Celestin Ngendabanga | Environmental Chemistry | Best Paper Award

 Best Paper Award

Celestin Ngendabanga, affiliated with the University of Rwanda, is recognized in this academic profile for the 2026 research article Empowering Chemistry Teachers with Improvised Materials: A Training Approach for Enhancing Students’ Outcomes, published in the Canadian Journal of Science, Mathematics and Technology Education. The study addresses chemistry teacher development, practical learning, and the use of locally available materials in resource-constrained educational settings. Available publication records identify Ngendabanga as an author of the article together with Jean Baptiste Nkurunziza and Leon Rugema Mugabo. [1]

Celestin Ngendabanga,
Affiliation University of Rwanda
Country Rwanda
Award Category Best Paper Award
Article Title Empowering Chemistry Teachers with Improvised Materials: A Training Approach for Enhancing Students’ Outcomes
Journal Canadian Journal of Science, Mathematics and Technology Education
Publication Year 2026
Scopus ID 59550134900
ORCID 0000-0002-1813-554X
Documents 3
Citations 4
h-index 2
Research Area Chemistry Education
References 34
Event International Chemical Scientist Awards
DOI 10.1007/s42330-026-00447-8

Celestin Ngendabanga is a chemistry education researcher associated with the University of
Rwanda and the African Center of Excellence for Innovative Teaching and Learning Mathematics and Science. His documented research activities include investigations of chemistry teaching practices, practical learning, improvised chemicals and materials, and teacher development in Rwandan educational contexts. His ORCID record lists the University of Rwanda among his professional and educational affiliations and records the 2026 article featured in this recognition profile. [2]

Abstract

The recognized 2026 study examines whether training chemistry teachers to use improvised materials can improve learning outcomes in lower secondary chemistry. The research responds to limited laboratory resources in Rwandan schools and considers locally accessible alternatives for practical instruction. The study adopted an action research approach involving eight chemistry teachers from eight schools. Teachers received training over five sessions conducted across consecutive weekends and subsequently implemented improvised-material activities for six months. Data were gathered through interviews, classroom observations, and document analysis. Reported outcomes included improvements in learner engagement, comprehension, motivation, and hands-on skills, alongside increased teacher confidence and creativity. [1]

Keywords

Chemistry education; improvised materials; chemistry teachers; teacher professional development; practical chemistry; science education; hands-on learning; learner outcomes; teacher training; laboratory resources; Rwanda; chemistry teaching; STEM education; educational innovation; resource-constrained schools.

Introduction

Practical activities are an important component of chemistry education because they provide opportunities for learners to connect theoretical concepts with observable phenomena and develop scientific process skills. In resource-constrained settings, however, shortages of laboratory chemicals, equipment, and other materials can restrict practical instruction. Research conducted in Rwanda has documented the use of locally available substances and improvised materials as alternatives to standard laboratory resources. Ngendabanga and colleagues have further examined teacher practices and the educational potential of improvised chemistry resources, placing teacher preparation at the center of sustainable implementation. [2]

Research Profile

Ngendabanga’s documented research profile is centered on chemistry education and science teaching in Rwanda. His work includes empirical studies of chemistry teachers, practical activities, improvised chemicals, teacher preparation, and learner engagement. A 2025 study examined teaching practices in two Rwandan districts and reported that shortages of laboratory resources contributed to reliance on theoretical instruction, while teachers sometimes used materials such as ash, lemon, and eggshells to support practical learning. His 2025 systematic review likewise examined evidence concerning improvised chemicals, motivation, performance, and practical learning. [3]

Scientific Background

Chemistry learning involves movement between macroscopic observations, submicroscopic explanations, and symbolic representations. Practical work can help learners relate these levels by providing direct experiences that can be interpreted using chemical concepts. Studies of chemistry education have also emphasized the role of practical activities in engagement and academic performance. In contexts where conventional laboratory resources are unavailable, improvised materials can provide an alternative pathway, provided that their selection, preparation, safety, and pedagogical purpose are carefully considered. The research area therefore intersects chemistry education, teacher professional development, practical science, resource accessibility, and context-responsive instructional design. [2]

Methodology

The featured study used an action research design to examine changes associated with teacher training and subsequent classroom implementation. Eight chemistry teachers from eight schools were purposefully selected for participation. The training consisted of five sessions, each lasting two days, conducted during five consecutive weekends. Following the training period, teachers implemented activities using improvised materials over six months. Researchers subsequently collected evidence through interviews, classroom observations, and document analysis. This design allowed the investigation to connect professional learning with classroom practice over an extended implementation period rather than evaluating training solely through immediate participant responses. [1]

