Niluka Bentara Vitanage | Physics | Best Researcher Award

Mrs. Niluka Bentara Vitanage | Physics | Best Researcher Award

National Institute of Fundamental Studies | Sri Lanka

Mrs. Niluka Bentara Vitanage, a dedicated Research Assistant from Sri Lanka, is an emerging scholar with six years of research experience specializing in carbon nanomaterials, molecular dynamics, and sustainable environmental applications. She holds a BSc in Physics, an MPhil in Physical Science, and is currently pursuing her PhD at the University of Sri Jayewardenepura. Her expertise spans advanced synthesis and characterization techniques, including CVD, SEM, XRD, TEM, and XPS, leading to innovations such as a novel single-stage floating catalyst CVD method for high-quality VACNTs. With 27 publications, including journal papers, abstracts, patents, and a book chapter, she has made notable contributions in areas like water desalination, pollutant removal, energy storage, and nanocomposite membranes.

Profile: Google Scholar | ResearchGate

Featured Publications

Wu, Z., Sewwandi, B. V. N., Chen, X., Perera, G., Jayarathna, L., … (2025). Forward osmosis membrane with lightweight functionalised multiwall carbon nanotube nanofillers. Environmental Technology, 46(9), 1507–1518.

Sewwandi, B. V. N., Kumarasinghe, A. R., Wu, Z., Bandara, P., Jayarathne, L., … (2023). Size-tunable graphitized carbon spheres for water defluoridation. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 670, 131582.

Sewwandi, B. V. N., Kumarasinghe, A. R., Tushara, D., Wijesingha, H., … (2021). Fabrication of size-tunable graphitized carbon spheres with hierarchical surface morphology on p-Si (100) by chemical vapour deposition. Sri Lankan Journal of Physics, 22(1), 80–90.

Sewwandi, B. V. N., Kumarasinghe, A. R., Chen, X., Bandara, P., Jayarathna, L., … (2025). A novel fabrication method of vertically aligned carbon nanotubes by single-stage floating catalyst CVD. BMC Chemistry, 19(1), 89.

Wu, Z., Sewwandi, B. V. N., Deegala, H., Kuruppu, K., Chandrasekara, E., … (2025). An integrated centrifugal microfluidic chip for in situ chemical oxygen demand by improving the conventional dichromate method. Chemical Engineering Research and Design. Advance online publication.

Jayasinghe, D. M., Weerathunga, D. T. D., Kumarasinghe, A. R., Manathunga, K. S., Sewwandi, B. V. N., … (2024). Investigation of electrical properties of composite dipped films developed with electrically conductive carbon nanotube (CNT)-natural rubber latex (NRL). Faculty of Science, University of Ruhuna, Matara, Sri Lanka.

Moletlanyi Tshipa | Theoretical Physics | Best Researcher Award

Dr. Moletlanyi Tshipa | Theoretical Physics | Best Researcher Award

University of Botswana | Botswana

Dr. Moletlanyi Tshipa is a distinguished Theoretical Physicist from Botswana, specializing in quantum physics, condensed matter, quantum computing, quantum gravity, and the optical properties of quantum structures. He holds a BSc (2003), MSc (2008), and PhD in Physics (2018), all from the University of Botswana, where he currently serves as a Senior Lecturer in the Department of Physics. With a career spanning over two decades, he has progressed from Teaching Assistant and Demonstrator to Lecturer and Senior Lecturer, mentoring numerous students and supervising advanced projects in quantum systems, relativity, nanomaterials, and cosmology. His research has produced more than 25 scientific documents with 92 citations and an h-index of 6, including publications in prestigious journals such as Optical and Quantum Electronics, Universe, Physica Scripta, and Journal of Physics: Condensed Matter. Dr. Moletlanyi Tshipa’s contributions include pioneering work on photoionization cross-sections, quantum dots, nanoshells, and black hole thermodynamics. He has also served as a peer reviewer for leading journals and authored a book chapter on photoionization in nanostructures. Recipient of the International Research Award on Atomic, Molecular, and Optical Physics (2023), he is recognized for advancing fundamental science and quantum technologies. Outside academia, he enjoys reading physics literature, philosophy, poetry, observing nature, and art.

Profile: Scopus | Orcid | Google Scholar

Featured Publications

  • Tshipa, M., Winkoun, D. P., Nijegorodov, N., & Masale, M. (2018). Donor impurity binding energies of coaxial GaAs/AlxGa1− xAs cylindrical quantum wires in a parallel applied magnetic field. Superlattices and Microstructures, 116, 227–237.

  • Tshipa, M. (2012). The effect of confining electric potentials on binding energies in a spheroidal quantum dot. Indian Journal of Physics, 86(9), 807–812.

  • Tshipa, M. (2014). Oscillator strength for optical transitions in a cylindrical quantum wire with an inverse parabolic confining electric potential. Indian Journal of Physics, 88(8), 849–853.

