Meenakshi Gusain | Energy | Women Researcher Award

Women Researcher Award

Meenakshi Gusain
Affiliation Krishna Institute of Engineering & Technology
Country India
Scopus ID 37060822700
Documents 44
Citations 605
h-index 14
Subject Area Energy
Event International Research Chemistry Awards
ORCID 0000-0002-1180-8617

Meenakshi Gusain is a researcher affiliated with Krishna Institute of Engineering & Technology, India, whose scholarly profile is associated with the energy research domain. The researcher record supplied for this recognition profile reports documents, 605 citations, and an h-index of 14. These bibliometric indicators provide a quantitative overview of publication activity and citation visibility and should be interpreted in the context of disciplinary practices, publication age, collaboration patterns, and research scope. [1]

Abstract

The Women Researcher Award profile recognizes Meenakshi Gusain for scholarly activity associated with the energy research field. The supplied academic record identifies Krishna Institute of Engineering & Technology as the institutional affiliation and reports a Scopus author profile containing 44 documents, 605 citations, and an h-index of 14. [1]

Keywords

Meenakshi Gusain; Women Researcher Award; Energy Research; Energy Science; Sustainable Energy; Energy Technology; Research Innovation; Scholarly Impact; Scientific Publications; Bibliometrics; Renewable Energy; Clean Energy; Energy Storage; Energy Efficiency; Energy Innovation; Women in Science; Research Excellence; Scientific Innovation; Energy Research Excellence; International Women Researcher Award.[2]

Introduction

Meenakshi Gusain’s supplied researcher information places her scholarly activity within the energy subject area and associates her with Krishna Institute of Engineering & Technology in India. The reported Scopus indicators offer a structured basis for describing the publication and citation dimensions of her research profile. [1]

Research Profile

The researcher profile supplied for this article records  documents, citations, and an h-index of 14. The Scopus author identifier is, while the associated ORCID identifier. Because bibliometric databases can change as records are indexed, corrected, merged, or updated, the figures presented here should be regarded as a profile snapshot rather than permanent measurements.[4]

Research Contributions

The available information identifies energy as the principal subject area associated with the researcher profile. Within this field, scholarly contributions may be evaluated through the relevance of research questions, methodological rigor, publication quality, reproducibility, technological applicability, and contribution to the broader scientific literature.[3]

Publications

The supplied information establishes a Scopus-indexed publication record of documents but does not provide a verified publication-by-publication bibliography, article titles, journal names, publication years. Accordingly, no specific publication or DOI has been attributed to the researcher without supporting bibliographic information. The complete publication record should be consulted through the researcher’s Scopus author profile.[4]

Research Impact

The reported 605 citations and h-index of indicate measurable citation visibility within the indexed scholarly record. Citation-based indicators can help describe the extent to which published research has been referenced by subsequent scholarly literature, although they should be interpreted with consideration for field-specific citation practices, career duration, publication types, collaboration patterns, and database coverage.[2]

Award Suitability

For the Women Researcher Award associated with the International Research Chemistry Awards, the supplied profile provides several objective elements relevant to an academic recognition assessment: an identified institutional affiliation, a defined energy research subject area, a documented publication count, citation activity, an h-index, and persistent scholarly identifiers. [3]

Conclusion

Meenakshi Gusain’s academic recognition profile presents a researcher affiliated with Krishna Institute of Engineering & Technology and working within the energy research domain. These indicators provide a concise quantitative description of scholarly activity and can be complemented by qualitative evaluation of research quality, originality, relevance, and contribution.[4]

