Al-Emam Omar | Experimental Physics | Best Researcher Award

Assoc Prof Dr. Al-Emam Omar | Experimental Physics | Best Researcher Award

Assoc Prof Dr. Al-Emam Omar, Mansoura university, Egypt

Based on the provided details, Associate Professor Dr. Al-Emam Z. Omar would be a strong candidate for the Best Researcher Award. Hereā€™s a summary of why he is suitable

Publication profile

Academic and Professional Background

  • Dr. Al-Emam Z. Omar is an Associate Professor in the Physics Department at Mansoura University, Egypt. His academic journey spans from being a demonstrator to becoming an associate professor, indicating a steady and impactful career progression in experimental physics.

Research Expertise

  • Specialization: Dr. Omar specializes in optical interferometric techniques, digital holography, and opto-mechanical investigations. His work extends to advanced topics like machine learning applications in image processing, which demonstrates a cross-disciplinary approach.
  • Notable Contributions: His research includes 24 publications with significant citations (242 in Scopus and 264 in Google Scholar) and an h-index of 11, reflecting the impact and relevance of his research in the field of physics.

Awards and Recognition

  • Dr. Omar received the Best Doctoral Thesis Award from Mansoura University in 2020, recognizing the quality and impact of his research work.
  • He is listed among the world’s top 2% of scientists according to Stanford University in 2023, highlighting his global recognition and influence in the scientific community.
  • He has been acknowledged as a reviewer for multiple reputable journals, which showcases his expertise and credibility in the scientific community.

Research Projects

  • Dr. Omar has contributed significantly to upgrading research facilities, such as the optics laboratory at Mansoura University, for advanced characterization of fibers and materials, funded by the Science and Technology Development Fund (STDF).

Publication Top Notes

  • šŸ“˜ A novel hybrid model based on integrating RGB and YCrCb color spaces for demodulating the phase map of fibers using a color phase-shifting profilometry technique (2024) ā€“ 1 citation
  • šŸ”¬ The influence of degradation in different pH buffer solutions on the optical and durability properties of Monocryl suture: (an in vitro study) (2024) ā€“ 1 citation
  • šŸ§µ A refined method for investigating the morphological and optical properties of a biodegradable monocryl suture (2023) ā€“ 1 citation
  • šŸ“š Optical microscope: interferometric and non-interferometric optical microscopy techniques (Book Chapter, 2023) ā€“ 0 citations
  • šŸ§Ŗ Phase estimation for investigating the optical and mechanical properties of Monocryl suture for soft tissue approximation and ligation (2022) ā€“ 4 citations
  • šŸ§« Interferometric accurate investigation of opto-thermo-mechanical features with help of artificial intelligence for antimicrobial polyamide-6 fibers grafted by quaternary ammonium salt with nano zinc oxide (2022) ā€“ 3 citations
  • šŸ¤– Adaptive investigation of the optical properties of polymer fibers from mixing noisy phase-shifting microinterferograms using deep learning algorithms (2022) ā€“ 8 citations
  • šŸŒ”ļø Investigation of the opto-thermo-mechanical properties of antimicrobial PET/TiO2 fiber using the transport of intensity equation technique (2022) ā€“ 2 citations
  • šŸŒ€ Adaptive demodulation for phase information and opto-mechanical properties of fibers from blurred digital holography pattern (2022) ā€“ 5 citations
  • šŸ“ A suggested optical setup for duplicated-image transport intensity equation technique to accurate determine the optical anisotropy in fibers (2021) ā€“ 2 citations

Conclusion

Dr. Al-Emam Z. Omarā€™s extensive research in experimental physics, combined with his recognition by international and national awards, positions him as a suitable candidate for the Best Researcher Award. His ongoing projects and consistent contributions to scientific literature underline his dedication to advancing knowledge and technology in his field.

 

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 Ɖcole supĆ©rieure 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. šŸ§¬šŸ”¬

 

Publication profile

Orcid

šŸ‘Øā€šŸ”¬ 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

šŸ‘Øā€šŸ’¼ 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. šŸ§Ŗ 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