  • Tshipa, M. (2021). Second and third harmonic generation in linear, concave and convex conical GaAs quantum dots. Superlattices and Microstructures, 159, 107031.

  • Tshipa, M., & Nkoni, G. A. (2020). Donor binding energies in a spherical core–shell quantum dot: Parabolic and shifted parabolic shell potentials. Indian Journal of Physics, 94(5), 633–638.

Bhishma Karki | Physics | Best Researcher Award

Dr. Bhishma Karki | Physics | Best Researcher Award

Tri-Chandra Multiple Campus | Nepal

Dr. Bhishma Karki is a distinguished physicist and academic leader from Nepal, currently serving as the Executive Chairman of the National Research Council Nepal. He also holds positions as Visiting Professor at the Department of Physics and Research Centre, Tuljaram Chaturchand College, Pune, India, and Visiting Faculty at the Department of Physics, Tri-Chandra Multiple Campus, Tribhuvan University, Kathmandu. Dr. Bhishma Karki earned his B.Sc. in Physics from National Multiple College, M.Sc. in Material Science from the University of Pune, and a Ph.D. in Material Science from Tribhuvan University with a thesis on “Photoelectrocatalytic Purification of Water Using Spray-Deposited Zinc Oxide Thin Films.” With over 57 publications in SCI and Scopus-indexed journals, his research focuses on surface plasmon resonance sensors, photocatalysis, and material science applications in water purification and cancer detection. He has actively participated in numerous international workshops and conferences across Russia, the UK, France, Germany, Italy, and Australia, including UNFCCC and UNCBD conferences. Dr. Bhishma Karki serves as Academic Editor or Editorial Board member for journals like PLOS ONE, Frontiers in Oncology, Scientific Reports, and Wiley’s Journal of Sensors. Recognized with Nepal Vidyabhushan “A” award in 2023, he is a life member of multiple technical societies and actively contributes to community development while promoting scientific research and education in Nepal.

Profile: Google Scholar

Featured Publications

  • Karki, B., Vasudevan, B., Uniyal, A., Pal, A., & Srivastava, V. (2022). Hemoglobin detection in blood samples using a graphene-based surface plasmon resonance biosensor. Optik, 270, 169947.

  • Karki, B., Uniyal, A., Pal, A., & Srivastava, V. (2022). Advances in surface plasmon resonance–based biosensor technologies for cancer cell detection. International Journal of Optics, 2022(1), 1476254.

  • Karki, B., Pal, A., Singh, Y., & Sharma, S. (2022). Sensitivity enhancement of surface plasmon resonance sensor using 2D material barium titanate and black phosphorus over the bimetallic layer of Au, Ag, and Cu. Optics Communications, 508, 127616.

  • Karki, B., Uniyal, A., Chauhan, B., & Pal, A. (2022). Sensitivity enhancement of a graphene, zinc sulfide-based surface plasmon resonance biosensor with an Ag metal configuration in the visible region. Journal of Computational Electronics, 21(2), 445–452.

  • Karki, B., Sarkar, P., Dhiman, G., Srivastava, G., & Kumar, M. (2024). Platinum diselenide and graphene-based refractive index sensor for cancer detection. Plasmonics, 19(2), 953–962.

Muhammad Bilal | Mathematical Physics | Best Researcher Award

Dr. Muhammad Bilal | Mathematical Physics | Best Researcher Award

Dr. Muhammad Bilal, Shanghai University, China

Dr. Muhammad Bilal (b. 1988) is a dedicated researcher in Applied Mathematics, with a Ph.D. from Zhengzhou University, China 🇨🇳, specializing in soliton solutions for nonlinear dynamical models. His passion lies in advancing partial differential equations to solve real-world challenges 🌍. With over 60 peer-reviewed publications 📚, Dr. Bilal is committed to global knowledge dissemination, interdisciplinary innovation, and mathematical mentorship 🧠. He holds multiple degrees from Pakistan 🇵🇰, including M.Phil. and M.Sc. in Mathematics. Actively collaborating internationally, he aims to influence policy and promote the societal impact of mathematics.

Publication Profile

Google Scholar

Educational Background

Dr. Muhammad Bilal holds a Ph.D. in Applied Mathematics 🎓 from Zhengzhou University, China 🇨🇳 (2019–2023), where he explored exact soliton solutions for nonlinear dynamical models under Prof. Dr. Jingli Ren. He earned his M.Phil. in Mathematics 📐 from Minhaj University Lahore (2015–2017), focusing on differential equations in optical fibers. Earlier, he completed an M.Sc. and B.Sc. in Mathematics 📊, and a B.Ed. in professional education, all from the University of the Punjab 🇵🇰. His academic journey began with F.Sc. in Pre-Engineering and Matriculation 🧮 from B.I.S.E. Gujranwala, showcasing his strong foundation in science and mathematics.

