Ms. Lihong DING | Material Processing Techniques | Best Researcher Award

Ms. Lihong DING | Material Processing Techniques | Best Researcher Award

Jiangsu University of Technology | China

Ms. Lihong Ding is an accomplished researcher and experimenter in the field of mechanical engineering, currently serving at Jiangsu University of Technology, where she plays a key role in advancing laboratory instruction, engineering innovation, and collaborative research initiatives. With strong academic training in mechanical engineering and extensive hands-on laboratory experience, she has established herself as a dedicated educator and emerging researcher contributing to the development of advanced manufacturing processes and high-performance materials. Her work centers on laser cladding additive manufacturing, with a particular focus on structural integrity, crack arrest mechanisms, and material performance enhancement for demanding industrial environments, including aerospace and high-strength engineering systems. Ms. Ding has authored multiple research publications in reputable peer-reviewed journals, including core and SCI-indexed articles, demonstrating her commitment to academic excellence and knowledge dissemination. Among her notable scientific contributions is her research on the crack arrest effect of FeMnNiSi-Inconel625-Ni60 laminated structures produced through laser cladding additive manufacturing, which provides valuable insight into process-structure-property relationships and improved crack resistance for advanced gradient materials. She has participated in collaborative education initiatives supported by national academic-industry innovation platforms and has contributed to research project development related to emerging engineering applications. In addition to her scientific achievements, she has authored educational materials, including the professional training book “CNC Lathe Skill Training and Competition Question Selection,” supporting skills development and technical education for engineering students. Through her dedication to experimental teaching, research supervision, and laboratory innovation, Ms. Ding continues to foster strong academic-industry integration and advancement in next-generation manufacturing technologies. Her work reflects a commitment to excellence, professional development, and meaningful scientific impact, positioning her as a promising researcher and valued contributor to the mechanical engineering community.

Profile: Orcid

Featured Publication

Ding, L., Lei, W., & Chen, J. (2025). Crack arrest effect of FeMnNiSi–Inconel 625–Ni60 laminated structure prepared by laser cladding additive manufacturing. Materials, 18(21), 4996.

Dr. Armen Sargsyan | Optical Materials | Best Researcher Award

Dr. Armen Sargsyan | Optical Materials | Best Researcher Award

Institute of Physical Research | National Academy of Sciences of Armenia | Armenia

Dr. Armen Sargsyan is an internationally recognized physicist and leading researcher in the fields of laser physics, optics, atomic and molecular spectroscopy, and applied magnetism. He is currently serving as the Head of the Laboratory of Optics and Atomic Spectroscopy at the Institute for Physical Research of the National Academy of Sciences of Armenia, where he leads advanced experimental and theoretical research programs and supervises scientific teams, doctoral students, and collaborative international projects. Dr. Sargsyan has built an outstanding scientific reputation through pioneering contributions to selective reflection spectroscopy, Doppler-free spectroscopy, frequency stabilization, nanocell technologies, and precision measurement techniques for applications in quantum optics, atomic systems, and optical communications. His scientific achievements are reflected in an extensive portfolio of 154 indexed research documents in top-tier academic journals and global scientific collections, collectively accumulating 2,089 citations referenced by 841 citing documents, supported by an h-index of 23, demonstrating sustained international influence and scholarly excellence. Dr. Sargsyan has authored numerous high-impact publications in journals such as Optics Letters, Physical Review Letters, Physics Letters A, Journal of Modern Optics, Optics Express, and OSA Continuum, and has served as a reviewer for major scientific platforms including Optical Society publications, Infrared Physics & Technology, and Measurement. He has received multiple prestigious research awards and recognition as one of Armenia’s most active scientists and has led several nationally funded scientific grants as principal investigator, contributing significantly to the advancement of optical technologies and applied physics. In addition to his research leadership, he has coordinated major scientific schools and international academic events, strengthening the development of optics and photonics education and fostering professional collaboration worldwide. Dr. Sargsyan continues to expand the boundaries of atomic spectroscopy and optical physics with a commitment to innovation, mentoring, and high-level scientific impact.

Profiles: Scopus | Orcid | Google Scholar

Featured Publications

Sargsyan, A., Gogyan, A., & Sarkisyan, D. (2025). Up-conversion of 780 nm or 795 nm laser radiation to 420 nm in rubidium atomic vapor. Spectrochimica Acta Part B: Atomic Spectroscopy.