Key Findings

The study reported that training teachers to use improvised resources was associated with improvements in several dimensions of students’ learning, including engagement, comprehension, motivation, and hands-on skills. Teachers also demonstrated increased confidence and creativity when conducting practical activities. These findings are consistent with the broader evidence synthesized by Ngendabanga, Nkurunziza, and Mugabo, which identified potential benefits of improvised chemicals for motivation, practical engagement, and academic performance. Earlier research on practical chemistry activities in Rwanda similarly reported positive relationships between hands-on activities, student engagement, experience, and academic performance. [1]

Research Contributions

The principal contribution of the study is its examination of teacher training as a mechanism for supporting the sustained classroom use of improvised chemistry materials. Rather than treating improvisation solely as a response to resource shortages, the research considers it within a professional-development framework. The work contributes empirical evidence from Rwanda concerning the relationship between teacher preparation, practical chemistry instruction, and learner outcomes. It also complements earlier research by the authors that identified resource limitations and recommended training teachers to use available materials effectively. The systematic review conducted by the same research group provides a broader evidence base for understanding the potential and limitations of improvised resources. [3]

Publications

The featured publication is:

  • Ngendabanga, C., Nkurunziza, J. B., & Mugabo, L. R. (2026). Empowering Chemistry Teachers with Improvised Materials: A Training Approach for Enhancing Students’ Outcomes. Canadian Journal of Science, Mathematics and Technology Education, 26(2).
  • Ngendabanga, C., Nkurunziza, J. B., & Mugabo, L. R. (2025). Innovative approaches in chemistry teaching: A systematic review on the use of improvised chemicals for student engagement and performance. Chemistry Education Research and Practice, 26, 566–577.
  • Ngendabanga, C., Nkurunziza, J. B., & Mugabo, L. R. (2025). The use of improvised chemicals and materials in teaching and learning chemistry in two selected districts of Rwanda. Cogent Education, 12(1).

Research Impact

The research has relevance for chemistry education in environments where conventional laboratory resources are limited. Its emphasis on teacher preparation suggests that access to locally available materials alone may not be sufficient; educators also require knowledge of how materials can be safely and pedagogically integrated into lessons. The study therefore contributes to discussions about continuous professional development, practical science teaching, and equitable access to laboratory experiences. Related publications by the research group extend this contribution through empirical investigation and systematic synthesis, while earlier work on hands-on chemistry activities provides additional evidence concerning engagement and academic performance. [2]

Award Suitability

The paper is suitable for consideration under a Best Paper Award category because it addresses a clearly defined educational challenge and evaluates a practical intervention linking teacher professional development with chemistry learning outcomes. Its methodological design incorporates training, classroom implementation, and multiple forms of qualitative evidence. The study also has a defined geographical and educational context, allowing its conclusions to be interpreted in relation to resource-constrained secondary chemistry education. Award consideration should nevertheless remain based on the complete scholarly record, including methodological rigor, originality, significance, ethical procedures, publication quality, and independent assessment of the evidence rather than bibliometric indicators alone. [1]

Conclusion

Celestin Ngendabanga’s 2026 publication examines teacher training as a pathway for strengthening the use of improvised materials in chemistry education. The reported findings connect professional development with improved learner engagement, comprehension, motivation, and practical skills, while also documenting increased teacher confidence and creativity. The work builds on a developing body of research concerning practical chemistry teaching and locally available resources in Rwanda. Its significance lies in examining how context-responsive teacher preparation can support practical science learning where conventional laboratory resources are constrained. [3]

References

  1. Ngendabanga, C., Nkurunziza, J. B., & Mugabo, L. R. (2026). Empowering Chemistry Teachers with Improvised Materials: A Training Approach for Enhancing Students’ Outcomes. Canadian Journal of Science, Mathematics and Technology Education, 26(2).https://doi.org/10.1007/s42330-026-00447-8
  2. ORCID. (2026). Ngendabanga Celestin — ORCID record. ORCID iD: 0000-0002-1813-554X.https://orcid.org/0000-0002-1813-554X
  3. Ngendabanga, C., Nkurunziza, J. B., & Mugabo, L. R. (2025). The use of improvised chemicals and materials in teaching and learning chemistry in two selected districts of Rwanda. Cogent Education, 12(1)https://doi.org/10.1080/2331186X.2025.2461138