🔍 Research Focus

Dr. Muhammad Bilal’s research is deeply rooted in Applied Mathematics 🧮, particularly the study of nonlinear partial differential equations (PDEs) and soliton theory 🌊. His work explores optical solitons, modulation instability, and analytical wave structures in nonlinear optical fibers, plasma physics, and ferromagnetic materials 🔬. With applications in nonlinear optics, fiber communication, and quantum electronics ⚡, he employs advanced analytical and computational methods to model and solve complex dynamical systems. His highly cited publications reflect interdisciplinary impact across physics, engineering, and mathematical modeling 📈, highlighting his contribution to theoretical innovation and applied science.

🏆 Conclusion

Dr. Muhammad Bilal is highly suitable for the Research for Best Researcher Award. His profile embodies the values of scholarly excellence, global relevance, and real-world impact—core pillars of this prestigious recognition.

Publication Top Notes

📘 Dispersive wave solutions to DGH system and MI analysis, 130 citations 📊, 2021 📅
📘 Analytical wave structures in plasma via Gilson-Pickering equation, 125 citations 📊, 2021 📅
📘 Modulation instability & solutions to modified NLS equation, 109 citations 📊, 2020 📅
📘 Optical bright–dark & Gaussian solitons with TOD, 96 citations 📊, 2017 📅
📘 Exact wave solutions to (2+1)D Chiral NLS equation, 72 citations 📊, 2021 📅
📘 Exact solitons in monomode optical fibers, 64 citations 📊, 2023 📅
📘 Wave structures to Chen–Lee–Liu equation & MI analysis, 56 citations 📊, 2021 📅
📘 Solitary waves in 3D-FWBBM shallow water model, 54 citations 📊, 2021 📅
📘 Lump & breather solutions to Pavlov equation, 53 citations 📊, 2022 📅
📘 Pure-cubic optical solitons & stability, 52 citations 📊, 2021 📅
📘 Solitons in nonlinear Schrödinger model, 48 citations 📊, 2021 📅
📘 Optical solitons in birefringent fibers with FWM, 46 citations 📊, 2020 📅
📘 Solitary wave solutions in conformable Schrödinger system, 45 citations 📊, 2022 📅
📘 Soliton structures in double dispersive equation, 43 citations 📊, 2022 📅

Lorena Aguirre Salazar | Quantum Physics | Best Researcher Award

Dr. Lorena Aguirre Salazar | Quantum Physics | Best Researcher Award

Dr. Lorena Aguirre Salazar, Texas A&M University-Corpus Christi, United States

Dr. Lorena Aguirre Salazar is a passionate mathematician specializing in pattern formation, variational models, and PDEs. She earned her Ph.D. in Mathematics from McMaster University 🇨🇦, with prior studies at Technion 🇮🇱 and Universidad Nacional de Colombia 🇨🇴. Dr. Aguirre has taught at institutions across North and South America, including Texas A&M–Corpus Christi 🇺🇸, and has presented her research globally. She actively promotes equity, inclusion, and belonging in mathematics education 🎓. Her work is published in top journals such as SIAM J. Math. Anal. and BLMS

Publication Profile

Google Scholar

🎓 Educational Background

Dr. Lorena Aguirre Salazar holds a Ph.D. in Mathematics (2016–2021) from McMaster University 🇨🇦, where she researched energy models under the guidance of Drs. Stan Alama and Lia Bronsard. She earned her M.Sc. in Applied Mathematics (2012–2014) at Technion – Israel Institute of Technology 🇮🇱, focusing on semi-linear elliptic systems. She completed her B.Sc. in Mathematics (2009–2011) at Universidad Nacional de Colombia 🇨🇴. In 2010, she attended exchange and summer programs in Chile 🇨🇱 and Brazil 🇧🇷, gaining additional training in Fourier analysis, PDEs, measure theory, and functional analysis.

🔬 Research Interests

Dr. Lorena Aguirre Salazar’s research focuses on pattern formation within the framework of the Calculus of Variations and Partial Differential Equations (PDEs) 🧮. Her work explores the mathematical structures that govern complex physical and biological phenomena. Beyond theoretical mathematics, she is deeply engaged in higher education research, emphasizing community building and a sense of belonging among students in mathematics classrooms 👩‍🏫🤝. She advocates for inclusive teaching practices that foster emotional and social well-being alongside academic growth 🎓💬. Her interdisciplinary approach bridges rigorous analysis with impactful educational methodologies.

