Jagadis Gautam | Energy | Best Researcher Award

Dr. Jagadis Gautam | Energy | Best Researcher Award

Research Professor at Kyung Hee University, South Korea

Dr. Jagadis Gautam is a Chemical Engineering researcher specializing in nanomaterials for energy storage and conversion technologies. With a Ph.D. from Chonbuk National University, South Korea, and extensive postdoctoral experience across leading institutions in South Korea and China, his work focuses on electrocatalysis, water splitting, CO₂ reduction, fuel cells, and battery systems. He has published in high-impact journals and delivered invited talks at international conferences. Dr. Gautam is proficient in advanced synthesis and electrochemical techniques, and his contributions have earned him recognition such as the Best Presentation Award at AFORE 2022. He also brings over five years of teaching experience.

Academic Profile

Google Scholar

Educational Background

Dr. Jagadis Gautam holds a Ph.D. in Chemical Engineering from Chonbuk National University, South Korea, where his research focused on transition metal-graphene hybrids for oxygen reduction reactions. He earned his Master’s degree in Chemistry from Tribhuvan University, Nepal. His academic journey reflects a strong foundation in chemical sciences, supported by advanced research training in nanomaterials, energy conversion, and electrochemical systems. Dr. Gautam’s education laid the groundwork for his expertise in material synthesis and performance analysis for applications such as fuel cells and batteries. His diverse academic experiences across Asia highlight his commitment to interdisciplinary learning and global collaboration.

Professional Experience

Dr. Jagadis Gautam has accumulated extensive professional experience as a researcher and educator in the field of chemical engineering and nanotechnology. He is currently serving as a Research Professor at Kyung Hee University, South Korea. Previously, he held postdoctoral positions at Inha University, Kumoh National Institute of Technology, and Yangzhou University, where he contributed to advanced projects in energy storage and conversion. His expertise spans electrocatalysis, battery fabrication, and material characterization. Earlier in his career, he also served as a Lecturer in Chemistry in Nepal for over five years, demonstrating a balanced commitment to both research and teaching excellence.

Awards and Honors

Dr. Jagadis Gautam has received notable recognition for his contributions to chemical and energy materials research. He was honored with the Best Presentation Award at the AFORE 2022 Conference held in Jeju, South Korea, reflecting the impact and clarity of his scientific communication. Additionally, he has been acknowledged with Reviewer Certificates by the Energy, Ecology, and Environment journal in 2023 and the Journal of Applied Electrochemistry in 2024 for his contributions to peer review. These accolades highlight his active engagement in the academic community and his commitment to maintaining high standards in research dissemination.

Research Focus

Dr. Jagadis Gautam’s research centers on the development and application of advanced nanomaterials for energy storage and conversion technologies. His work focuses on synthesizing and characterizing materials for use in water splitting, CO₂ reduction, fuel cells, Zn-air batteries, Li-ion and Li-sulfur batteries, and supercapacitors. He is skilled in electrochemical analysis and membrane electrode fabrication, applying methods such as solvothermal synthesis, CVD, and electrodeposition. His recent efforts include designing bifunctional electrocatalysts and optimizing solid-state interfaces for high-efficiency energy systems. Dr. Gautam’s research contributes significantly to advancing clean energy technologies and sustainable electrochemical solutions.

Publication top Notes

Solid-State Electrolytes and Their Interfacial Properties: Implications for Solid-State Lithium Batteries
Year: 2025 | Cited by: 3

Enhanced Carbon Quantum Dots-Based Chemiluminescence Probes for Copper Ion Detection in Human Plasma and Urine
Year: 2025 | Cited by: 1

Bifunctional Electrocatalysts for Zn–Air Batteries: A Comprehensive Review of Design Optimization and In-Situ Characterization
Year: 2025 | Cited by: 1

Advancements in Flexible Perovskite Solar Cells and Their Integration into Self-Powered Wearable Optoelectronic Systems
Year: 2025 | Cited by: 1