Edris Hoseinzadeh | Environmental Chemistry | Innovative Research Award

Innovative Research Award

Edris Hoseinzadeh,
Saveh University of Medical Sciences

Edris Hoseinzadeh
Affiliation Saveh University of Medical Sciences
Country Iran
Scopus ID 54782718600
Documents 64
Citations 1,734
h-index 19
Subject Area Drinking Water
Event International Chemical Scientist Awards

Edris Hoseinzadeh is a researcher whose published work includes environmental health, water quality, water and wastewater treatment, contaminant assessment, and related environmental applications. Bibliographic records identify him with Scopus Author ID 54782718600 and document research spanning drinking-water and environmental-health topics. [1]

Abstract

Edris Hoseinzadeh’s research record encompasses environmental health, drinking-water quality, water and wastewater treatment, contaminant removal, and environmental risk assessment. His documented publications include studies addressing waterborne hazards, adsorption, electrochemical treatment, groundwater quality, and water-related public-health questions. These areas provide a scholarly basis for recognition under an innovative research category. [1]

Keywords

Drinking water; water quality; wastewater treatment; environmental health; waterborne contaminants; adsorption; electrochemical treatment; groundwater; environmental monitoring; public health.

Introduction

Water-quality research connects environmental science, chemical treatment, and public health, particularly where contaminants threaten safe water supplies. Hoseinzadeh’s published work addresses these interconnected concerns through studies of water resources, treatment processes, contaminant removal, and environmental pathways. Such work contributes evidence relevant to drinking-water management and environmental-health protection. [2]

Research Profile

Hoseinzadeh’s research profile spans environmental health engineering and water-related environmental science. Indexed records identify publications involving drinking water, wastewater, groundwater, adsorption, electrochemical processes, microbial hazards, and environmental contamination. His work therefore reflects an interdisciplinary research direction linking chemical treatment technologies with environmental monitoring and health-oriented assessment of water resources. [1]

Research Contributions

His contributions include investigation of contaminant removal using adsorption and electrochemical approaches, evaluation of groundwater and rainwater quality, and assessment of biological and chemical hazards associated with water. Studies of waterborne pathogens and treatment processes further demonstrate an applied orientation toward improving understanding of environmental risks and practical water-management challenges. [3]

Publications

Representative publications include research on acid-dye removal using potato-peel biomass, rainwater-quality evaluation, waterborne protozoan parasites, groundwater quality, electrochemical water and wastewater treatment, and environmental routes of pathogen transmission. His publication record also includes recent work addressing water recovery and treatment processes, illustrating continuity between foundational water research and newer treatment applications. [3]

Research Impact

The available bibliographic record indicates measurable scholarly visibility, with Scopus-indexed publications receiving citations across environmental and water-related research areas. His studies have addressed practical subjects such as contaminant removal, water-quality characterization, and treatment processes, allowing findings to intersect with environmental engineering, public-health research, and sustainable management of water resources. [1] [3]

Award Suitability

The documented combination of water-quality research, treatment technologies, contaminant studies, and environmental-health investigations provides a relevant scholarly foundation for consideration for an Innovative Research Award. His work demonstrates application-oriented research across interconnected environmental problems, particularly those involving drinking water, wastewater, pollutants, and public-health protection. [1]

Conclusion

Edris Hoseinzadeh’s publication record reflects sustained engagement with environmental health and water-related research. His studies address water quality, contaminant removal, treatment technologies, and environmental risks, creating an interdisciplinary profile relevant to contemporary water challenges. These documented contributions provide a reasonable scholarly basis for recognition within an innovative research context. [1] [3]

References

  1. Elsevier. (n.d.). Scopus author details: Edris Hoseinzadeh, Author ID 54782718600. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=54782718600
  2. Godini, H., Hoseinzadeh, E., & Hossini, H. (2021). Water and wastewater as potential sources of SARS-CoV-2 transmission: A systematic review. Reviews on Environmental Health, 36(3), 309–317.

    DOI: 10.1515/reveh-2020-0148.

  3. Hoseinzadeh, E., Samarghandi, M.-R., McKay, G., & Rahimi, N. (2014). Removal of acid dyes from aqueous solution using potato peel waste biomass: A kinetic and equilibrium study. Desalination and Water Treatment, 52(25–27).

    DOI: 10.1080/19443994.2013.810355.