🎓 Professional Development

Dr. Lorena Aguirre Salazar has actively pursued diverse professional development initiatives to enhance both her mathematical and educational expertise 🌟. She completed a directed study in 2025 on social and emotional learning in mathematics education 🧠❤️. She was part of the TPSE Leadership Institute (2022–2023), focusing on building community in post-secondary math education 🏫🤝. Dr. Aguirre also earned multiple online specializations and certificates from leading universities on topics such as virtual teaching, diversity, inclusion, accessibility, and mental health support 💻🌍. At McMaster University, she completed several teaching-focused certifications, including Instructional Skills and Learning Foundations

👩‍🏫 Professional Experience

Dr. Lorena Aguirre Salazar has amassed a dynamic teaching and research portfolio across North and South America 🌎. She currently serves as a faculty member at Texas A&M University–Corpus Christi, teaching courses in statistical modeling, calculus, and fundamental mathematics 📊🧮. She has held roles as a part-time instructor at Niagara College (Canada) and Assistant Professor at Lakehead University and Valdosta State University, covering diverse mathematical topics from numerical analysis to vector analysis 🔢📐. Her academic journey includes instructor and teaching assistant roles at McMaster University, as well as prior experience in Colombia at Universidad Nacional and Universidad de Caldas 🇨🇴🎓

🔬 Research Focus

Dr. Lorena Aguirre Salazar’s research lies at the intersection of applied mathematics, particularly in partial differential equations (PDEs) and the calculus of variations 🧮🌀. Her work addresses complex models like the Thomas-Fermi-Dirac-von Weizsäcker (TFDW) theory and Ohta–Kawasaki models, with applications in quantum mechanics and materials science ⚛️🧊. She explores pattern formation, mass splitting phenomena, and energy convergence in physical systems. Her mathematical modeling extends to theoretical physics and functional analysis 🔍📈. Additionally, Dr. Aguirre Salazar is passionate about mathematics education, focusing on community building and inclusion in academic settings

Publication Top Notes

📄 A remark on weakly contractive mappingsJournal of Nonlinear and Convex Analysis, 2015 | Cited by: 33 🔁
📄 Mass splitting in the Thomas–Fermi–Dirac–von Weizsäcker model with background potentialJournal of Mathematical Physics, 2020 | Cited by: 4 🔬
📄 Convergence of the TFDW Energy to the Liquid Drop ModelSIAM Journal on Mathematical Analysis, 2021 | Cited by: 1 📘
📄 An Ohta–Kawasaki model set on the spaceBulletin of the London Mathematical Society, 2024 | Cited by: — 🧩
📄 Solutions and limits of the Thomas-Fermi-Dirac-Von Weizsäcker energy with background potential – Dissertation, 2021 | Cited by: — 🎓

Tianyu Wu | Nuclear Physics | Best Researcher Award

Dr. Tianyu Wu | Nuclear Physics | Best Researcher Award

Dr. Tianyu Wu at Beihang university, China

Tianyu Wu 🎓 is a dedicated Ph.D. candidate in Physics at Beihang University, Beijing, with a strong foundation in nuclear physics and a B.Sc. in Physics from Yanbian University. With expertise in Python, Fortran, and C++ 💻, Tianyu actively engages in collaborative research projects, academic writing, and data analysis 📊. Known for excellent time management ⏰, teamwork 🤝, and adaptability 🌱, he contributes meaningfully to academic and scientific environments. Currently focused on advancing his research skills and scientific understanding, Tianyu is passionate about exploring new frontiers in physics and aims to make a lasting impact in the field 🌌. His proactive attitude and commitment to excellence position him as a promising young researcher on the rise 🚀.

Publication Profile

Scopus

Academic Background

Tianyu Wu is a passionate and ambitious Ph.D. candidate in Physics at Beihang University, Beijing 🏛️. He holds a Bachelor of Science degree in Physics from Yanbian University, Jilin Province 📘. Currently pursuing advanced research in nuclear physics, he is developing a strong academic and technical foundation, with an expected M.Sc. in Nuclear Physics by 2028 📚. Tianyu is skilled in programming languages such as Python, Fortran, and C++ 💻, which he effectively applies in his research projects. Throughout his academic journey, he has demonstrated excellent teamwork 🤝, time management ⏰, and research abilities 🔬. His enthusiasm for scientific exploration and dedication to learning make him a promising young scholar with the potential to contribute significantly to the field of physics 🌌.

Professional Experience

Tianyu Wu is a dynamic and motivated Ph.D. student in Physics at Beihang University, Beijing 🏛️. Since 2024, he has been actively involved in collaborative research projects, contributing to professional deliverables through strong teamwork and problem-solving skills 🤝. He is proficient in programming languages such as Python, Fortran, and C++ 💻, which he uses for data analysis and simulation in academic research 📊. Tianyu demonstrates excellent time management ⏰ and organizational abilities, often taking initiative in project planning and execution. His experience includes conducting literature reviews 📚, working in lab environments 🔬, and delivering high-quality presentations 🗣️. Passionate about scientific innovation and continuous learning, Tianyu is committed to developing his expertise and making impactful contributions to the field of physics .

