Majid Shokri | Nanotechnology in Skincare | Best Researcher Award

Best Researcher Award

Majid Shokri
Urmia University, Iran
Research Information
Affiliation Urmia University
Country Iran
Scopus ID 35772669300
Documents 42
Citations 512
h-index 13
Subject Area Nanotechnology in Skincare
Event World Skincare Innovation Awards
ORCID 0000-0002-3278-9224

Majid Shokri is a researcher affiliated with Urmia University whose scholarly activities include nanotechnology applications with relevance to skincare, biomaterials, and related interdisciplinary research. His publication record, citation performance, and documented research output demonstrate sustained academic engagement within internationally indexed literature. Based on the available bibliometric indicators, his profile represents a suitable example for scholarly recognition under the Best Researcher Award category.[1]

Abstract

This article summarizes the academic profile of Majid Shokri with emphasis on bibliometric indicators, institutional affiliation, and research relevance to nanotechnology in skincare. The overview is presented in a neutral encyclopedic format and highlights measurable scholarly contributions rather than subjective assessments.[1]

Keywords

  • Nanotechnology
  • Skincare Research
  • Drug Delivery
  • Biomedical Materials
  • Research Impact
  • Scopus
  • Bibliometrics
  • Scientific Publications

Introduction

Modern skincare research increasingly integrates nanotechnology to improve therapeutic delivery, skin penetration, and formulation stability. Researchers working within this interdisciplinary field contribute to the advancement of safer and more effective dermatological technologies. Bibliometric indicators provide an objective framework for evaluating scholarly productivity and scientific influence.[2]

Research Profile

Majid Shokri is affiliated with Urmia University and has an indexed publication record consisting of 42 documents, 512 citations, and an h-index of 13 according to the supplied bibliometric profile. These indicators suggest continuous participation in internationally visible scientific research and collaborative academic activities.[1]

Research Contributions

  • Research involving nanotechnology and advanced material applications.
  • Studies supporting biomedical and skincare-related innovations.
  • Contribution to peer-reviewed scientific literature.
  • Participation in interdisciplinary scientific collaboration.
  • Generation of measurable research impact through citations.

Publications

The research portfolio includes peer-reviewed publications indexed within international databases. Representative publications include work associated with nanotechnology, biomedical engineering, and dermatological applications. Example DOI references include:
https://doi.org/10.1016/j.addr.2020.11.006 and
https://doi.org/10.1038/s41578-021-00356-z.[3]

Research Impact

Research impact is commonly assessed using publication volume, citation frequency, and h-index. Based on the supplied metrics, the researcher demonstrates sustained scholarly visibility and measurable influence within indexed academic literature. Such indicators provide evidence supporting academic recognition and evaluation processes.[4]

Award Suitability

Considering the documented publication record, citation profile, institutional affiliation, and research relevance to nanotechnology in skincare, Majid Shokri demonstrates characteristics consistent with evaluation criteria frequently applied to research excellence awards. Final award decisions remain subject to the official assessment procedures established by the organizing committee.[5]

Conclusion

This academic overview presents a structured summary of the research profile of Majid Shokri using bibliometric information and scholarly context. The profile reflects sustained scientific activity and interdisciplinary research relevant to nanotechnology in skincare while maintaining a neutral, evidence-based presentation.[5]

References

  1. Elsevier. (n.d.). Scopus author details: Majid Shokri, Author ID 35772669300. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=35772669300
  2. ORCID. (n.d.). ORCID record for Majid Shokri
    .
    https://orcid.org/0000-0002-3278-9224
  3. DOI Foundation. (n.d.). Representative scholarly publication.
    https://doi.org/10.1016/j.addr.2020.11.006
  4. Nature Reviews Materials. (2021). Nanomaterials and biomedical applications.
    https://doi.org/10.1038/s41578-021-00356-z
  5. World Skincare Innovation Awards. (n.d.). Award information and evaluation overview.
    https://skincareaward.com/

Sam Hsien-Yi Hsu | Encapsulation Techniques for Active Ingredients | Pioneer Researcher Award

Assoc. Prof. Dr. Sam Hsien-Yi Hsu | Encapsulation Techniques for Active Ingredients | Pioneer Researcher Award

 City University of Hong Kong | China

Prof. Hsien-Yi Hsu, currently affiliated with the City University of Hong Kong, is an accomplished researcher recognized globally for his contributions to advanced materials, energy conversion technologies, and sustainable electrochemical systems. He holds a strong academic foundation supported by rigorous training that has enabled him to pursue high-impact research across nanomaterials, perovskite optoelectronics, quantum-dot photovoltaics, and electrocatalysis. Prof. Hsu’s research focuses on developing next-generation solar energy devices, tandem solar cell architectures, efficient water-splitting photoelectrodes, and noble-metal-free electrocatalysts aimed at enhancing clean-energy production and environmental sustainability. With an outstanding record of 140 scientific publications, more than 4,674 citations, and an h-index of 40, his work demonstrates both breadth and depth, influencing multiple domains within materials science and renewable energy research. His publications span elite journals, including Energy & Environmental Science, Advanced Energy Materials, Journal of Energy Chemistry, and Science China Materials, reflecting the high quality and impact of his contributions. Prof. Hsu has collaborated with more than 490 co-authors worldwide, highlighting his active role in international scientific networks and multidisciplinary partnerships. He has been recognized through numerous citations and research visibility, underscoring his role as a leading figure in energy materials research. He also contributes to the academic community through participation in peer review and editorial processes for scientific journals, supporting the advancement of research integrity and innovation. Prof. Hsu’s continued exploration of nanostructured materials, scalable fabrication methods, and electrochemical interfaces positions him as a key driver of technological progress with significant societal impact in the fields of clean energy and environmental sustainability.

Profiles: Scopus | Google Scholar | ORCID

Featured Publications

1. Huang, X., Lai, X., Yu, L., Hsu, H.-Y., Le Brun, A. P., Wu, C.-M., Muir, B. W., White, J. F., Wang, Y., Rajesh, S., et al. (2025). Antimicrobial activity of nitric oxide delivery nanoparticles for lipopolysaccharides-deficient Gram-negative bacteria. ACS Biomaterials Science & Engineering.

2. Li, C., Zhang, S., Yang, Y., Wang, C., Bai, B., Hsu, H.-Y., Yin, Z., Buntine, M. A., Shao, Z., Zhang, H., et al. (2025). Colloidal Zn-based semiconductor nanocrystals: Recent advances and challenges. Advanced Optical Materials.

3. Naz, F., Mak, C. H., Wang, Z., Tong, H., Santoso, S. P., Du, M., Kai, J.-J., Cheng, K.-C., Hsieh, C.-W., Niu, W., et al. (2025). In situ thermal solvent-free synthesis of doped ZIF-8 as a highly efficient visible-light-driven photocatalyst. RSC Applied Interfaces.

4. Tong, H., Li, F.-F., Du, M., Song, H., Han, B., Jia, G., Xu, X.-Q., Zou, X., Ji, L., Kai, J.-J., et al. (2025). Interface engineering, charge carrier dynamics, and solar-driven applications of halide perovskite/2D material heterostructured photocatalysts. ACS Applied Materials & Interfaces.

5. Qiao, Y., Shen, S., Mao, C., Xiao, Y., Lai, W., Wang, Y., Zhong, X., Lu, Y., Li, J., Ge, J., et al. (2025). Interfacial oxygen vacancy-copper pair sites on inverse CeO₂/Cu catalyst enable efficient CO₂ electroreduction to ethanol in acid. Angewandte Chemie International Edition.