Sargsyan, A., Momier, R., & Sarkisyan, D. (2025). Doppler-free selective reflection spectroscopy of the 6s²S₁/₂ → 7p²P₃/₂ transition of Caesium using an optical nanocell. Journal of Physics B: Atomic, Molecular and Optical Physics.

Sargsyan, A., Klinger, E., Boudot, R., & Sarkisyan, D. (2025). Doppler-free spectroscopy of the Cs 6S₁/₂ → 7P₃/₂ atomic transition at 456 nm in a nanometric-thick vapor layer. Optics Letters.

Sargsyan, A., Klinger, E., Amiryan, A., & Sarkisyan, D. (2025). Features of alkali D2 line magnetically-induced transitions excited under π-polarized laser radiation. Physics Letters A.

Sargsyan, A., Klinger, E., Tonoyan, A., & Sarkisyan, D. (2024). Observation of magnetically-induced transition intensity redistribution in the onset of the hyperfine Paschen–Back regime. Optik, 2024.

Sargsyan, A., Momier, R., Leroy, C., & Sarkisyan, D. (2023). Competing van der Waals and dipole–dipole interactions in optical nanocells at thicknesses below 100 nm. Physics Letters A.

Assoc. Prof. Dr. Kishore Debnath | Composite Materials | Editorial Board Member

Assist. Prof. Dr Kishore Debnath Mengesha | Composite Materials | Editorial Board Member

NIT Meghalaya | India

Assoc. Prof. Dr. Kishore Debnath is a highly accomplished academic and researcher in the field of mechanical engineering with distinguished expertise in composite materials, green composites, biodegradable polymers, fiber-reinforced composites, machining behavior, wear and friction of polymeric systems, and additive manufacturing. He is currently serving as an Associate Professor in the Department of Mechanical Engineering at the National Institute of Technology Meghalaya, India, where he plays a significant role in research leadership, postgraduate guidance, academic coordination, and curriculum development. With a strong educational foundation including a PhD from the Indian Institute of Technology Roorkee, an M.Tech. degree from the National Institute of Technology Rourkela, and a Bachelor of Engineering from the National Institute of Technology Agartala, he has built a remarkable academic and research career. Dr. Debnath has an impressive scholarly record with extensive publication output comprising 167 high-quality documents indexed internationally, which have collectively generated 2,042 citations from 1,687 citing documents, supported by an h-index of 25 and an i10-index of 55, demonstrating significant global research visibility and sustained scientific impact. His research interests span biodegradable materials development, fiber–matrix interface behavior, hybrid and micro-machining, advanced tool design, manufacturing process optimization, nondestructive testing of composites, and finite element analysis of manufacturing systems. He has earned multiple prestigious research awards, international recognitions, and competitive travel grants, reflecting his outstanding contributions to the advancement of mechanical sciences and materials engineering. Dr. Debnath has actively contributed to international conferences as a speaker, reviewer, and session award recipient, and has collaborated extensively within industrial and academic networks to translate research innovations into practical engineering solutions. A dedicated educator and mentor, he continues to advance cutting-edge research that promotes sustainability, manufacturing innovation, and next-generation composite technology for industrial transformation and engineering excellence.

Profile: Google Scholar

Featured Publications

Debnath, K., Singh, I., & Dvivedi, A. (2014). Drilling characteristics of sisal fiber-reinforced epoxy and polypropylene composites. Materials and Manufacturing Processes, 29(11–12), 1401–1409.

Bajpai, P. K., Debnath, K., & Singh, I. (2017). Hole making in natural fiber-reinforced polylactic acid laminates: An experimental investigation. Journal of Thermoplastic Composite Materials, 30(1), 30–46.

Debnath, K., Singh, I., & Dvivedi, A. (2015). Rotary mode ultrasonic drilling of glass fiber-reinforced epoxy laminates. Journal of Composite Materials, 49(8), 949–963.

Choudhury, M. R., Srinivas, M. S., & Debnath, K. (2018). Experimental investigations on drilling of lignocellulosic fiber reinforced composite laminates. Journal of Manufacturing Processes, 34, 51–61.

Debnath, K., & Singh, I. (2017). Low-frequency modulation-assisted drilling of carbon-epoxy composite laminates. Journal of Manufacturing Processes, 25, 262–273.