Awards and Honors

While Tianyu Wu is currently building his research career as a Ph.D. candidate at Beihang University 🎓, he has already been recognized for his strong work ethic, punctuality, and teamwork skills 🤝. Though formal awards and honors are still forthcoming, Tianyu’s dedication to academic excellence and consistent performance have earned him positive recognition from peers and mentors 👏. His commitment to time management ⏰ and high-quality project delivery has contributed to successful group outcomes. As he continues to advance in his studies and research, Tianyu is poised to achieve significant accolades in the future 🌟. His enthusiasm and perseverance make him a promising candidate for upcoming awards and honors in the scientific community 🔬.

Research Focus

Tianyu Wu is deeply engaged in advanced research in the field of Physics, with a specific focus on nuclear physics and computational modeling 🌐. As a Ph.D. candidate at Beihang University 🏛️, he is exploring complex physical systems using programming tools such as Python, Fortran, and C++ 💻 to simulate and analyze data-driven results 📊. His research involves detailed theoretical investigations and practical applications, aiming to uncover new insights into atomic and subatomic structures 🌟. Tianyu is passionate about scientific discovery and is constantly expanding his knowledge through scholarly literature 📚 and experimental techniques. With a curious mind and strong analytical skills 🧠, he is committed to contributing meaningful advancements to the field of physics and modern science 🚀.

Publication Top Notes

Full realization of the RIBLL2 separator at the HIRFL-CSR facility 🧪
Year: 2025 📅

Conclusion

Dr. Tianyu Wu is a highly promising early-career researcher and a strong candidate for the Research for Best Researcher Award. As a Ph.D. candidate in Physics at the prestigious Beihang University, he has built a solid academic foundation with degrees in Physics and Nuclear Physics. His research contributions include co-authorship in notable publications such as the 2025 Science Bulletin and several arXiv preprints covering optics, condensed matter, and nuclear/accelerator physics. Tianyu’s involvement in cutting-edge projects like the realization of the RIBLL2 separator at HIRFL-CSR and his work on laser-plasma interaction diagnostics demonstrate his innovative and interdisciplinary approach. With strong technical skills in Python, Fortran, and C++ and recognized teamwork and time management abilities, Tianyu shows great potential and research excellence, making him well-suited for this award.

 

 

Teodoro Rivera | Radiation physics | Research and Development Excellence Award

Teodoro Rivera | Radiation physics | Research and Development Excellence Award

Profesor, National Polytechnic Institute, Mexico

Teodoro Rivera Montalvo is a distinguished Research Professor at the Center for Research in Applied Science and Advanced Technology (CICATA), National Polytechnic Institute, Mexico City. Born on March 13, 1966, in Zoquitlán, Puebla, Dr. Rivera holds a Chemical Engineering degree from Universidad Veracruzana, an MSc in Physics, and a Doctor of Science in Physics from Universidad Autónoma Metropolitana-Iztapalapa. Renowned for his work in thermoluminescence and photoluminescence, his groundbreaking research has advanced radiation dosimetry and material science. With numerous peer-reviewed publications, he is an accomplished academic and innovator. Proficient in English, French, and Italian, he actively contributes to international collaborations. His dedication to teaching, research, and institutional projects has earned him recognition as a Level II member of Mexico’s National System of Researchers. 🌿

Publication Profile

Orcid

🎓 Education

Dr. Rivera’s academic journey began with a Chemical Engineering degree from Universidad Veracruzana, where he excelled in the study of thermoluminescent dosimeters. He further specialized in Physics at Universidad Autónoma Metropolitana-Iztapalapa, obtaining an MSc in 1997 with a thesis on the application of α-Al2O3:C and ZrO2:TR in non-ionizing radiation dosimetry. In 2002, he completed his Doctor of Science in Physics, focusing on thermoluminescent and photoluminescent materials for ionizing radiation dosimetry. His education laid a solid foundation for his innovative research in nanostructured materials and dosimetry, contributing significantly to advancements in medical and industrial applications. 📘

💼 Experience

Since 1999, Dr. Rivera has been a Research Professor at CICATA, National Polytechnic Institute. He teaches advanced physics, material science, and radiation safety while mentoring postgraduate students. His expertise includes the development of thermoluminescent and photoluminescent dosimeters, with applications in medical radiotherapy and environmental monitoring. Dr. Rivera has contributed to multiple Conacyt-funded projects, focusing on nanostructured ceramics and in vivo dosimetry systems. Recognized for his interdisciplinary approach, he collaborates internationally, advancing radiation protection standards. His dedication to research, teaching, and institutional development has solidified his reputation as a leader in the field.

🏅  Skills

Dr. Rivera possesses expertise in advanced material science, specializing in thermoluminescence and photoluminescence for dosimetry. He is proficient in MATLAB programming, radiation safety protocols, and nanostructured material characterization. His skills extend to interdisciplinary research, curriculum development, and mentoring postgraduate students. Dr. Rivera is fluent in English, French, and Italian, facilitating international collaboration. His technical proficiencies and academic leadership have made him a pivotal figure in radiation dosimetry research and education.