Jung Rae | Environmental Chemistry | Innovative Research Award

Innovative Research Award

Jung Rae
Affiliation Pusan National University
Country South Korea
Google Scholar  fKpBuFYAAAAJ&hl=en
Documents 213
Citations 13,866
h-index 58
Subject Area Applied Microbiology
Event International Chemical Scientist Awards

Jung Rae is affiliated with Pusan National University and has established a distinguished research profile in Applied Microbiology through extensive scholarly publications, interdisciplinary collaborations, and sustained scientific impact. The Innovative Research Award recognizes researchers demonstrating consistent academic excellence and influential contributions to advancing chemical and biological sciences.[1]

Abstract

This article summarizes the academic profile of Jung Rae, emphasizing research productivity, publication record, citation performance, and scientific contributions in Applied Microbiology. The profile highlights achievements that align with the objectives of the Innovative Research Award and demonstrates measurable scholarly impact through internationally recognized research indicators.[1][2]

Keywords

Innovative Research Award, Jung Rae, Applied Microbiology, Pusan National University, Scientific Publications, Citation Impact, Research Excellence, Scopus, Google Scholar, International Chemical Scientist Awards.[1]

Introduction

Jung Rae has developed an internationally recognized academic career through sustained research in Applied Microbiology. His work reflects scientific innovation, interdisciplinary collaboration, and practical relevance. Consistent publication output and scholarly recognition demonstrate a strong commitment to advancing microbial science and related chemical research disciplines.[1][2]

Research Profile

Affiliated with Pusan National University, Jung Rae has authored more than two hundred scholarly publications while achieving extensive citation recognition. His research emphasizes microbial technologies, environmental applications, and biochemical processes, reflecting continuous scientific productivity and an established international academic reputation.[1][3]

Research Contributions

Research contributions include advancing microbial biotechnology, improving environmental sustainability, and supporting innovative biological processes with interdisciplinary significance. Published investigations have enhanced scientific understanding while providing valuable references for researchers, industry professionals, and future developments in microbiology and chemical sciences worldwide.[2][4]

Publications

The researcher has produced 213 indexed publications covering applied microbiology, biotechnology, environmental engineering, and related scientific fields. These publications appear in reputable peer-reviewed journals and collectively demonstrate consistent research quality, international collaboration, and long-term academic productivity across multiple research themes.[1]

Research Impact

With over 13,866 citations and an h-index of 58, Jung Rae’s research demonstrates sustained academic influence. Citation metrics indicate that his publications continue supporting scientific progress, encouraging collaboration, informing future investigations, and contributing significantly to the global advancement of applied microbiological research.[1][2]

Award Suitability

The academic achievements, publication consistency, citation performance, and recognized scientific influence align well with the objectives of the Innovative Research Award. These measurable accomplishments reflect sustained excellence, impactful scholarship, and meaningful contributions that support international scientific advancement and professional recognition.[1][2]

Conclusion

Jung Rae’s scholarly profile reflects sustained research excellence, extensive publication activity, and internationally recognized scientific impact. His contributions to Applied Microbiology continue supporting innovation, collaborative research, and knowledge advancement, making his academic accomplishments highly consistent with the principles of distinguished scientific recognition.[1]

References

  1. Google Scholar. (n.d.). Jung Rae – Citation Profile.
    https://scholar.google.com/citations?user=fKpBuFYAAAAJ&hl=en
  2. ResearchGate. (n.d.). Jung Rae Kim Research Profile.
    https://www.researchgate.net/profile/Jung-Rae-Kim
  3. Kim JR et al. Bioresource Technology. DOI:
    https://doi.org/10.1016/j.biortech.2010.11.067
  4. International Chemical Scientist Awards. (n.d.).
    https://chemicalscientists.com/

Wissawa Malakan | Environmental Chemistry | Best Researcher Award

Best Researcher Award

Wissawa Malakan
Health Intervention and Technology Assessment Program Foundation, Thailand

Wissawa Malakan
Affiliation Health Intervention and Technology Assessment Program Foundation
Country Thailand
Scopus ID 57207989060
Documents 11
Citations 56
h-index 4
Subject Area Environmental Chemistry
Event International Chemical Scientist Awards
ORCID 0000-0003-4567-1206

Wissawa Malakan is a researcher associated with the Health Intervention and Technology Assessment Program Foundation in Thailand. His scholarly work focuses on environmental chemistry, air quality assessment, industrial pollution monitoring, and public health risk evaluation. Based on bibliometric indicators available through Scopus, his research portfolio demonstrates contributions to understanding environmental contaminants and their impacts on human health, supporting evidence-based environmental management and policy development.[1]

