I-Te Lu – Light-matter Interaction – Best Researcher Award 

Dr. I-Te Lu embarked on his academic journey with a strong foundation in Materials Science and Engineering, earning his BS from National Chiao Tung University (NCTU), Taiwan in 2010. His early academic pursuits showcased his interest in advanced materials and their interactions, leading him to pursue an MS in Applications of Synchrotron Radiation on Materials at NCTU and the National Synchrotron Radiation Research Center (NSRRC). His thesis focused on Synchrotron Radiation Infrared Ray Analysis of Human Lung Adenocarcinoma Living Cells, demonstrating his commitment to interdisciplinary research. He later completed his PhD in Materials Science with a Minor in Physics at the California Institute of Technology (Caltech), USA, where his thesis on First-principles calculations of electron-defect interactions and defect-limited charge transport laid the groundwork for his future contributions to quantum materials research.

💼 Professional Endeavors

Dr. Lu has had an illustrious professional career, working at some of the most prestigious research institutions worldwide. Currently, he serves as a Postdoctoral Research Fellow in Prof. Angel Rubio’s research group at the Max Planck Institute for the Structure and Dynamics of Matter (MPSD), Germany, where he develops quantum electrodynamics density functional theory (QEDFT) functionals for solid-state materials. Prior to this, he was a Postdoctoral Scholar in Prof. Marco Bernardi’s research group at Caltech, focusing on electron-defect interactions in materials using first-principles methods. His work as a Research Assistant at Caltech from 2015 to 2020 was instrumental in co-developing PERTURBO, an open-source code for electron-phonon interactions and carrier dynamics, further establishing his expertise in computational materials science.

🔬 Contributions and Research Focus

Dr. Lu’s research primarily revolves around light-matter interaction, quantum materials, and computational methods. His expertise spans first-principles calculations, synchrotron radiation analysis, and high-performance computing. His work in QEDFT functionals and electron-phonon interactions has provided significant insights into how light interacts with materials at the atomic scale. His research contributions extend to nanomaterials, defect engineering, and optoelectronics, making his work essential in the development of next-generation quantum materials. His research at NSRRC on synchrotron light beams (XAS, XPS, and TXM) for material characterization further solidified his interdisciplinary approach, bridging physics, materials science, and quantum mechanics.

🌍 Impact and Influence

Dr. Lu’s impact in light-matter interaction research is evident through his contributions to major scientific projects, including PERTURBO and QEDFT functional development. His expertise in first-principles calculations has influenced a wide range of studies in computational materials science, making him a key contributor to the field. His work has received international recognition, earning him the Humboldt Research Fellowship in Germany (2021-2023) and a Government Scholarship for USA Study from Taiwan’s Ministry of Education (2014-2017), both prestigious accolades that highlight his scientific contributions.

🏆Academic Cites

Dr. Lu’s research has been widely cited in academic journals, with his work on electron-phonon interactions, defect-limited charge transport, and quantum electrodynamics serving as a reference point for researchers worldwide. His ability to develop computational tools such as PERTURBO has made his research highly valuable in both theoretical and applied physics. His participation in the Argonne Training Program for Extreme-Scale Computing (ATPESC) in 2017, where he received intensive training in high-performance computing, further underscores his contributions to computational material science.

🌟 Legacy and Future Contributions

As Dr. I-Te Lu continues his research in light-matter interaction, his future contributions are set to revolutionize the understanding of quantum materials. His development of QEDFT functionals and his expertise in electron-defect interactions will be crucial in advancing materials for quantum computing, energy applications, and optoelectronic devices. His ongoing research at Max Planck Institute positions him at the forefront of materials science, ensuring that his legacy in computational modeling and quantum materials research will continue to inspire future generations.

📝Light-matter Interaction

Dr. I-Te Lu’s groundbreaking work in light-matter interaction has paved the way for advancements in quantum materials and optoelectronic devices. His computational models, including PERTURBO, have enhanced the understanding of light-matter interaction at the atomic level. With ongoing research in quantum electrodynamics and solid-state materials, Dr. Lu remains a leading figure in light-matter interaction, shaping the future of materials science.

Notable Publication


📝Perturbo: A software package for ab initio electron–phonon interactions, charge transport, and ultrafast dynamics

Authors: JJ Zhou, J Park, IT Lu, I Maliyov, X Tong, M Bernardi

Journal: Computer Physics Communications

Year: 2021

Citations: 232


📝Solid-State Divalent Ion Conduction in ZnPS₃

Authors: AJ Martinolich, CW Lee, IT Lu, SC Bevilacqua, MB Preefer, M Bernardi, ...

Journal: Chemistry of Materials

Year: 2019

Citations: 49


📝Efficient ab initio calculations of electron-defect scattering and defect-limited carrier mobility

Authors: IT Lu, JJ Zhou, M Bernardi

Journal: Physical Review Materials

Year: 2019

Citations: 45


📝High-yield water-based synthesis of truncated silver nanocubes

Authors: YM Chang, IT Lu, CY Chen, YC Hsieh, PW Wu

Journal: Journal of Alloys and Compounds

Year: 2014

Citations: 32


📝First-principles ionized-impurity scattering and charge transport in doped materials

Authors: IT Lu, JJ Zhou, J Park, M Bernardi

Journal: Physical Review Materials

Year: 2022

Citations: 29


📝Using defects to store energy in materials–a computational study

Authors: IT Lu, M Bernardi

Journal: Scientific Reports

Year: 2017

Citations: 23


📝Surface modification of commercial PtRu nanoparticles for methanol electro-oxidation

Authors: CW Kuo, IT Lu, LC Chang, YC Hsieh, YC Tseng, PW Wu, JF Lee

Journal: Journal of Power Sources

Year: 2013

Citations: 23


📝Combined experimental-theoretical study of electron mobility-limiting mechanisms in SrSnO₃

Authors: TK Truttmann, JJ Zhou, IT Lu, AK Rajapitamahuni, F Liu, TE Mates, ...

