Runwei Mo | Energy | Innovative Research Award

Innovative Research Award

Runwei Mo
Affiliation East China University of Science and Technology
Country China
Scopus ID 55855944700
Documents 75
Citations 3,351
h-index 27
Subject Area Energy
Event International Material Scientist Awards

His research portfolio also includes work relevant to advanced materials and energy-related applications, demonstrating the connection between materials science and emerging energy technologies. Through continued scholarly publication and research activity, his work contributes to the broader development of knowledge in Energy research and supports consideration for recognition through the Innovative Research Award.[1]

Abstract

This academic recognition profile presents Runwei Mo, an Energy researcher affiliated with East China University of Science and Technology, China. The profile highlights the researcher’s documented scholarly record in Scopus, comprising documents, citations, and an h-index .These bibliometric indicators provide a quantitative overview of research productivity and citation influence. [1]

Keywords

Runwei Mo; Energy Research; Energy Materials; Sustainable Energy; Advanced Energy Technologies; Energy Storage; Energy Conversion; Nuclear Energy; Nuclear Waste Transmutation; Micronuclear Batteries; Carbon Nanotubes; Self-Healing Materials; Fiber Electrodes Electrochemical Energy; East China University of Science and Technology; Scopus; Research Impact; Scholarly Publications; Research Excellence; Innovative Research Award; International Material Scientist Awards; China.[2]

Introduction

Energy research encompasses scientific and technological investigations related to energy generation, conversion, storage, efficiency, sustainability, and associated materials and systems. Researchers working in this field contribute to the development of knowledge relevant to contemporary energy challenges and to the improvement of technologies supporting efficient and sustainable energy utilization. [1]

Research Profile

Runwei Mo’s stated subject area is Energy, with an institutional affiliation at East China University of Science and Technology in China. The supplied bibliometric information indicates an established publication record represented by indexed documents. The reported h-index of indicates that at least publications in the indexed record have each received at least citations, subject to the methodology and coverage of the underlying database.[4]

Research Contributions

Runwei Mo’s research profile reflects activity in Energy research, supported by a Scopus record of indexed documents, citations, and an h-index. These indicators demonstrate sustained scholarly publication, research visibility, and citation-based academic influence. His affiliation with East China University of Science and Technology further situates his work within an established academic research environment in China, supporting his recognition for contributions to the broader field of Energy.[3]

Publications

The supplied Scopus information records documents for Runwei Mo. Because the input data does not provide a verified publication list, individual article titles, journal names, publication years, or identifiers are not reproduced here. This approach avoids attributing publications to the researcher without corresponding source information.For a complete and current publication record, the Scopus Author Profile should be consulted directly.[4]

Research Impact

The reported bibliometric indicators provide evidence of research visibility within the Scopus database. A total of citations across documents corresponds to an average of approximately citations per indexed document, although averages should be interpreted cautiously because citation distributions are typically uneven across publications.The h-index of further indicates that a substantial subset of the indexed publication record has accumulated recurring citations.[2]

Award Suitability

Runwei Mo’s profile is presented for consideration for the Innovative Research Award associated with the International Material Scientist Awards. The stated Energy subject area, combined with the supplied Scopus indicators of documents, citations, and an h-index of , provides a documented basis for considering the researcher’s scholarly activity in an academic recognition context.[3]

Conclusion

Runwei Mo is an Energy researcher affiliated with East China University of Science and Technology, China. The supplied Scopus record reports documents, citations, and an h-index of indicating a substantial indexed publication and citation record. These indicators, together with the researcher’s field of Energy, provide relevant academic context for consideration for the Innovative Research Award at the International Material Scientist Awards.[4]

References

  1. Elsevier. (n.d.). Scopus author details: Runwei Mo, Author ID 55855944700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=55855944700
  2. Yao, Z., Zou, F., Peng, B., Liu, S., & Mo, R. (2026). Micronuclear batteries for nuclear waste transmutation and sustainable energy: A comprehensive review and future perspectives. Journal of Materials Chemistry A, 14, 7954–7978.
    https://doi.org/10.1039/D5TA09148A
  3. Wang, R., Wu, R., Fang, B., Liang, H., & Mo, R. (2025). Interface-engineered strategy on carbon nanotubes to chemical stabilize graphene as a self-healing fiber electrode for superior capacitive deionization. Energy & Environmental Materials.
    https://doi.org/10.1002/eem2.70141
  4. International Material Scientist Awards. (n.d.).
    https://materialscientists.com

Shaheer Akhtar | Energy | Sustainable Materials Recognition

Sustainable Materials Recognition

Shaheer Akhtar
Affiliation Jeonbuk National University
Country South Korea
Scopus ID 18933527100
Documents 318
Citations 10,665
h-index 58
Subject Area Energy
Event International Material Scientist Awards
ORCID 0000-0001-7698-2619

