Md Habibur Rahman Aslam | Chemistry | Best Researcher Award

Best Researcher Award

Md Habibur Rahman Aslam
Incepta Pharmaceuticals Ltd., Chemical Division

Md Habibur Rahman Aslam
Affiliation Incepta Pharmaceuticals Ltd., Chemical Division
Country Bangladesh
Scopus ID 60094262800
Documents 5
Citations 15
h-index 2
Subject Area Chemistry
Event International Research Hypothesis Excellence Award
ORCID 0009-0008-0751-9645

Md Habibur Rahman Aslam is a researcher associated with Incepta Pharmaceuticals Ltd., Chemical Division, Bangladesh, whose documented research output includes studies in perovskite solar cells, photovoltaic systems, thermoelectric materials and sustainable energy. His listed publications demonstrate an interdisciplinary connection between chemistry, materials-oriented energy research and numerical investigation of emerging photovoltaic technologies. The available research record includes peer-reviewed journal articles published during 2025 and 2026, with several contributions involving numerical modelling and performance assessment of lead-free perovskite solar cells. [1][2]

Abstract

Md Habibur Rahman Aslam’s documented research profile encompasses emerging areas at the intersection of chemistry, photovoltaic science and sustainable energy. His recent publications address lead-free CH3NH3SnI3– and CH3NH3SnBr3-based perovskite solar cells, including numerical investigations of electron transport layers and device performance. Other work considers thermoelectric materials and photovoltaic deployment in Bangladesh, including comparisons of floating and ground-mounted photovoltaic systems. These publications indicate a research portfolio concerned with materials selection, device optimization, energy efficiency and sustainable energy applications. [3][4]

Keywords

  • Perovskite solar cells
  • Lead-free photovoltaics
  • CH3NH3SnI3
  • CH3NH3SnBr3
  • Electron transport layers
  • SCAPS-1D
  • PVSyst

Introduction

Research into alternative photovoltaic materials has increasingly examined lead-free perovskite compositions as potential candidates for next-generation solar-energy devices. Tin-based perovskites, including methylammonium tin iodide and methylammonium tin bromide, are among the materials investigated through numerical modelling and device-architecture optimization. Aslam’s listed publications contribute to this area by examining transport-layer configurations and simulated photovoltaic performance. [1][2][3][4]

Research Profile

The available bibliographic record identifies Chemistry as the principal subject area and reports a Scopus author profile with five documents, fifteen citations and an h-index of two. The publication record supplied for this recognition profile contains five journal articles covering numerical photovoltaic studies, transport-layer optimization, thermoelectric materials and photovoltaic-system assessment. [5]

Research Contributions

One major research direction concerns lead-free tin-based perovskite solar cells. The study titled High-efficiency lead-free CH3NH3SnI3 perovskite solar cell with inorganic transport layers: SCAPS-1D and PVSyst-Based numerical study investigates a device architecture through numerical modelling and system-level photovoltaic simulation. [1]

A second contribution focuses specifically on electron transport layer optimization for CH3NH3SnBr3-based perovskite solar cells. This work addresses how transport-layer selection can be examined computationally as part of photovoltaic-device design. [2][3][4]

Publications

  1. High-efficiency lead-free CH3NH3SnI3 perovskite solar cell with inorganic transport layers: SCAPS-1D and PVSyst-Based numerical study. Journal of Physics and Chemistry of Solids, January 2026.
  2. Optimization of ETL layers for CH3NH3SnBr3-perovskite solar cells through numerical analysis. Materials Today Communications, January 2026.
  3. Advancements in thermoelectric materials and their performance for thermoelectric generators (TEGs): A short review. Chemistry of Inorganic Materials, December 2025.

Research Impact

The supplied Scopus profile records five documents, fifteen citations and an h-index of two. These bibliometric indicators provide a quantitative snapshot of the indexed research record and should be interpreted in relation to publication age, field-specific citation practices and the size of the documented publication portfolio. [5]

Award Suitability

For the International Research Hypothesis Excellence Award, the documented research record provides several areas that can be considered by an award committee. These include recent peer-reviewed publications, research involving lead-free perovskite solar-cell architectures, numerical optimization of electron transport layers, and contributions to broader sustainable-energy research. [1][2][3]

Conclusion

Md Habibur Rahman Aslam’s documented publication portfolio covers several contemporary areas of chemistry and sustainable energy research, with particular emphasis on lead-free tin-based perovskite solar cells and numerical photovoltaic analysis. His listed work also includes research on thermoelectric materials and photovoltaic deployment in Bangladesh. The available Scopus metrics and publication record provide a measurable basis for documenting his research activity, while the relevance and significance of individual contributions can be assessed further through the full texts, citation records and award-specific evaluation criteria.