Cutting‐Edge Optimization Strategies and In Situ Characterization Techniques for Urea Oxidation Reaction Catalysts: A Comprehensive Review
Year: 2025 | Cited by: 4

Conclusion

Dr. Jagadis Gautam is a highly accomplished researcher in nanomaterials and energy conversion technologies, with a Ph.D. in Chemical Engineering and extensive postdoctoral experience in South Korea and China. His expertise spans electrocatalysis, water splitting, CO₂ reduction, and advanced battery systems. With publications in high-impact journals and international conference recognition, he demonstrates strong scientific potential. While further leadership and independent research could enhance his profile, his contributions position him as a strong candidate for the Best Researcher Award.

 

 

Jixiang Dai | Clean Energy | Excellence in Innovation

Mr. Jixiang Dai | Clean Energy | Excellence in Innovation

Mr. Jixiang Dai, Wuhan University of Technology, China

Mr. Jixiang Dai is an accomplished researcher at the Wuhan University of Technology, specializing in hydrogen-sensitive materials and optical fiber sensing technology. With a Ph.D. in hydrogen-sensitive films and over a decade of research experience, he has developed advanced WO₃- and Pd-based nanocomposite films for fiber optic hydrogen, temperature, and humidity sensors. Mr. Dai possesses extensive expertise in magnetron sputtering, e-beam deposition, FBG writing, ellipsometry, and advanced material characterization methods. He has led multiple nationally funded projects, including those under China’s National Key R&D Program, focusing on intrinsically safe hydrogen sensing systems. His outstanding work has earned him prestigious honors, such as the Second Prize of the China Instrument and Control Society for Technical Invention and the Hubei Province Natural Science Award. Mr. Dai has authored over 15 high-impact journal papers in Nanomaterials, Optics Letters, and Sensors and Actuators B, significantly advancing fiber optic sensor technology for safety and energy applications.

Publication Profile

Scopus

Expertise

Mr. Jixiang Dai is a highly skilled researcher with deep expertise in the synthesis of hydrogen-sensitive materials, particularly WO₃-based and Pd-based nanocomposite films. His work focuses on developing advanced fiber optic sensors capable of detecting hydrogen, temperature, and humidity with high sensitivity and precision. He has significant experience in designing complete sensing systems tailored for safety-critical environments. Mr. Dai is proficient in operating sophisticated deposition systems such as magnetron sputtering and e-beam assisted techniques, and is adept at fabricating fiber Bragg gratings (FBGs) using the phase mask method. He is also skilled in measuring optical constants using ellipsometry and simulating optical properties with RSoft and TFC software. Additionally, he is well-versed in a wide range of material characterization tools, including XRD, SEM, EDAX, TEM, XPS, and AFM. His multidisciplinary skill set enables him to bridge material science and optical engineering for innovative sensor development.

Work and Education Background

Mr. Jixiang Dai has a strong academic and professional background in optical fiber sensing and materials science. Since July 2013, he has been serving as an associate researcher at the National Engineering Laboratory for Fiber Optic Sensing Technology, where he initially worked as an assistant researcher until December 2017. His research focuses on advanced optical fiber sensing technologies. He earned his Ph.D. from 2010 to 2013, concentrating on hydrogen-sensitive films under the mentorship of Professor Minghong Yang, a recipient of the National Distinguished Young Scholars of China. Prior to that, from 2008 to 2011, he completed his master’s degree focusing on fiber Bragg grating hydrogen sensors based on WO₃-Pd composite films, guided by Professor Dengsheng Jiang, an academician of the Chinese Academy of Engineering. Mr. Dai began his academic journey with a bachelor’s degree from 2004 to 2008, studying dielectric thin films under Professor Jing Zhou, laying the foundation for his research career.