Abstract

Wissawa Malakan has contributed to environmental chemistry research through studies examining industrial air pollution, volatile organic compounds, environmental exposure assessment, and associated public health risks. His publications address analytical approaches for monitoring pollutants, modeling environmental impacts, and evaluating human exposure in industrial regions. Through interdisciplinary collaboration, his research supports environmental decision-making, risk management, and evidence-based policy development. Bibliometric indicators, including peer-reviewed publications, citations, and an established h-index, demonstrate measurable scholarly engagement. These contributions align with contemporary priorities in environmental sustainability, chemical safety, public health protection, and environmental risk assessment within both regional and international research communities.[1][2]

Keywords

Environmental Chemistry; Air Pollution; Volatile Organic Compounds; Environmental Health; Risk Assessment; Industrial Emissions; Exposure Modeling; Atmospheric Monitoring.

Introduction

Environmental chemistry plays a critical role in understanding pollutant behavior and protecting public health. Wissawa Malakan’s research focuses on industrial emissions, atmospheric contaminants, and environmental risk evaluation. His studies contribute valuable scientific evidence for environmental monitoring programs and support sustainable management strategies addressing pollution-related challenges in rapidly developing industrial regions.[2]

Research Profile

Affiliated with the Health Intervention and Technology Assessment Program Foundation, Wissawa Malakan maintains an active research profile in environmental chemistry. His scholarly record includes Scopus-indexed publications, multidisciplinary collaborations, and studies investigating pollutant dispersion, exposure pathways, and health implications associated with industrial and urban environmental conditions.[1]

Research Contributions

His contributions include modeling inhalation risks of volatile organic compounds, evaluating industrial air quality impacts, and assessing environmental exposure scenarios. These investigations provide evidence supporting environmental regulation, health risk communication, and sustainable pollution control measures. The research demonstrates practical relevance to environmental management and public health protection initiatives.[2]

Publications

The researcher has authored multiple peer-reviewed publications indexed in international databases. Notable works address integrated management of industrial air pollution and health risk assessment associated with volatile organic compounds, demonstrating consistent engagement with environmental chemistry and environmental health research topics.[2][3]

Research Impact

The researcher’s publications have contributed to scientific discussions concerning industrial pollution and environmental health. Citation metrics indicate academic visibility, while the practical orientation of his studies supports environmental monitoring frameworks, risk assessment methodologies, and policy considerations relevant to sustainable industrial development and public health protection.[1]

Award Suitability

Wissawa Malakan demonstrates qualifications consistent with recognition under the Best Researcher Award category. His peer-reviewed contributions, measurable citation performance, interdisciplinary collaborations, and focus on environmental sustainability collectively reflect scholarly achievement. The relevance of his research to environmental chemistry and public health strengthens his suitability for international academic recognition.[4]

Conclusion

Through research addressing industrial pollution, environmental exposure, and health risk assessment, Wissawa Malakan has established a meaningful scholarly presence within environmental chemistry. His publication record, citation impact, and commitment to evidence-based environmental management demonstrate scientific contributions that support continued advancement of environmental sustainability and public health research.[3]

References

  1. Elsevier. (n.d.). Scopus author details: Wissawa Malakan, Author ID 57207989060. Scopus.https://www.scopus.com/authid/detail.uri?authorId=57207989060
  2. Malakan, W., et al. (2023). Integrated Sustainable Management of Petrochemical Industrial Air Pollution. International Journal of Environmental Research and Public Health, 20(3), 2280.https://doi.org/10.3390/ijerph20032280
  3. ResearchGate. (n.d.). ResearchGate profile of Wissawa Malakan. https://www.researchgate.net/profile/Wissawa-Malakan
  4. ORCID. (n.d.). Researcher Profile: Wissawa Malakan.https://orcid.org/0000-0003-4567-1206

Abdelkrim Abourriche | Environmental Chemistry | Research Excellence Award

Research Excellence Award

 Abdelkrim Abourriche
National School of Applied Sciences (ENSA), Safi – Cadi Ayyad University, Morocco
 Abdelkrim Abourriche
Affiliation National School of Applied Sciences (ENSA), Safi – Cadi Ayyad University
Country Morocco
Scopus ID 57197714984
Documents 37
Citations 817
h-index 17
Subject Area Advanced materials and ceramic membranes; Waste valorization and sustainable materials; Industrial wastewater treatment
Event International Chemical Scientist Awards

Prof. Abdelkrim Abourriche is a Moroccan researcher whose scholarly work focuses on advanced materials, ceramic membrane technologies, waste valorization strategies, and industrial wastewater treatment. His academic activities contribute to sustainable engineering solutions and environmentally responsible industrial processes. Citation indicators and publication records demonstrate continued engagement in applied scientific research and interdisciplinary innovation.[1]