Award and Honors

Dr. Rivera’s exceptional contributions have earned him numerous accolades. As a Level II member of Mexico’s National System of Researchers (2025–2029), he is recognized for his impactful work in physics and material science. He holds prestigious appointments under COFAA and EDI programs, reflecting his academic excellence. His pioneering research in radiation dosimetry and innovative use of nanostructured materials has received national and international recognition. Dr. Rivera’s awards underscore his dedication to advancing knowledge and improving radiation safety standards.

🔎 Research Focus

Dr. Rivera’s research centers on the development and characterization of advanced dosimetric materials, particularly those with thermoluminescent and photoluminescent properties. His work addresses key challenges in radiation dosimetry, including accuracy in in vivo applications for radiotherapy and radiosurgery. He explores the properties of nanostructured ceramics to enhance their effectiveness in detecting ionizing and non-ionizing radiation. Additionally, his research extends to environmental monitoring and industrial applications of dosimetry. Through interdisciplinary collaborations and cutting-edge techniques, Dr. Rivera contributes to innovations in radiation safety and material science.

Publication Top Notes

Authors: Úbeda C., Vano E., Perez M., et al.
Title: Paediatric interventional cardiology: setting regional Diagnostic Reference Levels in Latin America and the Caribbean countries.
Citation: Journal of Radiation Protection (2022), 42.
Year: 2022

Authors: Carlos A. Úbeda, Dario I. Martínez, Luis C. Ramos, et al.
Title: First local diagnostic reference levels for fluoroscopically guided cardiac procedures in adult patients in Chile.
Citation: Nuclear Technology & Radiation Protection, Vol. 37 (1) 84-89.
Year: 2022

Authors: Alejandro Alonso Sotolongo, Teodoro Rivera Montalvo, Daniel Nolasco Altamirano, et al.
Title: Thermoluminescence analysis of beta particle irradiated Gd1-xEuxAlO3 phosphors.
Citation: Applied Radiation and Isotopes, 190 (2022) 110471.
Year: 2022

Authors: N. Vázquez-Flores, E.R. Vázquez-Cerón, M. Osorio-Valero, et al.
Title: Thermoluminescent response of LaAlO3:Pr3+ under X-ray beams effect.
Citation: J. of Physics Conference Series, 2307 (2022) 012046.
Year: 2022

Authors: Raúl Isaac López-Esquivel, Juan Carlos Guzmán-Olguín, Ismael A. Garduño-Wilches, et al.
Title: Fluorescence intensity ratio for BaHfO3:Eu3+ temperature sensor.
Citation: Applied Radiation and Isotopes, 191 (2023) 110529.
Year: 2023

Authors: R.I. López-Esquivel, J.C. Guzmán-Olguín, N. Vázquez-Flores, et al.
Title: Green synthesis, structural and luminescent characterization of BaZrO3:Eu3+ nanoparticles.
Citation: Ceramics International, 49 (2023) 413-418.
Year: 2023

Authors: M.A. Ugalde-Valdés, D. Nolasco-Altamirano, L.E. López-Ruiz, et al.
Title: TL glow curve and kinetic analysis of Na2SiO3:Pr3+ under beta radiation effect.
Citation: Applied Radiation and Isotopes, 198 (2023) 110850.
Year: 2023

Authors: Ch. J. Salas-Juarez, M.A. Ugalde-Valdés, J. Guzmán-Mendoza, et al.
Title: Persistent luminescence of commercial TLD-100 dosimeter using shallow traps for radiation dosimetry.
Citation: Radiation Measurements, 167 (2023) 106997.
Year: 2023

Authors: V. Correcher, C. Boronat, J. García-Guinea, et al.
Title: Thermoluminescence characterization of natural and synthetic irradiated Ce-monazites.
Citation: Journal of Rare Earths, 42 (2024) 643-650.
Year: 2024

Authors: N. Vázquez-Flores, Ch. J. Salas-Juarez, R.I. López-Esquivel, et al.
Title: Thermally stimulated luminescence of BaZrO3:Eu3+ nanopowders for dosimetric applications.
Citation: Optical Materials, 147 (2024) 114740.
Year: 2024

Authors: A. Alonso Sotolongo, T. Rivera Montalvo, J. Zarate Medina.
Title: Influence of the synthesis pathway upon the thermoluminescent response of gadolinium aluminate matrix phosphors.
Citation: Journal of Physics: Conference Series, 2726 (2024) 012002.
Year: 2024

Authors: Daniel Nolasco-Altamirano, Alejandro Alonso-Sotolongo, José Francisco Benavente-Cuevas, et al.
Title: Kinetic parameters analysis of GDAlO3 based on thermoluminescent phenomenon.
Citation: Phys. Status Solidi B, 2024, 2400381.
Year: 2024