  • Solidā€State Qubit as an Onā€Chip Controller for Nonā€Classical Field States
    • Published in 2024, cited by Advanced Quantum Technologies.
    • šŸ“„
  • Experimental study of the quantum phenomena in hybrid superconducting systems based on topological insulators
    • Published in 2024, cited by Higher School of Economics (HSE).
    • šŸ“–
  • Multilayer Bolometric Structures for Efficient Wideband Communication Signal Reception
    • Published in 2024, cited by Nanomaterials.
    • šŸ“š
  • 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.
    • šŸ“
  • Controlling I-V Hysteresis in Al/Pt Bilayer Symmetric SQUIDs at Millikelvin Temperatures
    • Published in 2023, cited by Symmetry.
    • šŸ“Š
  • 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.
    • šŸŒ
  • The Performance of Nonwoven PLLA Scaffolds of Different Thickness for Stem Cells Seeding and Implantation
    • Published in 2022, cited by Polymers.
    • šŸŽ“
  • Superconductivity in Hierarchical 3D Nanostructured Pbā€“In Alloys
    • Published in 2022, cited by Symmetry.
    • šŸŒŒ
  • Physical Vapor Deposition Features of Ultrathin Nanocrystals of Bi2(TexSe1ā€“x)3
    • Published in 2022, cited by The Journal of Physical Chemistry Letters.
    • šŸŒŸ
  • Subjective Distance Estimates and Sense of Agency in Robotic Wheelchair Control
    • Published in 2022, cited by Applied Sciences.
    • šŸ¤–

 

Dario Bercioux | Condensed Matter Physics | Best Researcher Award

Assist Prof Dr. Dario Bercioux | Condensed Matter Physics | Best Researcher Award

Assist Prof Dr. Dario Bercioux, Donostia International Physics Center, Spain

Dr. Dario Bercioux is an accomplished physicist specializing in theoretical condensed matter physics and nanoelectronics. Holding a Ph.D. from the University of Naples, he has held various prestigious research positions across Europe, including at the Donostia International Physics Center in Spain and the Dahlem Center for Complex Quantum Systems in Germany. His work focuses on mesoscopic systems and quantum phenomena in nanostructures. Dr. Bercioux is also actively involved in academic leadership and has organized several international physics schools. He contributes significantly to the field through his research, teaching, and mentoring activities. šŸŒšŸ”¬

 

Publication profile

Education

Dr. Dario Bercioux is currently a Tenured Research Associate at the Donostia International Physics Center in Spain since October 2019, where he leads the Mesoscopic Electrons and Photons System (MEPS) group. He began his career with a Ph.D. in Physics from the University of Naples in 2005, focusing on spin-dependent transport in nanostructures. His extensive postdoctoral research includes positions at prestigious institutions such as the University of Freiburg and the University of Regensburg in Germany. Dr. Bercioux has contributed significantly to theoretical condensed matter physics and nanoelectronics, evident from his tenure track roles and leadership in international research projects.

Teaching

Dr. Bercioux has organized and lectured at numerous international physics schools, emphasizing nanophysics and quantum mechanics. He has been involved in teaching advanced topics like nanoelectronics and quantum dynamics at universities in Germany and Italy. His research and teaching activities highlight his commitment to advancing knowledge in theoretical physics, particularly in understanding quantum phenomena in nanostructured materials. Dr. Bercioux continues to mentor and educate future physicists, fostering a deeper understanding of complex quantum systems. šŸŒŒšŸ“š

Research Focus

Dr. Dario Bercioux’s research primarily focuses on theoretical condensed matter physics, with a specialization in quantum transport phenomena and topological phases in various materials. His work spans topics such as the Rashba effect in spin-orbit materials, robust zero-energy modes in topological insulators, and engineering topological properties in photonic crystals. Through extensive publications and collaborations, he explores the theoretical underpinnings of quantum networks, electron polarization in topological insulators, and the behavior of Dirac fermions in optical lattices. Dr. Bercioux’s contributions significantly advance our understanding of complex quantum systems and their potential applications in future technologies. šŸŒŒšŸ”¬

Daljeet Kaur | Neutrino Physics | Best Researcher Award

Dr. Daljeet Kaur | Neutrino Physics | Best Researcher Award

Dr. Daljeet Kaur, SGTB Khalsa College, University of Delhi, India

šŸ‘©ā€šŸ”¬ Dr. Daljeet Kaur, a passionate physicist, holds a Ph.D. in Experimental Neutrino Physics from the University of Delhi. Her research, focused on neutrino oscillations, contributed to the India-based Neutrino Observatory (INO). As an Assistant Professor at S.G.T.B. Khalsa College, University of Delhi, she blends teaching with her research expertise. With awards like CSIR Fellowships and experience in workshops and conferences, she’s adept in HEP software and languages like C++, Python. Dr. Kaur’s journey intertwines curiosity with academic excellence, shaping the future of physics education. šŸ”¬

Publication Profile:

Scopus

 

Orcid

Google Scholar

Educational Background:

šŸ“š Dr. Daljeet Kaur embarked on a journey in physics, culminating in a Ph.D. in Experimental Neutrino Physics from the University of Delhi. Her research revolved around the India-based Neutrino Observatory (INO) Experiment, focusing on the development and characterization of RPC detectors. With her thesis centered on determining Neutrino Oscillation Sensitivity for the INO-ICAL detector, supervised by Prof. Md. Naimuddin, she delved deep into the mysteries of particle physics. Prior to her doctorate, she pursued a Bachelor’s in Education, specializing in Science Education, and holds a Master’s and Bachelor’s degree in Physics. Dr. Kaur’s academic journey embodies a pursuit of knowledge, marked by dedication and scholarly achievements. šŸŽ“

