey practices. The rigorous training in numerical simulation, heat flow assessment, and environmental analysis equipped her with a multi-disciplinary edge in geothermal resource development across diverse geological environments in China.

Experience

Since 2022, Ke has served as an engineer at the Geothermal Resources and Geological Environment Survey Institute within the Shaanxi Institute of Geological Survey. Her responsibilities include conducting geothermal feasibility studies, modeling reservoir behavior, and evaluating lithospheric thermal structures. She has contributed to major national and provincial research programs, including heat flow mapping in the Erlian Basin and geothermal system analysis in the Guangdong-Hong Kong-Macao Bay Area. She also leads a youth project on karst reservoir development in the Guanzhong Basin. Her project leadership and collaborative field expertise underscore her growing influence in China’s renewable energy sector.

Research Interest

Ke’s research interests lie at the intersection of geothermal potential assessment, multi-doublet performance modeling, and lithospheric heat source analysis. She explores how geological structures influence thermal distribution and reservoir sustainability. Her fascination with karst systems and hot sedimentary aquifers drives her to develop advanced simulation tools for predicting extraction performance. She also emphasizes the use of integrated spatial data and economic analysis to evaluate feasibility. Her long-term goal is to create comprehensive geothermal evaluation systems that blend geological science, environmental engineering, and energy economics—especially within rapidly urbanizing zones like Xiong’an and Xi’an.

Awards

In recognition of her growing expertise and leadership, Ke was appointed Principal Investigator for a Youth General Project under the Shaanxi Provincial Department of Science and Technology in 2024. This honor underscores her capability to lead research on karst geothermal reservoirs. She has participated in multiple high-profile grants through the National Natural Science Foundation of China and regional geological exploration programs. Her presentations at global geothermal and environmental sustainability conferences, including the IUGG General Assembly and the ISCES forum, have earned widespread praise and solidified her presence as an emerging leader in geothermal science.

Publications

Among her noteworthy scientific contributions:

Ke, T.T., Xu, W., Yu, R.Y., Zhou, Y., Zhang, Y.G., 2025. Evaluation of geothermal resource potential based on spatial data integration models: case study of Xiong’an New Area, North China.

Ke, T.T., Huang, S.P., Xu, W., Tang, X.Y., Li, X.X., 2022. Evaluation of the multi-doublet performance in sandstone reservoirs using thermal-hydraulic modeling and economic analysis.

Ke, T.T., Huang, S.P., Xu, W., Li, X.X., 2021. Study on heat extraction performance of multiple-doublet system in Hot Sedimentary Aquifers: Case study from the Xianyang geothermal field, Northwest China.

Ke, T.T., Huang, S.P., Xu, W., Numerical simulation of geothermal well production and injection Development Model in Fengxi Area, Guanzhong Basin Quaternary Research

Xu, W., Li, Y., Zhou, L.M., Ke, T.T., et al., 2020. Lithospheric thermal regime under the Qinling Orogenic Belt and the Weihe Basin: A transect across the Yangtze and the North China cratons in central China.

Xu, W., Huang, S.P., Zhang, J., Zuo, Y.H., Zhou, Y.S., Ke, T.T., et al., 2021. Geothermal gradient and heat flow of the Erlian Basin and adjacent areas, Northern China: Geodynamic implication.

Xu, W., Tang, X.Y., Cheng, L.Y., Dong, Y., Zhang, Y.P., Ke, T.T. , et al., 2022. Heat Flow and Thermal Source of the Xi’an Depression, Weihe Basin, Central China. Frontiers in Earth Science

Conclusion

Tingting Ke exemplifies the dynamic fusion of academic rigor, field research, and strategic geothermal application. Her progression from student researcher to engineering lead has equipped her to tackle critical challenges in renewable energy. Her contributions to geothermal science—spanning simulation modeling, basin heat flow studies, and international knowledge exchange—position her as a transformative figure in China’s clean energy landscape. As an innovator grounded in data-driven methods and cross-disciplinary collaboration, she continues to push boundaries in geothermal system development and serves as a role model for emerging scientists in the field.