Authors: Y.O. Villafañe-Bautista, Ch. J. Salas-Juarez, J. Guzmán-Mendoza, et al.
Title: Li2B4O7 phosphor for beta particle dosimetry: Synthesis, structural, and thermoluminescence performance.
Citation: Journal of Solid State Chemistry, 343 (2025) 125163.
Year: 2025

Dmitry Yakovlev | Condescend matter physics | Young Scientist Award

Dr. Dmitry Yakovlev | Condescend matter physics | Young Scientist Award

Dr. Dmitry Yakovlev, PSL Research University, ParisTech (Paris Institute of Technology), France

Dr. Dmitry Yakovlev, currently a Postdoctoral Researcher at École supérieure de physique et de chimie industrielles de la Ville de Paris (ESPCI), specializes in condensed matter physics, focusing on superconducting quantum phenomena. With a Ph.D. from Moscow Institute of Physics and Technology (MIPT), his expertise spans nanofabrication, quantum computing, and Josephson junctions. Dmitry has contributed to advancements in single photon detectors and hybrid superconducting systems, as evidenced by his publications in leading journals. Passionate about teaching and research, he engages in international conferences and enjoys football, skiing, and diving. 🧬🔬

 

Publication profile

Orcid

👨‍🔬 Education

Dmitry Yakovlev pursued his academic journey at Moscow Institute of Physics and Technology (MIPT), achieving a B.S. and M.S. in Applied Mathematics and Physics, followed by a Ph.D. in Applied Engineering and Physics. Currently, he is a postdoctoral researcher at Paris Sciences et Lettres University, specializing in Solid State Physics

👨‍💼 Work Experience

He has contributed significantly as a researcher at institutions like the Russian Quantum Center and Moscow Institute of Physics and Technology, focusing on superconducting quantum phenomena and topological insulators.

Research Focus

Dmitry S. Yakovlev is a prominent researcher specializing in hybrid superconducting systems and topological insulators. His work focuses on experimental studies and theoretical advancements in quantum phenomena, particularly in devices like superconducting junctions and nanocrystals of Bi2Te2.3Se0.7. Yakovlev’s contributions extend to resonant oscillations of Josephson currents and anomalous microwave responses in topological superconductors. His research, published in leading journals such as Advanced Quantum Technologies and Symmetry, underscores his expertise in controlling non-classical field states using solid-state qubits. 🧪 His interdisciplinary approach merges physics and materials science to advance quantum technologies, making significant strides in the field of nanoelectronics and superconductivity.

 

Publication Top Notes

  • Solid‐State Qubit as an On‐Chip Controller for Non‐Classical Field States
    • Published in 2024, cited by Advanced Quantum Technologies.
    • 📄
  • Experimental study of the quantum phenomena in hybrid superconducting systems based on topological insulators
    • Published in 2024, cited by Higher School of Economics (HSE).
    • 📖
  • Multilayer Bolometric Structures for Efficient Wideband Communication Signal Reception
    • Published in 2024, cited by Nanomaterials.
    • 📚
  • Anomalous microwave response in the dissipative regime of topological superconducting devices based on Bi<sub>2</sub>Te<sub>2.3</sub>Se<sub>0.7</sub>
    • Published in 2023, cited by ArXiv.
    • 📝
  • Controlling I-V Hysteresis in Al/Pt Bilayer Symmetric SQUIDs at Millikelvin Temperatures
    • Published in 2023, cited by Symmetry.
    • 📊
  • Resonant Oscillations of Josephson Current in Nb-Bi<sub>2</sub>Te<sub>2.3</sub>Se<sub>0.7</sub>-Nb Junctions
    • Published in 2022, cited by Advanced Quantum Technologies.
    • 🌐
  • The Performance of Nonwoven PLLA Scaffolds of Different Thickness for Stem Cells Seeding and Implantation
    • Published in 2022, cited by Polymers.
    • 🎓
  • Superconductivity in Hierarchical 3D Nanostructured Pb–In Alloys
    • Published in 2022, cited by Symmetry.
    • 🌌
  • Physical Vapor Deposition Features of Ultrathin Nanocrystals of Bi2(TexSe1–x)3
    • Published in 2022, cited by The Journal of Physical Chemistry Letters.
    • 🌟
  • Subjective Distance Estimates and Sense of Agency in Robotic Wheelchair Control
    • Published in 2022, cited by Applied Sciences.
    • 🤖

 

Muhammad Mubashir | Condensed Matter Physics | Best Researcher Award

Mr. Muhammad Mubashir | Condensed Matter Physics | Best Researcher Award

Mr. Muhammad Mubashir, University of Education Township Lahore, Pakistan

Muhammad Mubashir is a dedicated researcher in computational materials science, specializing in first-principles calculations and simulations. He holds an MS in Physics, focusing on the electronic properties of 2D materials. His expertise spans hydrogen storage materials, low-dimensional structures, and gas sensing materials. Muhammad is proficient in Quantum ESPRESSO and CASTEP, and has contributed significantly to understanding material behaviors through theoretical investigations. With multiple publications and active participation in scientific conferences, he continues to explore advanced energy storage materials and their computational design.