Assoc. Prof. Dr. Getinet Asrat Mengesha | Composite Materials | Editorial Board Member

Assist. Prof. Dr Getinet Asrat Mengesha | Composite Materials | Editorial Board Member

Adama Science and Technology University | Ethiopia

Assoc. Prof. Dr. Getinet Asrat Mengesha is a distinguished materials scientist and academic leader specializing in materials science and engineering, corrosion science, surface modification technologies, advanced coatings, plasma electrolytic oxidation, and metal matrix composites. He currently serves as an Associate Professor in the Department of Materials Science and Engineering at Adama Science and Technology University, Ethiopia, where he has made significant contributions to academic leadership, departmental development, postgraduate supervision, and materials innovation. His professional roles include Associate Dean of Academic Affairs for the School of Mechanical, Chemical, and Materials Engineering, Senate Standing Committee Member, Graduate and School Council Member, Program Delegate for Materials Science and Engineering, and Curriculum Committee contributor. Prior to his current role, he served as Lecturer and Department Head of Physics and later as Vice Dean of Academic Affairs of Student Services at Jigjiga University, where he provided strategic leadership, managed student academic development, and contributed to institutional growth. Dr. Getinet possesses extensive research expertise in plasma electrolytic oxidation coatings for aluminum alloys, corrosion resistance behavior of advanced engineered surfaces, and mechanical performance enhancement of hybrid-reinforced aluminum metal matrix composites, supported by several high-quality publications in internationally recognized journals. His scholarly influence demonstrates strong global research visibility, documented through 261 citations indexed by 261 citing documents, supported by an h-index of 9 and an i10-index of 9. His publication portfolio reflects impactful research collaborations addressing corrosion mitigation, metallurgical behavior, and materials durability in industrial environments. He has received recognition including Best Poster Presentation awards for research excellence and has participated in professional scientific communities dedicated to materials development and corrosion engineering. Dr. Getinet is committed to fostering innovation, interdisciplinary research leadership, and capacity building in advanced engineering education while continuing to contribute to high-performance material systems that support technological advancement and sustainable industrial solutions.

Profile: Google Scholar

Featured Publications

DAS, D. A., & Mengesha, G. A. (2022). An insight into mechanical and metallurgical behavior of hybrid reinforced aluminum metal matrix composites. Advances in Materials Science and Engineering, 2022.

Mengesha, G. A., Chu, J. P., Lou, B. S., & Lee, J. W. (2020). Corrosion performance of plasma electrolytic oxidation grown oxide coating on pure aluminum: Effect of borax concentration. Journal of Materials Research and Technology, 9(4), 8766–8779.

Mengesha, G. A., Chu, J. P., Lou, B. S., & Lee, J. W. (2020). Effects of processing parameters on the corrosion performance of plasma electrolytic oxidation grown oxide on commercially pure aluminum. Metals, 10(3), 394.

Zeleke, N. M., & Sinha, D. K. (2022). Chemical composition and extraction of microcrystalline cellulose from outer skin isolated coffee husk. Advances in Materials Science and Engineering, Article ID (13 pages).

Ashebir, D. K. S., & Mengesha, G. A. (2022). The role of tetra hybrid reinforcements on the behavior of aluminum metal matrix composites. Journal of Nanomaterials, 2022, Article ID 18.