Abstract

This article presents an academic overview of Prof. Abdelkrim Abourriche and his contributions to sustainable materials science, ceramic membrane engineering, and wastewater treatment technologies. His publication portfolio, citation performance, and interdisciplinary research activities demonstrate continued engagement in addressing environmental challenges through scientific innovation and applied engineering methodologies.[1][2]

Keywords

Advanced Materials, Ceramic Membranes, Sustainable Engineering, Waste Valorization, Industrial Wastewater Treatment, Environmental Technology, Circular Economy, Applied Chemistry, Resource Recovery, Scientific Research Excellence.[2]

Introduction

Prof. Abdelkrim Abourriche is recognized for research activities related to advanced materials development and environmental sustainability. His work integrates scientific investigation with practical applications, particularly in membrane technologies, waste recycling, and industrial wastewater management. These research areas contribute to addressing contemporary environmental and industrial challenges through evidence-based approaches.[1][3]

Research Profile

Affiliated with the National School of Applied Sciences in Safi, Cadi Ayyad University, Prof. Abourriche maintains an active publication record indexed in international databases. His documented scholarly output, citation metrics, and h-index reflect sustained participation in materials science, environmental engineering, and applied chemical research communities.[1][4]

Research Contributions

The researcher has contributed to studies involving ceramic membrane fabrication, sustainable material utilization, industrial waste treatment, and valorization of by-products. These investigations support resource efficiency and environmental protection objectives while promoting innovative approaches for improving treatment performance and reducing ecological impacts across industrial sectors.[2][5]

Publications

Prof. Abourriche’s publication portfolio includes peer-reviewed journal articles addressing membrane science, wastewater treatment technologies, and sustainable materials. The documented body of work demonstrates a focus on practical environmental solutions and interdisciplinary research collaboration, contributing valuable findings to the broader scientific literature.[1][3]

Research Impact

Research impact is reflected through citation performance, scholarly visibility, and continued relevance within environmental and materials research domains. The citation record indicates that published findings have been referenced by other researchers, supporting knowledge dissemination and contributing to ongoing scientific discussions and technological developments.[1][4]

Award Suitability

The research profile aligns with the objectives of the International Chemical Scientist Awards through demonstrated contributions to environmental chemistry, sustainable material development, and industrial treatment technologies. Academic productivity, measurable research influence, and practical relevance collectively support consideration within scientific recognition and excellence evaluation frameworks.[1][5]

Conclusion

Prof. Abdelkrim Abourriche’s academic record illustrates sustained engagement in research areas that address environmental sustainability and industrial efficiency. Through publications, collaborative investigations, and contributions to materials science and wastewater treatment, his work represents a meaningful component of contemporary applied scientific research and innovation.[1][2]

References

  1. Elsevier. (n.d.). Scopus author details: Prof. Abdelkrim Abourriche, Author ID 57197714984. Scopus.https://www.scopus.com/authid/detail.uri?authorId=57197714984
  2. Bellaj, M., Rakcho, Y., Regti, A., Gebrati, L., Abouliatim, Y., El Haddad, M., & Abourriche, A. (2026). Methylene blue adsorption by synergistic clay-chitosan-alginate hydrogel beads: Batch and fixed-bed column studies with theoretical modeling. International Journal of Biological Macromolecules, 358, 151758.

    https://www.researchgate.net/publication/403394832

  3. El Bourachdi, S., Rakcho, Y., Ayub, A. R., El Amri, A., Moussaoui, F., Araña, J., Herrera-Melián, J. A., Abourriche, A., Hannache, H., & Lahkimi, A. (2026). Cu (II) removal from aqueous solution and real textile wastewater: Mechanistic insights, process optimization, and theoretical modeling using advanced Chitosan–EDTA beads. Environmental Science and Pollution Research, 33(13).

    https://doi.org/10.1007/s11356-026-37687-y

  4. Bellaj, M., Regti, A., El Haddad, M. E., Gebrati, L., Aziz, F., Kurniawan, T. A., & Abourriche, A. K. (2026). Clay/biopolymer composite beads for adsorptive dye removal in batch and fixed-bed systems. Materials Chemistry and Physics, 352, 131998

    https://www.sciencedirect.com/science/article/abs/pii/S025405842501644X?via%3Dihub=

  5. International Chemical Scientist Awards. Award objectives and scientific recognition framework.https://chemicalscientists.com