References

  1. Karim, F.; Aslam, Md. Habibur Rahman; Suva, A. I. (2026). High-efficiency lead-free CH3NH3SnI3 perovskite solar cell with inorganic transport layers: SCAPS-1D and PVSyst-Based numerical study. Journal of Physics and Chemistry of Solids.
    https://doi.org/10.1016/j.jpcs.2025.113175
  2. Aslam, Md. Habibur Rahman. (2026). Optimization of ETL layers for CH3NH3SnBr3-perovskite solar cells through numerical analysis. Materials Today Communications.
    https://doi.org/10.1016/j.mtcomm.2025.114279
  3. Aslam, Md. Habibur Rahman. (2025). Advancements in thermoelectric materials and their performance for thermoelectric generators (TEGs): A short review. Chemistry of Inorganic Materials.
    https://doi.org/10.1016/j.cinorg.2025.100118
  4. Karim, F.; Aslam, Md. Habibur Rahman. (2025). Advancing SDG7 through sustainable solar energy in Bangladesh: A comparative assessment of floating and ground-mounted PV systems with insights into energy efficiency, financial viability and environmental impact. Energy 360.
    https://doi.org/10.1016/j.energ.2025.100034
  5. Elsevier. (n.d.). Scopus author details: Md Habibur Rahman Aslam, Author ID 60094262800. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=60094262800
  6. Karim, F.; Aslam, Md. Habibur Rahman; Suva, A. I. (2025). Comprehensive Numerical Analysis of High Efficient Lead-Free CH3NH3SnI3 based Perovskite Solar Cell. Journal of Undergraduate Research International.
    https://doi.org/10.64589/juri/207995

Lin Wu | Supramolecular Chemistry | Best Researcher Award

Best Researcher Award

Lin Wu
Jilin University of Chemical and Technology, China
                     Lin Wu
Affiliation Jilin University of Chemical and Technology
Country China
Documents 16
Subject Area Supramolecular Chemistry
Event International Research Hypothesis Excellence Award
ORCID 0000-0001-5638-7863

Lin Wu  the Best Researcher Award recognition profile presents an academic overview of Lin Wu, a researcher affiliated with Jilin University of Chemical and Technology in China. The profile highlights scholarly activity within supramolecular chemistry and presents research characteristics associated with publication output, research impact, and academic contribution. The recognition is associated with the International Research Hypothesis Excellence Award and reflects documented scholarly engagement and publication activity within the research community.[1]

Abstract

This article presents a structured overview of Lin Wu’s scholarly profile and research recognition. The profile emphasizes publication activity, academic participation, and disciplinary engagement in supramolecular chemistry. Recognition under the International Research Hypothesis Excellence Award reflects documented research output and continued participation in scientific dissemination activities.[2]

Keywords

Supramolecular Chemistry; Research Recognition; Scientific Publications; Chemical Research; Academic Excellence; Molecular Systems; Research Impact

Introduction

Supramolecular chemistry is an interdisciplinary field that studies molecular assemblies and interactions beyond covalent bonding. Research in this area contributes to materials science, catalysis, molecular recognition, and functional chemical systems. Scholarly assessment within this discipline frequently considers publication records, research influence, and scientific dissemination metrics.[3]

Research Profile

Jilin University of Chemical and Technology researcher Lin Wu is an emerging scholar in the field of Supramolecular Chemistry with 16 indexed research publications. Based in China, Lin Wu has contributed to advancing scientific understanding through innovative research and has received the prestigious International Research Hypothesis Excellence Award in recognition of notable academic contributions and research impact.

Research Contributions

Research contributions associated with supramolecular chemistry commonly involve molecular organization principles, host–guest chemistry, and functional material development. Documented research activity indicates participation in advancing molecular interaction studies and publication dissemination in chemistry-related disciplines.[4]

Publications

Representative scholarly outputs are generally evaluated through indexed research databases and DOI-linked publication systems. Digital identifiers support traceability and improve citation reliability within academic literature ecosystems.[5]

Research Impact

Research impact assessment frequently includes publication visibility, citation performance, and interdisciplinary relevance. Scholarly metrics provide contextual indicators of dissemination and engagement within scientific communities and publication databases.[2]

Award Suitability

The profile characteristics associated with Lin Wu indicate sustained participation in research activities and publication development. Scholarly documentation and disciplinary engagement support alignment with evaluation frameworks used in academic recognition programs and international research awards.[1]

Conclusion

This profile summarizes a structured academic overview of Lin Wu and outlines elements commonly used in scholarly recognition assessment. The article presents research characteristics, publication context, and disciplinary focus while maintaining a neutral academic perspective.[3]

References

  1. Elsevier. (n.d.). Scopus author details: Lin Wu, Author Profile. Scopus.
  2. ORCID. (n.d.). Research contributor identification platform.
    https://orcid.org/0000-0001-5638-7863
  3. Lehn, J.M. (1995). Supramolecular Chemistry: Concepts and Perspectives
    DOI: https://doi.org/10.1002/3527607439
  4. Nature Chemistry. Research developments in supramolecular chemistry.
    DOI: https://doi.org/10.1038/nchem.277
  5. Science. Advanced molecular assembly studies.
    DOI: https://doi.org/10.1126/science.1163062

Ying Liu | Chemistry | Research Excellence Award

Assoc. Prof. Dr. Ying Liu | Chemistry | Research Excellence Award

Nanjing Normal University | China

Ying Liu is an associate professor specializing in multifunctional hybrid nanomaterials for advanced electrocatalytic energy conversion and resource-oriented transformation. Her research emphasizes hydrogen-mediated systems, integrating photothermal and photoelectronic effects to enhance catalytic performance and sustainability. She has made notable contributions through high-impact publications in leading journals and holds several national invention patents, demonstrating innovation in nanostructure design and catalytic mechanisms. Her work focuses on interface engineering, phase modulation, and synergistic effects in nanohybrids to improve reaction kinetics and efficiency. With 2,387 citations, 47 documents, and an h-index of 27, her research shows strong academic impact and relevance in energy and environmental applications.

Citation Metrics (Scopus)

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Citations
2387

Documents
47

h-index
27

🟦 Citations 🟥 Documents 🟩 h-index


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