Assoc. Prof. Dr. Shibiru Yadeta Ejeta | Nanomaterials | Editorial Board Member

Assoc. Prof. Dr. Shibiru Yadeta Ejeta | Nanomaterials | Editorial Board Member

Wollega University | Ethiopia

Assoc. Prof. Dr. Shibiru Yadeta Ejeta is an accomplished chemist, materials science researcher, and academic leader with strong expertise in photocatalysis, electrocatalysis, environmental pollutant removal, hydrogen and oxygen evolution reactions, electrochemical sensing, CO₂ reduction technologies, dye-sensitized solar cells, and the green synthesis of nanomaterials. He currently serves as an Assistant Professor at Wollega University, Ethiopia, where he plays a central role in advancing research and postgraduate scientific training within the Department of Chemistry. He previously served as Lecturer and Associate Professor at Nekemte Teachers Training College and has contributed extensively to teaching, analytical chemistry instruction, laboratory management, academic supervision, and research mentorship. Dr. Ejeta holds a Postdoctoral Fellowship in nanomaterials and energy-related catalysis, a PhD in Applied Sciences with specialization in catalysis and electrochemistry, an MSc in Analytical Chemistry, and multiple earlier qualifications in chemistry education and teaching. His research portfolio demonstrates increasing global influence, with published work addressing advanced nanomaterial synthesis, pollutant degradation, electrochemical detection of heavy metals, bifunctional catalysts for water splitting, and covalent organic framework design for cluster encapsulation and CO₂ transformation. His peer-reviewed scientific contributions have earned 12 citations from 11 citing documents, indexed across 2 published research documents, supported by an h-index of 2, reflecting the expanding recognition of his specialized research in emerging nanotechnology-driven energy and environmental solutions. Dr. Ejeta has authored and co-authored journal articles, supervised numerous postgraduate projects in analytical and environmental chemistry, served as internal and external academic evaluator, and presented research at national and international conferences. His experimental expertise includes GC, HPLC, MS, NMR, Raman spectroscopy, FTIR, synchrotron radiation studies, SEM, TEM, BET analysis, and nanoparticle surface characterization. A versatile scientist fluent in multiple languages, he is committed to innovation, interdisciplinary collaboration, and developing sustainable catalytic systems for cleaner energy production, pollution remediation, and global environmental sustainability.

Profile: Scopus

Featured Publication

Getahun, M. B., Xu, R., Xian, X., Song, Z., Min, G., & (additional authors if any). (2024). Effect of a three-dimensional nanotube array substrate on photocatalytic conversion performance of CO₂ gas to methanol by amine-loaded CuO/ZnO catalysts. Journal of Colloid and Interface Science. Advance online publication.

Assoc. Prof. Dr. Tabarak Malik | Nanomaterials | Editorial Board Member

Assoc. Prof. Dr. Tabarak Malik | Nanomaterials | Editorial Board Member

Jimma University | Ethiopia

Assoc. Prof. Dr. Tabarak Malik is an accomplished biochemist, academic leader, and researcher with extensive expertise in medical biochemistry, molecular biology, and life sciences, recognized for his significant contributions to teaching, research, and scientific innovation. Currently serving as an Associate Professor in the Department of Biomedical Sciences, he has previously held academic and leadership positions including Associate Professor and Assistant Professor of Biochemistry, Reader and Head of Department, and Lecturer in Biochemistry, demonstrating a progressive and impactful academic career. With a strong educational foundation comprising a BSc in Biological Sciences with Chemistry, an MSc in Biochemistry and Molecular Biology, and a PhD in Biochemistry, he has cultivated a deep understanding of biochemical processes and modern life science research methodologies. Dr. Malik is an internationally recognized researcher with a prolific scholarly output that includes 167 indexed documents contributing to a substantial research influence represented by 1,812 citations received from 1,760 citing documents, supported by an h-index of 22, reflecting his strong global academic impact. He has authored more than 100 publications in top-tier life science journals, including work published in high-impact factor outlets reaching a maximum impact factor of 15.3, addressing critical topics in disease biochemistry, clinical biomarkers, enzymology, metabolic disorders, oxidative stress pathways, and therapeutic molecular strategies. His research excellence is further strengthened by collaboration with institutions across regions and successful acquisition of competitive research grants, including multiple funded research projects as Co-Principal Investigator focusing on medical, biochemical, and molecular diagnostic advancement. Dr. Malik has contributed extensively to academic development through curriculum enhancement, postgraduate supervision, examination committees, and research mentoring, shaping future scientists and clinicians. Dedicated to promoting scientific advancement, he actively participates in conferences, editorial evaluation, and peer review. With a commitment to innovation, scientific integrity, and medical research enhancement, he continues to influence the broader landscape of biochemistry and biomedical sciences, advancing translational research for global healthcare improvement.

Profile: Scopus

Featured Publications

Cross-linking of fungal β-glucosidase on Al₂O₃ nanocrystals synthesized using Cajanus cajan L. Millsp. extracts for in suit genistein manufacture. (2025). Scientific Reports. Open access. (Cited by 1).

Significantly improving the solubility and anti-inflammatory activity of fenofibric acid with native and methyl-substituted beta-cyclodextrins via complexation. (2025). Scientific Reports. Open access. (Cited by 5).

Degradation of oak forests in the Himalaya: Impacts on diversity, carbon stock, and regeneration. (2025). Trees, Forests and People. Open access. (Cited by 0).

Emerging prospects of Bacillus species in attaining the sustainable development goals. (2025). Short Survey. Open access. (Cited by 0).