Motas | Environmental Chemistry | Chemical Scientist Award

Prof. Dr. Motas | Environmental Chemistry | Chemical Scientist Award

Professor | University of Murcia | Spain

Miguel Motas is a distinguished environmental chemistry researcher at the Universidad de Murcia, specializing in emerging pollutants, contaminant transformation, and ecological risk assessment. His work focuses on pharmaceuticals, pesticides, and persistent organic pollutants in aquatic, terrestrial, and polar ecosystems. Motas has authored 43 peer-reviewed publications with 1,164 citations and an h-index of 22, demonstrating strong scientific influence and sustained research productivity. His recent studies include monitoring pharmaceuticals in Iberian coastal waters, assessing pesticide residues in food matrices, and evaluating PCBs and emerging pollutants in Antarctic species such as Chinstrap penguins and krill. Collaborating with over 140 co-authors, he integrates analytical chemistry and toxicology to support evidence-based environmental policy, ecosystem protection, and sustainable pollution management.

Citation Metrics (Scopus)

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900

600

300

0

Citations

1,164

Documents

43

h-index

22

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View Scopus Profile

Featured Publications

Jeffrey Amelse | Environmental Chemistry | Best Researcher Award

Dr. Jeffrey Amelse | Environmental Chemistry | Best Researcher Award

Invited Contributor at University of Aveiro, Portugal

Dr. Jeffrey A. Amelse is an accomplished chemical engineer, researcher, and educator with a distinguished career spanning academia and industry. He earned his Ph.D. in Chemical Engineering from Northwestern University and went on to make significant contributions to catalysis, molecular sieves, petrochemical process design, and carbon sequestration technologies. With over three decades at BP Amoco Chemical Company, he played a pivotal role in developing and commercializing advanced paraxylene technologies, molecular sieve catalysts, and innovative process designs that remain influential in the petrochemical sector. Following his industrial career, he transitioned to academia as an Invited Teaching Professor at the University of Aveiro in Portugal, where he continues to shape the future of energy, catalysis, and sustainability through teaching and research. Currently, as Lead Scientist at Carbon Sequestration, Inc., he pioneers low-cost, natural methods for carbon dioxide removal. His legacy reflects a rare blend of industrial leadership, academic excellence, and innovation.

Professional Profile 

Dr. Amelse’s academic foundation in chemical engineering is marked by rigorous training and a passion for applied research. He earned his Bachelor of Science in Chemical Engineering from the University of Illinois at Urbana-Champaign. He then pursued graduate studies at Northwestern University, obtaining his Master of Science in Chemical Engineering followed by a Ph.D. His doctoral research, under Professors John Butt and Lyle Schwartz, focused on “Silica Supported Iron Bimetallic Catalysts for the Fischer-Tropsch Synthesis,” combining catalyst characterization with performance evaluation—a project that reflected his early interest in bridging fundamental chemistry with industrial applications. Beyond formal degrees, he pursued numerous continuing education courses throughout his career, covering refining, petrochemicals, and biofuels. This extensive educational background not only equipped him with technical expertise but also laid the groundwork for his later innovations in catalysis, petrochemical processes, and sustainable energy technologies, enabling him to contribute across academia and industry.

Experience 

Dr. Amelse’s professional journey integrates high-level industrial leadership, academic teaching, and cutting-edge research. At BP Amoco Chemical Company, he was a core team member in designing world-scale paraxylene crystallization units, developing next-generation catalysts, and leading U.S. Department of Energy–sponsored projects on ammonia absorption refrigeration. He also guided international collaborations, including projects in Belgium, India, Portugal, and the UK, making significant contributions to global petrochemical technology. After retiring from BP Amoco, he joined the University of Aveiro as an Invited Teaching Professor, lecturing on biofuels, refining, and petrochemicals while contributing to molecular sieve research using solid-state NMR. Currently, he serves as Lead Scientist at Carbon Sequestration, Inc., leading commercialization of woody biomass burial for carbon dioxide removal. His experience highlights a career that bridges innovation, teaching, and sustainability, demonstrating his ability to drive transformative advances across both industrial and academic landscapes.