Academic Achievements, Awards & Honors:

šŸ† Dr. Daljeet Kaur’s academic journey shines with prestigious accolades and honors. She secured both Senior and Junior Research Fellowships from the Council of Scientific and Industrial Research (CSIR), acknowledging her contributions to scientific endeavors from 2010 to 2015. Dr. Kaur’s excellence extends to qualifying the Joint CSIR-UGC National Eligibility Test (NET-JRF) in 2009, paving the path for her research pursuits. Additionally, her proficiency in Physics earned her success in the Graduate Aptitude Test in Engineering (GATE) in the same year. These achievements stand as testament to her dedication and aptitude in the realm of scientific exploration. šŸŒŸ

Research Experience:

šŸ”¬ Dr. Daljeet Kaur’s research journey spans a significant period, commencing as a Ph.D. scholar from 2010 to 2016. During this time, she immersed herself in the intricacies of Experimental Neutrino Physics, contributing to the advancement of knowledge in this field. Following her doctoral studies, Dr. Kaur served as a Research Associate at the Department of Physics and Astrophysics, University of Delhi. Here, she engaged in a DST Project titled “R&D efforts by University Groups for INO project” from March 1, 2016, to July 25, 2016, consolidating her expertise and furthering scientific inquiry. Her dedication to research reflects her commitment to pushing the boundaries of scientific exploration. šŸŒŒ

Teaching Experience:

šŸ‘©ā€šŸ« Dr. Daljeet Kaur’s teaching odyssey began as a Guest Lecturer at SGTB Khalsa College, University of Delhi, in early 2016, where she imparted her knowledge and enthusiasm to students. Transitioning to an Assistant Professor role on an ad hoc basis from July 26, 2016, marked a significant step in her academic career, allowing her to deepen her pedagogical engagement. This role evolved into a permanent position from October 19, 2022, onwards, affirming her commitment to nurturing future generations of scholars. Dr. Kaur’s dedication to teaching, coupled with her passion for physics, creates an enriching learning environment for her students. šŸ“š

Research Focus:

šŸ” Dr. Daljeet Kaur’s research focuses on Experimental Neutrino Physics, particularly centered around the India-based Neutrino Observatory (INO) Experiment. Her work delves into various aspects of neutrino detection and oscillation studies, including the development and characterization of RPC detectors, determination of neutrino oscillation sensitivity, and exploration of atmospheric neutrino oscillation parameters. Through her contributions, Dr. Kaur strives to unravel the mysteries surrounding neutrinos, advancing our understanding of fundamental particle interactions. Her dedication to this fascinating field of research illuminates new pathways in the quest to comprehend the universe’s fundamental building blocks. šŸŒŒ

Publication Top Notes:

šŸ“šInvited review: Physics potential of the ICAL detector at the India-based Neutrino Observatory (INO)

šŸ“… Cited by: 254, Year: 2017 šŸŒŸ
šŸ“šHadron energy response of the Iron Calorimeter detector at the India-based Neutrino Observatory

šŸ“… Cited by: 62, Year: 2013 šŸŒŸ
šŸ“š Characterization of 3 mm glass electrodes and development of RPC detectors for INO-ICAL experiment

šŸ“… Cited by: 29, Year: 2015 šŸŒŸ
šŸ“š The sensitivity of the ICAL detector at India-based Neutrino Observatory to neutrino oscillation parameters

šŸ“… Cited by: 26, Year: 2015 šŸŒŸ
šŸ“š Search for the differences in atmospheric neutrino and antineutrino oscillation parameters at the INO-ICAL experiment

šŸ“… Cited by: 16, Year: 2017 šŸŒŸ
šŸ“š Characterisation of glass electrodes and RPC detectors for INO-ICAL experiment

šŸ“… Cited by: 12, Year: 2014 šŸŒŸ
šŸ“š Simulation studies of hadron energy resolution as a function of iron plate thickness at INO-ICAL

šŸ“… Cited by: 9, Year: 2014 šŸŒŸ
šŸ“š Simulation studies of hadron energy resolution as a function of iron plate thickness at INO-ICAL

šŸ“… Cited by: 8, Year: 2014 šŸŒŸ
šŸ“šSimulation studies of hadron energy resolution as a function of iron plate thickness at INO-ICAL

šŸ“… Cited by: 7, Year: 2014 šŸŒŸ
šŸ“šIndependent measurement of muon neutrino and antineutrino oscillations at the INOā€“ICAL experiment

šŸ“… Cited by: 5, Year: 2019 šŸŒŸ