Valorization of flowers and their role in circular bioeconomy and sustainable development goals. (2025). Review. Open access. (Cited by 0).

Dual-function of N-substituted tetrabromophthalic inhibitors for eco-friendly control of microbiologically influenced corrosion in industrial cooling systems. (2025). NPJ Materials Degradation. Open access. (Cited by 1).

Dr. Rodolpho Vaz | Thin Film Technologies | Editorial Board Member

Dr. Rodolpho Vaz | Thin Film Technologies | Editorial Board Member

Stony Brook University | United States

Dr. Rodolpho Fernando Vaz is a highly accomplished materials scientist and mechanical engineer recognized for his impactful research in advanced coatings, thermal spray technologies, cold spray additive manufacturing, and surface engineering solutions that address industrial challenges across energy, aerospace, oil and gas, automotive, and manufacturing sectors. With a strong foundation in metallurgy, materials performance evaluation, mechanical characterization, and wear and corrosion behavior analysis, he has established himself as a leading expert in high-performance coating technologies and the enhancement of material durability in extreme service environments. Dr. Vaz has demonstrated significant scholarly influence within the global research community, evidenced by 539 citations generated by 400 documents, with an h-index of 14 and a publication record consisting of 42 documents indexed in major scientific databases. His body of work includes high-impact publications, award-winning articles, and collaborative research outputs developed with international academic laboratories and industrial partners. He has contributed pioneering advancements in cold spray additive manufacturing, including geometric control of metallic components, novel deposition strategies, mechanical property optimization, and integration of graphene and nanomaterials into titanium and steel coatings, contributing to major technological improvements in surface protection, structural repair, and thermal barrier performance. In addition to his research achievements, Dr. Vaz has served in university teaching roles, contributed more than two thousand instructional lecture hours, supervised academic projects, and delivered keynote presentations and invited lectures in scientific congresses. He is an active member of scientific journal peer-review communities, completing more than two hundred and fifty manuscript reviews, and has served on academic evaluation committees at multiple educational levels. His professional mission emphasizes innovation, sustainability, and the development of advanced materials engineering technologies that reduce industrial costs, improve reliability, and support global transitions toward cleaner, safer, and more efficient infrastructure. Driven by scientific excellence and interdisciplinary collaboration, he continues to expand the boundaries of coating science, material performance, and engineering applications.

Profile: Scopus

Featured Publications

Effect of Additive Manufacturing Parameters on PLA, ABS, and PETG Strength. (2025). Processes. Open access.

Influence of the fuel and high-velocity spray technique on corrosion and antifouling properties of Cu coating. (2025). Journal of Thermal Spray Technology.

Cold-sprayed Ti-carbon nanofibers: Study of conductive and electrochemical properties. (2025). Journal of Thermal Spray Technology.

The critical role of liquid surface tension in determining cavitation erosion and dry wear performance of WC-17Co coatings produced by cold spray technology. (2025). Tribology International.

Dr. Nidhi Rai | Materials Characterization Techniques | Editorial Board Member

Dr. Nidhi Rai | Materials Characterization Techniques | Editorial Board Member

Banaras Hindu University | India

Dr. Nidhi Rai is a dedicated plant biologist and molecular biotechnology researcher whose work focuses on plant physiology, secondary metabolite pathways, transcription factors, developmental biology, and the application of light spectrum modulation for enhancing medicinal plant productivity. She has established a strong research foundation in the Laboratory of Morphogenesis within the Department of Botany at the Institute of Science, Banaras Hindu University, where she investigates the molecular, physiological, and biochemical mechanisms influencing growth regulation, stress tolerance, and metabolite biosynthesis in economically important medicinal plants such as Artemisia annua and Withania coagulans. Dr. Rai has developed expertise in a diverse range of technical and analytical platforms including gene expression analysis, protein profiling, plant tissue culture, microscopy, biochemical assays, computational biology, metabolomics, HRMS, GC-MS analysis, and green nanotechnology. Her research contributions are recognized through multiple publications in reputed peer-reviewed journals, collectively achieving 77 citations, supported by an h-index of 4 and an i10-index of 2, demonstrating growing scientific influence and meaningful contribution to contemporary plant biotechnology and metabolic engineering research. She has authored and co-authored research papers, review articles, and book chapters that address critical aspects of plant stress physiology, transcription factor characterization, secondary metabolite pathways, genetic regulation under environmental stimuli, and biotechnological strategies for enhancing phytochemical production. Dr. Rai has actively presented her research in national and international scientific platforms, earning recognition for excellence in research dissemination including awards for outstanding poster presentations. Alongside her scholarly achievements, she has been involved in academic mentoring, scientific outreach, and specialized training related to molecular biology and biotechnological methodologies. Her professional commitment is driven by a mission to advance scientific understanding that supports the sustainable production of high-value plant compounds, contributes to climate-resilient agriculture, and opens translational opportunities in pharmaceuticals, bioengineering, and plant-based therapeutics. A rising scientist with a rapidly expanding research footprint, Dr. Rai continues to contribute to impactful innovation and knowledge advancement in plant science and biotechnology.