Professional Development

Throughout his career, Dr. Amelse actively pursued professional development to remain at the forefront of chemical engineering and energy research. At BP Amoco, he became a trained leader in HAZOP and LOPA safety analysis techniques, guiding critical plant safety design studies. He also served as an instructor for internal technical courses on paraxylene catalysis and process technologies, reflecting his commitment to knowledge transfer within industry. His collaborations with leading universities, including Cambridge University and the University of Aveiro, provided opportunities to mentor graduate students and postdoctoral researchers, strengthening academia-industry ties. More recently, he expanded his expertise into renewable energy and climate solutions, developing a micro-module on Global Warming, Renewable Energy, and Decarbonization for the European Consortium of Innovative Universities. His continual engagement with new technologies, from biofuels to biomass carbon sequestration, exemplifies lifelong learning and adaptation. This pursuit of professional growth underscores his leadership in advancing energy innovation and sustainability.

Skills & Expertise

Dr. Amelse possesses a rare combination of technical, analytical, and leadership skills in catalysis, process design, and sustainable energy solutions. He is recognized as an expert in molecular sieve synthesis and characterization, having applied advanced techniques such as solid-state NMR to study catalytic materials. His proficiency in ASPEN process simulation and HTRI heat exchanger design software enabled him to lead complex petrochemical process designs with strong economic and technical insight. He also has deep expertise in the aromatics marketplace, including paraxylene process technologies, competitive benchmarking, and licensing strategies. In addition to technical mastery, he is skilled in safety leadership through HAZOP and LOPA methodologies, ensuring safe and efficient operations. His teaching and mentoring roles highlight his ability to translate complex scientific concepts into practical applications. Today, his expertise extends into biomass burial technologies for carbon sequestration, making him a versatile innovator in both conventional petrochemicals and emerging sustainable energy fields.

Resarch Focus

Dr. Amelse’s research has consistently advanced the frontiers of catalysis, petrochemicals, and sustainable energy. His early work focused on catalyst development and reactor modeling for xylene isomerization and paraxylene production, where he pioneered molecular sieve catalyst characterization and design methodologies still in use today. He contributed to the development of novel catalysts for dehydrogenation, transalkylation, and isomerization processes, resulting in patents that improved energy efficiency and selectivity in petrochemical operations. In academia, his research shifted toward renewable energy, exploring biofuels from cellulosic biomass and molecular sieve applications in green chemistry. Currently, his focus lies in carbon sequestration, specifically the commercialization of woody biomass burial as a low-cost and natural method for carbon dioxide removal. His work also explores catalytic oxidation of biomethane and novel bio-aromatic conversion processes. By integrating catalysis, process design, and climate solutions, his research exemplifies innovation at the intersection of chemical engineering and sustainability.

Awards & Recognitions

Dr. Amelse’s career achievements have been recognized through numerous grants, patents, and scholarly contributions. While at BP Amoco, he received special grants from the Head of Technology and the Distributed Research Laboratory to sponsor advanced academic collaborations at the University of Aveiro and Cambridge University. His patents—spanning paraxylene recovery, catalyst design, refrigeration systems, and biomass conversion—demonstrate his innovation and impact, with technologies implemented at industrial scale. His process for recovering germanium from optical fiber effluents, developed at Bell Labs, was notable enough to be featured in The New York Times. In academia, his contributions to climate education were recognized through his development of a European Consortium module on global warming and sustainability. His publications in leading journals, chapters in Industrial Arene Chemistry, and invited lectures further highlight his influence. Collectively, these recognitions underscore his reputation as a pioneering researcher, mentor, and innovator in chemical engineering and sustainability.

Publication Top Notes 

Title: A European Consortium of Innovative Universities Micromodule on Global Warming, Renewable Energy, and Decarbonization
Authors: J.A. Amelse
Year: 2025

Title: Terrestrial Storage of Biomass (Biomass Burial): A Natural, Carbon-Efficient, and Low-Cost Method for Removing CO₂ from Air
Authors: J.A. Amelse
Year: 2025

Title: BP/Amoco Paraxylene Crystallization Technology
Authors: J.A. Amelse
Year: 2023

Title: Reactions and Mechanisms of Xylene Isomerization and Related Processes
Authors: J.A. Amelse
Year: 2023

Title: Sequestering Biomass for Natural, Carbon Efficient, and Low-Cost Direct Air Capture of Carbon Dioxide
Authors: J.A. Amelse, P.K. Behrens
Year: 2022

Dr. Amelse is a highly deserving candidate for the Best Researcher Award. His lifelong contributions to catalysis, petrochemicals, renewable energy, and carbon sequestration reflect both depth and breadth of expertise. His patents and publications demonstrate originality and industrial impact, while his teaching and mentoring underscore his role in shaping future scientists. Although further visibility of his research impact metrics (citations, h-index) and a stronger articulation of future directions could enhance his case, his record already places him among the leading researchers globally.