Journal: Communications Physics

Year: 2021

Citations: 19

Jaroslaw Mlynczak – Light measuring – Best Researcher Award

Assoc Prof Dr. Jaroslaw Mlynczak - Light measuring - Best Researcher Award  

Military University of Technology, Institute of Optoelectronics - Poland 

Author Profile

Scopus

Orcid

🎓 Early Academic Pursuits

Assoc. Prof. Dr. Jaroslaw Mlynczak's journey in laser science and engineering began with a robust academic foundation, leading to his extensive expertise in this specialized field. His early academic pursuits were marked by a focus on the foundational principles of laser technologies, optics, and photonics, laying the groundwork for his future research in light measuring and laser-induced fluorescence (LIF). These initial academic endeavors equipped him with the theoretical and practical knowledge necessary to undertake advanced research and development in the field of laser technologies.

💼 Professional Endeavors

Dr. Mlynczak has established himself as an ambitious and dedicated professional in the laser science domain. His work has focused extensively on light measuring techniques and the development of new laser technologies. He has undertaken pioneering research in the remote detection of biological agents using Laser Induced Fluorescence (LIF), an approach that merges his expertise in optics with environmental monitoring. His engineering acumen extends to the investigation of new active media and nonlinear absorbers for UV, visible, and infrared microchip lasers. His expertise in project management, coupled with his ability to meet tight deadlines, demonstrates his capacity to lead complex research projects while collaborating effectively with his team.

🔬 Contributions and Research Focus

Dr. Mlynczak’s research contributions span several key areas in laser technology. His work on light measuring has significantly enhanced the understanding of laser interaction with various materials and biological agents. His research into "in-situ" and remote detection systems has led to the development of cutting-edge devices that utilize LIF for environmental monitoring. In addition, Dr. Mlynczak has made significant strides in designing new active media and nonlinear absorbers, especially for "eye-safe" microchip lasers, which are crucial for telemetric systems and other optical communication technologies. His work in developing microchip lasers designed for telemetric systems is particularly notable for its innovation and real-world application.

🌍 Impact and Influence

The impact of Dr. Mlynczak’s work in light measuring and laser technologies extends across multiple fields, including environmental monitoring, telecommunication, and laser design. His research in laser-induced fluorescence (LIF) has revolutionized the detection of biological agents, offering a new method for remote sensing with applications in environmental safety and public health. Moreover, his innovations in UV, visible, and IR microchip lasers have practical applications in both civilian and military sectors, particularly in the development of telemetric systems. His influence is seen in his ability to merge theoretical research with practical engineering, leading to tangible advancements in laser technology.

🏆Academic Cites

Dr. Mlynczak's work has garnered numerous academic citations, reflecting the significance and reach of his contributions to light measuring and laser-induced fluorescence. His published papers and presentations on the development of new laser technologies have been widely cited by peers in the fields of optics, photonics, and environmental science. His research on microchip lasers and telemetric systems has also been referenced in various technical papers, showcasing the widespread application of his work in both academic and industrial contexts.

🌟 Legacy and Future Contributions

Assoc. Prof. Dr. Jaroslaw Mlynczak’s legacy in light measuring and laser science will be defined by his pioneering contributions to the development of novel laser technologies and environmental monitoring systems. His work on LIF and microchip lasers has laid the groundwork for future innovations in laser technology, with potential applications ranging from advanced telecommunication systems to improved methods for detecting biological agents. As he continues to push the boundaries of laser science, Dr. Mlynczak’s future contributions will likely shape the next generation of laser technologies and environmental monitoring solutions. His ability to bridge the gap between theoretical research and practical engineering will ensure that his legacy endures in both academic and industrial spheres.

📝Notable Publication


📝Measuring the low divergent luminous flux emitted by LED torch lamps using a simple detector and a spectrometer as an alternative to an integrating sphere

Author: Mlynczak, J.

Journal: Measurement: Journal of the International Measurement Confederation

Year: 2025

Citations: 0


📝Climatic consequences of the process of saturation of radiation absorption in gases

Authors: Kubicki, J., Kopczyński, K., Młyńczak, J.

Journal: Applications in Engineering Science

Year: 2024

Citations: 1


📝SbI3·3S8: A Novel Promising Inorganic Adducts Crystal for Second Harmonic Generation

Authors: Das, T.K., Jesionek, M., Kępińska, M., Młyńczak, J., Kopczyński, K.

Journal: Materials

Year: 2023

Citations: 1


📝Analysis of impact of atmospheric attenuation and measurement uncertainties on laser hazard distances in navigable airspace for visible CW laser radiation

Author: Młyńczak, J.

Journal: Metrology and Measurement Systems

Year: 2023

Citations: 0


📝Calculation and analysis of laser hazard distances in navigable airspace for multi-beam visible CW laser radiation

Author: Mlynczak, J.

Journal: Advanced Optical Technologies

Year: 2022

Citations: 2