Awards and Recognitions

Mr. Jixiang Dai has received notable awards in recognition of his significant contributions to the field of optical fiber sensing and materials science. He was honored with the Second Prize for Technical Invention by the China Instrument and Control Society, where he ranked second for his pioneering work in the development of advanced hydrogen sensing systems using nano-composite films. This award highlights his role in creating impactful technological innovations that enhance safety and performance in sensor applications. Additionally, Mr. Dai received the Second Prize in Natural Science from Hubei Province, also ranking second, in acknowledgment of his high-level scientific research in materials engineering and sensor development. These prestigious awards not only reflect the originality and value of his research but also demonstrate the national and regional recognition of his innovative achievements in advancing sensor technologies and their real-world applications in energy, safety, and environmental monitoring systems

Research Focus

Mr. Jixiang Dai’s Research Focus centers on optical fiber hydrogen sensing technologies with an emphasis on advanced nanomaterials like WO₃-based, Pd/Ta alloys, and graphene quantum dots. His work targets the design, enhancement, and integration of fiber Bragg grating (FBG)-based sensors, leveraging π-phase-shifted structures, optical heating, and ZIF-8 frameworks for heightened sensitivity. His innovations address hydrogen leakage detection, quasi-distributed sensor networks, and environmental sensing applications. The research spans sensor fabrication, performance optimization, and material characterization. 🚀 His impactful contributions are well-cited in journals like Optics Letters, IEEE, and International Journal of Hydrogen Energy.

Publication Top Notes

📄 Improved performance of a fiber-optic hydrogen sensor based on a controllable optical heating technologyOptics Letters, 2024 | 🔁 Cited by: 4 📅
📄 Pd–Ta alloy films hydrogen sensors based on partially coated π-phase-shifted FBGOptical Materials, 2024 | 🔁 Cited by: 2 📅
📄 Quasi-distributed optical fiber hydrogen leakage detecting system based on bus chain topology structureOptics Express, 2024 | 🔁 Cited by: 1 📅
📄 Improved performance of fiber-optic hydrogen sensor of porous Pt/WO₃ based on ZIF-8Int. J. of Hydrogen Energy, 2024 | 🔁 Cited by: 16 📅
📄 Performance of fiber hydrogen sensor with Pd/Ta composite filmsConference Paper, Year Not Specified | 🔁 Cited by: 0 📅
📄 Performance of fiber-optic hydrogen sensor based on locally coated π-shifted FBGIEEE Sensors Journal, 2022 | 🔁 Cited by: 11 📅
📄 Ultra-high sensitive fiber optic hydrogen sensor in airJournal of Lightwave Technology, 2022 | 🔁 Cited by: 12 📅
📄 TBAOH intercalated WO₃ for high-performance optical fiber hydrogen sensorInt. J. of Hydrogen Energy, 2022 | 🔁 Cited by: 11 📅
📄 Advanced fiber-optic humidity sensor using graphene quantum dots doped polyimideIEEE Photonics Tech. Lett., 2022 | 🔁 Cited by: 18 📅
📄 Novel optical fiber sensing with tantalum-based hydrogen sensing filmActa Photonica Sinica, 2022

 

Abolfazl Hadavi | Electrical power | Best Researcher Award

Dr. Abolfazl Hadavi | Electrical power | Best Researcher Award

Dr. Abolfazl Hadavi at Faculty of Electrical and Computer Engineering, Tabriz University, Iran

Abolfazl Hadavi is a highly experienced software engineer and electronics specialist from Tabriz, Iran, with over 20 years of professional expertise in programming, system design, and hardware-software integration. 💻🔧 He has built numerous custom software solutions across industries such as healthcare and energy. Leveraging a solid foundation in electrical and computer engineering, he bridges technical knowledge with practical innovation. His passion lies in developing advanced embedded systems and intelligent applications, combining his programming skills and electronics background to create efficient, user-focused technologies. 🌐🔌