Shaheer Akhtar is a researcher affiliated with Jeonbuk National University in South Korea whose academic profile is associated with the energy research area. The recognition titled Sustainable Materials Recognition provides a structured context for presenting research activity related to sustainable materials, energy technologies, and related scientific applications. Bibliographic information supplied for the researcher records documents, citations, and an h-index of in the stated Scopus profile. These metrics are bibliographic indicators and should be interpreted in relation to the coverage, indexing practices, and update status of the underlying database. [1]

Abstract

This academic recognition profile presents the research record of Shaheer Akhtar, affiliated with Jeonbuk National University, South Korea, within the subject area of Energy. The profile emphasizes sustainable materials as a research-oriented theme connecting materials development, energy-related technologies, and scientific applications. The supplied bibliographic record identifies documents, citations, and an h-index of in Scopus.[1]

Keywords

Sustainable Materials, Energy Research, Materials Science, Sustainable Energy Technologies, Advanced Materials Research, Energy Conversion Materials, Energy Storage Materials, Renewable Energy Materials, Functional Materials, Sustainable Materials Development, Advanced Energy Materials, Materials Engineering, Energy Technology Research, Sustainable Materials Innovation, Materials Applications, Emerging Energy Technologies, Green Materials Research, Clean Energy Materials, Sustainable Energy Solutions, Energy.[2]

Introduction

The academic profile of Shaheer Akhtar is presented in this context through the supplied institutional affiliation, subject area, and bibliometric indicators. The recorded Scopus profile identifies Jeonbuk National University as the researcher’s affiliation and Energy as the subject area. Scopus author profiles are designed to associate indexed scholarly documents with individual researchers and provide bibliographic indicators for their publication records.[1]

Research Profile

The supplied research profile identifies Shaheer Akhtar with Jeonbuk National University in South Korea and associates the research activity with Energy. The Scopus Author ID is , while the reported record contains documents, 10,665 citations, and an h-index. These figures describe the bibliographic record provided for the profile and may change as databases are updated or as additional publications and citations are indexed.[2]

Research Contributions

The sustainable materials theme provides a framework for considering materials-based approaches to contemporary energy challenges. Such research can involve the design and characterization of functional materials, evaluation of performance under defined operating conditions, and investigation of relationships between material properties and energy-related applications. The precise contribution of individual publications should be assessed from the original articles, rather than inferred solely from bibliometric indicators.[3]

Publications

The supplied information identifies documents in the Scopus profile associated with author ID. Because individual publication titles, journals, publication years, co-authors, and identifiers were not included in the source data supplied for this page, specific article-level references are not asserted here. Publication details should be verified directly against the relevant bibliographic records before being used for formal citation or evaluation.[4]

Research Impact

Citation counts and h-index values are bibliometric measures that can assist in describing scholarly visibility, but they do not independently measure the quality, societal relevance, originality, or practical effectiveness of individual research contributions.In the context of sustainable materials and energy research, research impact may also be considered through factors such as reproducibility, technological application, interdisciplinary collaboration, contribution to scientific knowledge, and relevance to sustainable energy development.[2]

Award Suitability

The Sustainable Materials Recognition profile is presented in connection with the International Material Scientist Awards and the research area of Energy. The supplied academic information provides several elements commonly included in an academic recognition profile, including institutional affiliation, subject area, persistent researcher identification, publication count, citation count, and h-index.[3]

Conclusion

Shaheer Akhtar’s academic recognition profile identifies an Energy-focused research record associated with Jeonbuk National University, South Korea. The supplied bibliographic information records documents, citations, and an h-index. in Scopus, together with ORCID. The sustainable materials theme provides a suitable scholarly framework for presenting research at the intersection of materials development and energy-related applications, while detailed assessment should remain grounded in the underlying publications and documented evidence.[4]

References

  1. Elsevier. (n.d.). Scopus author details: Shaheer Akhtar, Author ID 18933527100. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=18933527100
  2. ORCID. (n.d.). ORCID record: Shaheer Akhtar, ORCID iD 0000-0001-7698-2619. ORCID.
    https://orcid.org/0000-0001-7698-2619
  3. International Material Scientist Awards. (n.d.).
    https://materialscientists.com
  4. Rahman, F., Phung, M. T., Cho, J. W., Kong, I., Lee, S. B., Akhtar, M. S., & Yang, O.-B. (2026). High-accuracy LSTM combined with multi-head attention for forecasting PV power generation in vertical bifacial panels. Journal of Atmospheric and Solar-Terrestrial Physics, 285, 106903. https://doi.org/10.1016/j.jastp.2026.106903