Profile: Google Scholar

Featured Publications

Singh, S., Saha, P., Rai, N., Kumari, S., & Pandey-Rai, S. (2023). Unravelling triterpenoid biosynthesis in plants for applications in bioengineering and large-scale sustainable production. Industrial Crops and Products, 199, 116789.

Rai, N., Kumari, S., Singh, S., Saha, P., Pandey, A. K., & Pandey-Rai, S. (2024). Modulation of morpho-physiological attributes and in situ analysis of secondary metabolites using Raman spectroscopy in response to red and blue light exposure in Artemisia annua. Environmental and Experimental Botany, 217, 105563.

Rai, N., Kumari, S., Singh, S., Saha, P., & Pandey-Rai, S. (2023). Genome-wide identification of bZIP transcription factor family in Artemisia annua, its transcriptional profiling and regulatory role in phenylpropanoid metabolism under stress. Physiology and Molecular Biology of Plants, 29(7), 905–925.

Rai, N., Sarma, B. K., & Rai, S. P. (2024). Transcriptional regulation of biotic and abiotic stress responses: Challenges and potential mechanism for stress tolerance and chickpea improvement. Tropical Plant Biology, 17(2), 83–107.

Kumari, S., Rai, N., Singh, S., Saha, P., Bisen, M. S., & Pandey-Rai, S. (2025). Functional identification of AaDREB-9 transcription factor in Artemisia annua L. and deciphering its role in secondary metabolism under PEG-induced osmotic stress. Plant Physiology Reports, 1–12.

Assoc. Prof. Dr. Vikasdeep Singh Mann | Mechanical Properties of Materials | Editorial Board Member

Assoc. Prof. Dr. Vikasdeep Singh Mann | Mechanical Properties of Materials | Editorial Board Member

Chandigarh Group of Colleges Jhanjeri Punjab | India

Assoc. Prof. Dr. Vikasdeep Singh Mann is a distinguished mechanical engineering scholar and researcher whose work stands at the intersection of composite materials, wear analysis, and advanced manufacturing technologies. Currently serving as an Associate Professor in the Department of Mechanical Engineering at Chandigarh Engineering College, Mohali, India, he has built a strong academic and research profile focused on the development and characterization of high-performance metal matrix composites reinforced with corundum for enhanced mechanical and tribological performance. His research interests span composites formulation and casting, erosion and corrosion testing, thermal spray coatings, process improvement, Lean Six Sigma, and predictive modeling of machining processes, contributing to advancements in engineering materials and sustainable industrial applications. With an impressive research footprint, his scientific contributions have achieved 126 citations, supported through an h-index of 6 and an i10-index of 4, demonstrating the growing impact and recognition of his work within the global research community. He has published multiple peer-reviewed journal articles and has actively contributed to conference literature, patents, and collaborative research initiatives in the materials and manufacturing domain. His research portfolio includes contributions to studies on the wear behavior of aluminium alloy matrix composites at varying temperatures and compositions, predictive modeling in spark-EDM machining, and development of novel metal matrix systems using beach mineral reinforcement. In addition to research achievements, he has demonstrated excellence in academic leadership and pedagogy through years of teaching undergraduate engineering courses such as engineering materials and metallurgy, operations management, total quality management, and industrial systems engineering, earning awards for academic service and innovative teaching practices. He has also supervised student projects in Lean Six Sigma and advanced manufacturing, supported grant-funded research initiatives, and secured multiple patents that reflect his innovative engineering contributions. A committed academic leader, he continues to translate cutting-edge research into impactful engineering solutions while contributing meaningfully to scientific, educational, and industrial communities.