Publication Profile

Orcid

Academic Background

Abolfazl holds a Bachelor’s degree in Electrical and Computer Engineering (2007), followed by a Master’s in Mechatronics (2018), both from the University of Iran, Tabriz. 📘🛠 He is currently pursuing a Ph.D. in Electrical and Computer Engineering at the same institution since 2020. 📚 His academic path reflects a multidisciplinary approach, blending electrical systems, automation, and software design. Through his studies, he has focused on integrating theoretical knowledge with hands-on engineering to address real-world technical challenges. 🔍🎓

Professional Background

With two decades of experience, Abolfazl has served as a system designer and programmer at Manir Company (2002–2016), and as a software expert for the East Azerbaijan Electricity Distribution Company since 2016. ⚡🖥 He has led and contributed to key projects, including medical registration systems, energy loss calculators, and invoice and report generation software. His work supports efficiency improvements in critical infrastructure sectors. His deep industry engagement, combined with technical excellence, has established him as a trusted innovator in applied informatics and system development. 🏗️🖱️

Awards and Honors

While specific awards are not listed in the provided profile, Abolfazl’s contributions to vital systems in the electricity and healthcare sectors demonstrate a track record of practical innovation. 🌟 His role in developing high-impact tools for public utility optimization suggests strong recognition within his organizations. 🏅 His long-term professional service and expertise have likely earned him internal commendations and project leadership roles, reflecting both technical acumen and reliability in mission-critical software and hardware solutions. 🤝📈 

Research Focus

Abolfazl’s research interests center on the integration of embedded systems with intelligent software, particularly in energy distribution, automation, and mechatronic applications. 🔍🤖 His work bridges hardware design and software architecture, aiming to improve efficiency and interoperability in systems. As a Ph.D. student, he is likely involved in research around smart grids, real-time monitoring, or embedded control systems, contributing to technological advancement in infrastructure and electronics. 🔄⚙️ His vision emphasizes practical outcomes that address pressing challenges in engineering and applied computing. 💡📊

Publication Top Notes

📘 Critical inertia thresholds for frequency stability in renewable Energy-Integrated power systems

📅 Year: 2025 | ✍️ Authors: Abolfazl Hadavi, Mehrdad Tarafdar Hagh, Saeid Ghassem Zadeh

Conclusion

Abolfazl Hadavi is a highly skilled software and systems engineer with over 20 years of experience in programming, system development, and applied electronics. With a strong foundation in VB.NET, C#, Oracle, Angular, and embedded systems, he has led and contributed to impactful projects in energy, telecommunications, and healthcare sectors. His cross-disciplinary background in electrical engineering, mechatronics, and software development enables him to create integrated hardware-software solutions with real-world relevance. Currently pursuing a Ph.D. in Electrical and Computer Engineering, his academic progression highlights a deepening engagement with research, positioning him as a valuable contributor to applied technological innovation.

 

Maria Carmen Asensio | Energy | Women Researcher Award

Prof. Maria Carmen Asensio | Energy | Women Researcher Award

Prof. Maria Carmen Asensio, Materials Science Institute of Madrid – CSIC, Spain

Prof. Maria Carmen Asensio is a leading solid-state physicist and Permanent Research Staff at the Institute of Material Science of Madrid (ICMM-CSIC), Spain. She is the co-founder of the Research Associated Unit MATINÉE and a global expert in synchrotron radiation techniques. Her innovations include the development of the nanoARPES technique for chemical and electronic imaging. With over 265 publications and more than 11,500 citations, she is recognized internationally for her contributions to condensed matter physics. Her collaborative work spans multiple prestigious institutions across Europe, and she plays key roles in scientific leadership, editorial boards, and European research evaluation panels. 🌍📚

Publication Profile

Orcid

Google Scholar

🎓 Education

Prof. Asensio began her academic journey in Argentina, where she earned her foundational degrees in physics. She further advanced her academic career in Europe, undertaking postdoctoral research at the University of Warwick (UK) and the Fritz Haber Institute of the Max Planck Society (Germany). Her interdisciplinary training across premier European laboratories solidified her expertise in spectroscopic methods and materials science. This diverse academic foundation equipped her with the skills to pioneer advanced techniques in synchrotron-based photoemission and solid-state physics, culminating in significant contributions to the electronic structure of novel materials. 🎓🇦🇷🇬🇧🇩🇪