References

  1. Elsevier. (n.d.). Scopus author details: Meenakshi Gusain, Author ID 37060822700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=37060822700
  2. ORCID. (n.d.). ORCID record: Meenakshi Gusain, ORCID iD 0000-0002-1180-8617. ORCID.
    https://orcid.org/0000-0002-1180-8617
  3. International Research Chemistry Awards. (n.d.).
    https://researchchemistry.org
  4.  Kaur, T., Gusain, M., Sheikh, I., Khan, S. S., Dutta, A., Kaur, S., Kour, H., Bajaj, P., & Alaneme, G. U. (2026). Synergizing ethnobotany and artificial intelligence: Exploring therapeutic frontier of Himalayan medicinal plants. Environmental Sciences Europe, 38, Article 114.
    https://doi.org/10.1186/s12302-026-01395-8

Dr. Wenjie Yan | Triboelectric Nanogenerator | Best Researcher Award

Dr. Wenjie Yan | Triboelectric Nanogenerator | Best Researcher Award

Doctorate at College of Mathematics & Physics, Beijing University of Chemical Technology, China

Professional Profiles

Scopus

Orcid

🎓 Academic & Professional Background

Yan Wenjie, a lecturer at the College of Mathematics & Physics, Beijing University of Chemical Technology, holds a master’s degree from Capital Normal University (2016) and a doctorate from Beijing Institute of Technology (2020). He completed his post-doctoral research at the Beijing Institute of Nanoenergy and Nanosystems, CAS, in 2022. His research focuses on triboelectric nanogenerators, sensors, and 2D micro-devices, where he received the China Postdoctoral Fund and led an enterprise-commissioned project. With 17 SCI papers (500+ citations), including in Nature Communications, Advanced Materials, and Advanced Energy Materials, he holds 2 patents and teaches 2 courses. His contributions to triboelectric nanogenerators and strong academic collaborations have earned him significant recognition.

🔬 Areas of Research

Triboelectric Nanogenerator (TENG): Wenjie Yan made groundbreaking discoveries, such as the contact enhancement phenomenon, which increases output energy by prolonging contact time. He also invented a flexible film discharge switch, enhancing energy conversion efficiency and used aerodynamics to improve device robustness. Additionally, his work on the asymmetric structure capacitor effect broke traditional surface charge density limitations.

Sensor Research: Yan achieved remarkable advancements in strain sensors, boasting an ultra-high gauge factor, and gas sensors with ultra-high sensitivity using optical effects, demonstrating his expertise in sensor development.

Surface-Enhanced Raman Scattering (SERS): In the SERS field, Yan discovered the secondary photoreaction and, combining it with microfluidics, developed a highly repeatable single molecule detection microfluidic chip. This breakthrough was widely recognized, with Advanced Science News covering the achievement.

Publications Top Noted 📝

Giant Gauge Factor of Van der Waals Material Based Strain Sensors

Authors: Yan, W., Fuh, H.-R., Lv, Y., Chang, C.-R., Wu, H.-C.

Journal: Nature Communications

Year: 2021

Enhanced NO2 Sensitivity in Schottky-Contacted n-Type SnS2 Gas Sensors

Authors: Yan, W., Lv, C., Zhang, D., Chang, C.-R., Wu, H.-C.

Journal: ACS Applied Materials and Interfaces

Year: 2020

Surface Enhanced Raman Scattering on Ion-Beam-Deposited TiNx/Si Substrates

Authors: Zhao, S., Zhao, Y., Ran, Y., Zhang, D., Wang, Z.

Journal: Nuclear Instruments and Methods in Physics Research, Section B: Beam Interactions with Materials and Atoms

Year: 2020

Electrical Contact Barriers Between a Three-Dimensional Metal and Layered SnS2

Authors: Lv, C., Yan, W., Shieh, T.-H., Hung, K.-M., Wu, H.-C.

Journal: ACS Applied Materials and Interfaces

Year: 2020

Sub-Millimeter Size High Mobility Single Crystal MoSe2 Monolayers Synthesized by NaCl-Assisted Chemical Vapor Deposition

Authors: Li, J., Yan, W., Lv, Y., Arora, S.K., Wu, H.-C.

Journal: RSC Advances

Year: 2020