Profile: Google Scholar

Featured Publications

Bhowmik, A., Kumar, R., Beemkumar, N., Kumar, A. V., Singh, G., Kulshreshta, A., … (2024). Casting of particle reinforced metal matrix composite by liquid state fabrication method: A review. Results in Engineering, 24, 103152.

Mann, V. S., & Pandey, O. P. (2021). Influence of natural beach mineral corundum on the wear characteristics of LM30 aluminium alloy composites. Wear, 477, 203801.

Mann, V. S., & Pandey, O. P. (2021). Effect of dual particle size corundum particles on the tribological properties of LM30 aluminium alloy composites for brake rotor applications. Arabian Journal for Science and Engineering, 46(12), 12445–12463.

Preethi, K., Hanumagowda, B. N., Pavithra, K. M., Varma, S. V. K., Mann, V. S., … (2025). Thermal scrutinization of MHD Darcy–Forchheimer flow of hybrid nanofluid over a stretching sheet with Richardson number and quadratic thermal radiation: Hyperbolic tangent model. Multiscale and Multidisciplinary Modeling, Experiments and Design, 8(3), 171.

Debnath, S., Sen, B., Patil, N., Kedia, A., Mann, V. S., Santhosh, A. J., & Bhowmik, A. (2024). Predictive modeling of MRR, TWR, and SR in spark-EDM of Al-4.5 Cu–SiC using ANN and GEP. AIP Advances, 14(9).

Dr. Mariam Tarkistani | Nanomaterials | Editorial Board Member

Dr. Mariam Tarkistani | Nanomaterials | Editorial Board Member

Ministry of Health | Saudi Arabia

Dr. Mariam Tarkistani is an accomplished biomedical scientist and visionary leader in immunology, nanotechnology, and clinical innovation, currently serving as Head of Immunology and Serology at King Faisal Hospital in Makkah, where she leads strategic advancements in clinical diagnostics, immunotherapeutic research, and laboratory excellence. With a strong academic foundation in biomedical science, biotechnology, and laboratory medicine, and a doctoral specialization in nano-drug delivery for cancer targeting and T-cell modulation, she has established herself as a pioneering researcher whose work bridges the fields of oncology, immunotherapy, and nanomedicine. Dr. Tarkistani’s research focuses on metal nanoparticles, bispecific antibodies, nanoparticle-mediated immune stimulation, and innovative therapeutic systems for cancer and antimicrobial resistance, contributing significantly to modern healthcare solutions and precision medicine. Her scientific achievements have gained international recognition, demonstrated through major global awards for innovation, including distinctions for groundbreaking biotechnology applications and impactful scientific contributions. She is a respected author in high-impact research domains, accumulating 86 citations, supported by an h-index of 2 and an i10-index of 2, reflecting the growing influence of her published work and its relevance to emerging biomedical technologies. Beyond research, she has led transformative initiatives as Director of Innovation, supporting intellectual property development, promoting research commercialization, and mentoring teams across multidisciplinary medical and scientific sectors. Her leadership roles include expertise in clinical consultation for complex immunological cases, laboratory operations optimization, and advanced diagnostic methodologies that elevate patient care standards. Dr. Tarkistani actively engages in scientific dissemination through keynote speaking, conference presentations, and peer-review contributions to notable international journals. Her commitment to innovation is further strengthened by multiple granted and pending patents, spanning laboratory instrumentation, nanoparticle engineering, and therapeutic biotechnology. A dedicated advocate for scientific progress and women in STEM, Dr. Tarkistani continues to inspire breakthrough discoveries that shape the future of global healthcare.

Profile: Google Scholar

Featured Publications

Tarkistani, M. A. M., Komalla, V., & Kayser, V. (2021). Recent advances in the use of iron–gold hybrid nanoparticles for biomedical applications. Nanomaterials, 11(5), 1227.

Anisuzzman, M., Komalla, V., Tarkistani, M. A. M., & Kayser, V. (2023). Anti-tumor activity of novel nimotuzumab-functionalized gold nanoparticles as a potential immunotherapeutic agent against skin and lung cancers. Journal of Functional Biomaterials, 14(8), 407.

Tarkistani, M. A. M., Komalla, V., & Kayser, V. (2021). Recent advances in the use of iron–gold hybrid nanoparticles for biomedical applications. Nanomaterials, 11(5), 1227.

Tarkistani, M. A. M., Komalla, V., & Kayser, V. (n.d.). Iron-gold nano-delivery approaches for cancer cell targeting and T-cell redirecting.