Ebrahim Karimzade – Groundwater contamination – Best Researcher Award

Ebrahim Karimzade - Groundwater contamination - Best Researcher Award

Isfahan University of Technology - Iran

AUTHOR PROFILE

Google Scholar
Research Gate

EARLY ACADEMIC PURSUITS

Ebrahim Karimzade embarked on his academic journey with a focus on Civil Engineering, particularly in the area of Groundwater Contamination. His research interests have led him to explore topics such as flow modeling, coupled processes in rocks, and the effects of underground excavations on groundwater levels and quality.

PROFESSIONAL ENDEAVORS

Mr. Karimzade's professional endeavors have centered around research and academic pursuits in the field of Civil Engineering, with a specialization in Ground Engineering. He has collaborated with renowned researchers and institutions, including Isfahan University of Technology, on projects related to groundwater flow modeling and the evaluation of hydraulic properties in fractured rocks.

CONTRIBUTIONS AND RESEARCH FOCUS

Mr. Karimzade's contributions to the field of Civil Engineering, particularly in Groundwater Contamination, have been significant. His research focuses on developing predictive models for water inflow into underground excavations, evaluating flow paths in fractured rocks, and assessing the environmental impacts of underground constructions on groundwater levels. These endeavors have advanced understanding and mitigation strategies for groundwater contamination in civil engineering practices.

IMPACT AND INFLUENCE

Mr. Karimzade's research articles have been cited by peers in the academic community, indicating the relevance and impact of his work in Groundwater Contamination. His collaborations with esteemed co-authors and publications in reputable journals underscore the influence of his contributions in advancing knowledge in this area.

ACADEMIC CITES

Mr. Karimzade's research articles have garnered citations, demonstrating their impact and relevance in the field of Civil Engineering, particularly in Groundwater Contamination. His h-index of 3 and i10-index of 2 reflect the influence of his research contributions.

LEGACY AND FUTURE CONTRIBUTIONS

Mr. Karimzade's legacy in Civil Engineering, with a focus on Groundwater Contamination, will be characterized by his dedication to advancing understanding and developing solutions for mitigating environmental impacts. His future contributions are expected to further enhance knowledge and practices in managing groundwater contamination in civil engineering projects.

NOTABLE PUBLICATION

Effects of fracture intersection on the hydraulic properties of 3D crossed rough-walled fractures.  2023 (3)

Prof. Nonhlangabezo Mabuba – Photocatalytic Materials – Excellence in Research

Prof. Nonhlangabezo Mabuba - Photocatalytic Materials - Excellence in Research

University of Johannesburg - South Africa

EARLY ACADEMIC PURSUITS

Prof. Nonhlangabezo (Bezo) Mabuba began her academic journey by obtaining a Master of Science degree in Water Science from Duisburg-Essen Universität, Germany, in 2007, followed by a Ph.D. in Natural Sciences from the same institution in collaboration with ThyssenKrupp Steel AG, Hamborn, Germany, in 2010. These early academic pursuits laid the foundation for her future contributions to the field of Analytical Chemistry, Material and Processing Science.

PROFESSIONAL ENDEAVORS

Prof. Mabuba's professional journey has been characterized by various roles in academia, research, and leadership. She currently serves as an Associate Professor in the Department of Chemical Sciences at the University of Johannesburg (UJ), where she also holds the position of Acting Deputy Dean in the Faculty of Science. Over the years, she has held key positions such as Senior Lecturer, Deputy Director for the Centre of Nanomaterial Science Research, and Deputy Head of the Department of Chemical Sciences for teaching and learning at UJ.

CONTRIBUTIONS AND RESEARCH FOCUS

Prof. Mabuba's research focuses on the development of Photocatalytic Materials for water quality monitoring and treatment. She supervises students in exploring innovative applications of nanomaterials in (bio)sensors, (bio)adsorbents, and piezocatalytic materials. Her research is dedicated to advancing methods for efficient and sustainable wastewater quality monitoring and treatment, aligning with global efforts towards environmental sustainability.

IMPACT AND INFLUENCE

Prof. Mabuba's international visibility in the scientific community is evidenced by her high H-index on Google Scholar and Scopus. Her research outputs have contributed significantly to the field of Analytical Chemistry and Nanomaterial Science, with implications for water treatment technologies and environmental conservation efforts.

ACADEMIC CITATIONS

Prof. Mabuba's research findings have been cited extensively, reflecting their impact and relevance in the scientific community. Her work has garnered attention from peers, researchers, and professionals in the field, further solidifying her reputation as a leading expert in Photocatalytic Materials and water treatment.

LEGACY AND FUTURE CONTRIBUTIONS

Prof. Mabuba's legacy lies in her continued dedication to research excellence, mentorship, and community development. Through her leadership roles, collaborative efforts, and academic contributions, she aims to inspire future generations of researchers and make lasting contributions to the field of Photocatalytic Materials and environmental science.

PHOTOCATALYTIC MATERIALS

Prof. Mabuba's research expertise and focus revolve around Photocatalytic Materials, which play a crucial role in water quality monitoring and treatment. By leveraging nanomaterials and innovative approaches, she aims to develop efficient and sustainable methods for addressing water pollution and ensuring access to clean water resources. Through her research, Prof. Mabuba contributes to advancements in environmental science and sustainable development, with implications for global health and well-being.

NOTABLE PUBLICATION

Design of New Schiff-Base Copper(II) Complexes: Synthesis, Crystal Structures, DFT Study, and Binding Potency toward Cytochrome P450 3A4.  2021 (78)

Coupling cathodic electro-fenton with anodic photo-electrochemical oxidation: A feasibility study on the mineralization of paracetamol.  2020 (68)