Publication profile

Academic Background 📚

Muhammad completed his MS/MPhil in Physics from the University of Education, Township, Lahore, Pakistan, where his thesis delved into the structural and electronic properties of 1T phase zirconium dioxide via first-principles calculations.

Research Focus 🌱

Muhammad Mubashir’s research primarily centers on computational simulation and first-principles calculations of advanced materials, particularly focusing on hydrogen storage and perovskite-type hydrides. His work spans the investigation of structural, optoelectronic, and thermal properties of various materials using Quantum ESPRESSO and CASTEP. He explores novel strategies such as chemical doping and material tuning to enhance hydrogen storage capabilities. Muhammad’s contributions extend to understanding electronic structures and mechanical stability in materials like fluoroperovskites, essential for applications in solar energy and solid-state technologies. His research underscores a commitment to advancing sustainable energy solutions through innovative computational modeling. 🌐

Duo Xu | Physics and Astronomy | Best Researcher Award

Duo Xu | Physics and Astronomy | Best Researcher Award

Dr Duo Xu,Department of Astronomy, University of Virginia,United States

Dr. Duo Xu, an Origins Postdoctoral Fellow at the University of Virginia, specializes in star formation, molecular clouds, and machine learning in astrophysics 🌌. With a Ph.D. from the University of Texas at Austin and M.A. from the National Astronomical Observatories, Chinese Academy of Sciences, Dr. Xu’s research focuses on magnetohydrodynamic simulations and synthetic observations to understand stellar feedback and magnetic fields. Their pioneering work combines AI and astronomy, contributing extensively to conferences and prestigious publications. Dr. Xu’s multidisciplinary approach sheds light on the complex dynamics of the universe. 🚀

Publication profile

scopus

Education

Duo Xu holds a Ph.D. from the University of Texas at Austin, where they were advised by Professor Stella Offner. Prior to this, they earned a Master of Arts in Astrophysics from the National Astronomical Observatories, Chinese Academy of Sciences, under the guidance of Professor Di Li. Their academic journey began with a Bachelor of Science in Astronomy from Nanjing University.

Research Experience

Duo Xu’s research experience is extensive and diverse. Their postdoctoral work at the University of Virginia involves applying machine learning techniques to infer physical properties related to molecular clouds, particularly magnetic fields. During their graduate studies, they conducted magnetohydrodynamic simulations, synthesized observations, and applied machine learning algorithms to identify stellar feedback mechanisms. Prior research at Nanjing University and the National Astronomical Observatories, Chinese Academy of Sciences, focused on identifying stellar feedback in observations, analyzing molecular and atomic spectra, and studying the physical and chemical evolution of the interstellar medium.

Awards & Honors

 

Xu has received numerous awards and honors throughout their academic and professional career, including prestigious fellowships and scholarships such as The Eric and Wendy Schmidt AI in Science Postdoctoral Fellowship and the David Alan Benfield Memorial Scholarship in Astronomy.

Professional Experience

Xu has presented their research at various conferences and colloquia worldwide, showcasing their expertise in topics ranging from machine learning applications in astronomy to the physical properties of molecular clouds.

 

Research focus

Duo Xu’s research focus lies at the captivating intersection of 🌌 astrophysics and 🧠 machine learning. With a keen eye on star formation processes and the dynamics of molecular clouds, Xu employs cutting-edge techniques like magnetohydrodynamic simulations and synthetic observations. Their work delves into unraveling the mysteries of stellar feedback, turbulence, and magnetic fields within these cosmic nurseries. By integrating machine learning into the analysis of astronomical data, Xu pioneers innovative methods to infer physical properties, enhancing our understanding of the intricate mechanisms shaping the cosmos.

Publication top notes

Surveying image segmentation approaches in astronomy

Polarized Light from Massive Protoclusters (POLIMAP). I. Dissecting the Role of Magnetic Fields in the Massive Infrared Dark Cloud

Disk Wind Feedback from High-mass Protostars. III. Synthetic CO Line Emission

Predicting the Radiation Field of Molecular Clouds Using Denoising Diffusion Probabilistic Models

CMR Exploration. II. Filament Identification with Machine Learning

Denoising Diffusion Probabilistic Models to Predict the Density of Molecular Clouds

CMR Exploration. I. Filament Structure with Synthetic Observations

Application of Convolutional Neural Networks to Predict Magnetic Fields’ Directions in Turbulent Clouds

A Census of Outflow to Magnetic Field Orientations in Nearby Molecular Clouds

A Census of Protostellar Outflows in Nearby Molecular Clouds