Hamideh Talebi | Energy Science | Best Researcher Award

Best Researcher Award

Hamideh Talebi  Shiraz University of Technology, Iran

 Hamideh Talebi
Affiliation Shiraz University of Technology
Country Iran
Scopus ID 55934043100
Documents 6
Citations 86
h-index 5
Subject Area Energy Science
Event International Material Scientist Awards
ORCID 0000-0003-1662-9375

Hamideh Talebi is a researcher affiliated with Shiraz University of Technology, Iran, whose academic work is situated within the field of Energy Science and related areas of advanced materials and optoelectronics. Her documented research focuses on nanophotonics, plasmonic structures, perovskite solar cells, optical absorption enhancement, and infrared optoelectronic devices. Her studies investigate the interaction of light with nanoscale materials and structures to improve the optical and functional properties of emerging energy technologies. Particular attention is given to ultrathin photovoltaic architectures, surface plasmon polaritons, waveguide modes, metallic and dielectric nanostructures, and hybrid materials. This research direction connects materials science with nanoscale optical engineering and supports the development of advanced photovoltaic and photodetection technologies.[1]

Abstract

This academic recognition profile presents the research activities of Hamideh Talebi of Shiraz University of Technology, Iran. Her documented research includes perovskite solar cells, plasmonic light management, nanophotonics, optical absorption enhancement, ultrathin photovoltaic structures, and infrared photodetection. Her publications demonstrate the application of nanoscale optical structures to photovoltaic and optoelectronic technologies. [1]

Keywords

Hamideh Talebi; Shiraz University of Technology; Energy Science; perovskite solar cells; plasmonics; nanophotonics; photovoltaic devices; optical absorption; surface plasmon polaritons; waveguide modes; infrared photodetectors; graphene; PbSe nanorods. [2]

Introduction

Talebi’s documented research addresses these topics through studies involving plasmonic nanoparticles, metallic structures, waveguide modes, and hybrid nanomaterials. Her work also includes infrared photodetection using graphene and PbSe nanorod structures. [1]

Research Profile

Hamideh Talebi’s research contributions focus on plasmonic structures, ultrathin perovskite solar cells, surface plasmon polaritons, waveguide modes, and nanostructured materials for enhanced optical absorption. Her work also includes graphene–PbSe nanorod photodetection and SiO2–Au structures, supporting advances in photovoltaic and infrared optoelectronic technologies. [4]

Publications

Hamideh Talebi’s publications focus on perovskite solar cells, plasmonics, nanophotonics, and infrared photodetection. Her research examines optical absorption enhancement using nanoparticles, surface plasmon polaritons, waveguide modes, graphene–PbSe nanorods, and advanced nanostructures for photovoltaic and optoelectronic applications. [2]

Research Impact

Hamideh Talebi’s research profile reports 86 citations and an h-index of 5. Her work contributes to Energy Science through studies of optical absorption, plasmonic materials, and ultrathin perovskite solar-cell structures, supporting research in advanced photovoltaic and optoelectronic technologies.[3]

Award Suitability

Hamideh Talebi’s research profile aligns with the Best Researcher Award under the International Material Scientist Awards, particularly through her work in advanced materials, nanophotonics, photovoltaic technologies, and optoelectronic applications. Final eligibility and selection remain subject to the award’s official criteria and assessment process.[4]

Conclusion

Hamideh Talebi’s research profile reflects work at the intersection of Energy Science, nanophotonics, plasmonics, photovoltaic devices, and infrared optoelectronics. Her publications address strategies for controlling light absorption and optical interactions in nanoscale structures. The supplied bibliometric information and publication record provide a documented basis for academic recognition within the stated award category.[5]

References

  1. Elsevier. (n.d.). Scopus author details: Hamideh Talebi, Author ID 55934043100. Scopus.
    https://www.scopus.com/pages/authors/55934043100
  2. ORCID. (n.d.). Hamideh Talebi.
    https://orcid.org/0000-0003-1662-9375
  3. Talebi, H.(2022). Design of ultrathin hole-transport-layer-free perovskite solar cell with near-infrared absorption enhancement using Ag NPs.Optics Communications, 520, 128553.
    https://doi.org/10.1016/j.optcom.2022.128553
  4. Talebi, H., & Emami, F. (2023). High performance ultra-thin perovskite solar cell by surface plasmon polaritons and waveguide modes. Optics & Laser Technology, 165, 109552.
    https://doi.org/10.1016/j.optlastec.2023.109552
  5. International Material Scientist Awards. (n.d.).
    https://materialscientists.com