💼 Experience

Prof. Asensio has held prestigious roles including Senior Lecturer at the Autonomous University of Madrid, and postdoctoral fellow at Warwick and the Fritz Haber Institute. Since 1992, she has been a senior member of the GREENER group at ICMM-CSIC, Spain. She has directed major European research projects, chaired the IUVSTA Surface Science Division since 2016, and served as Scientific Director of IUVSTA from 2004 to 2007. As an evaluator for the European Research Council (ERC) and editorial board member of several journals, she has contributed significantly to research governance and scientific development across Europe. 🧪🌐

🏆 Awards and Honors

Prof. Asensio has received six SEXENIOS (Exceptional Productivity Supplements) from the Spanish Government in recognition of sustained research excellence. She was elected Scientific Director of IUVSTA and currently chairs its Surface Science Division. She has supervised numerous award-winning PhD theses and postdoctoral researchers supported by prestigious programs like Marie Curie and CNRS. Her impactful publication on silicene alone has over 3600 citations. Her continuous recognition by institutions like the ERC and international journals underscores her global scientific influence and the pioneering quality of her work in photoemission and advanced materials. 🥇🔖

🧪 Research Focus

Prof. Asensio’s research centers on the electronic and structural characterization of advanced materials using synchrotron radiation techniques such as ARPES, SR-PES, and XAS. Her groundbreaking work in developing nanoARPES allows for nanoscale chemical and electronic imaging. She investigates Fermi surface topology, low-dimensional materials, and electronic instabilities at surfaces and interfaces. Her studies have advanced understanding of graphene, silicene, and other 2D systems, making her a global leader in condensed matter physics and spectroscopic innovation. Her work bridges fundamental physics with instrumentation development for next-generation materials. 🔬📡📊

Publication Top Notes

📖 Silicene: compelling experimental evidence for graphenelike two-dimensional silicon 🔢 4280 📅 2012
📖 Band Alignment and Minigaps in Monolayer MoS₂-Graphene van der Waals Heterostructures 🔢 366 📅 2016
📖 Towards high quality CVD graphene growth and transfer 🔢 339 📅 2015
📖 Quasicrystalline 30° twisted bilayer graphene as an incommensurate superlattice 🔢 245 📅 2018
📖 Evidence of Dirac fermions in multilayer silicene 🔢 233 📅 2013
📖 Black arsenic: a layered semiconductor with extreme in‐plane anisotropy 🔢 232 📅 2018
📖 Topology of the Pseudogap and Shadow Bands in cuprates at optimum doping 🔢 231 📅 1997
📖 Dynamical fluctuations as the origin of a surface phase transition in Sn/Ge(111) 🔢 221 📅 1999
📖 Direct Observation of Interlayer Hybridization in Graphene/MoS₂ heterostructures 🔢 204 📅 2015
📖 Charge Density Wave State Suppresses Ferromagnetic Ordering in VSe₂ Monolayers 🔢 189 📅 2019
📖 Self-aligned silicon quantum wires on Ag(110) 🔢 180 📅 2005
📖 Polycrystalline graphene with single crystalline electronic structure 🔢 176 📅 2014
📖 Observation of a 2D liquid of Fröhlich polarons at SrTiO₃ surface 🔢 172 📅 2015
📖 Chitosan-coated MIL-100(Fe) nanoparticles as bio-compatible nanocarriers 🔢 162 📅 2017

Hyun chul kim | Fuel Cell | Best Researcher Award

Prof. Hyun chul kim | Fuel Cell | Best Researcher Award

Prof. Hyun chul kim, Kongju National University, South Korea

Prof. Hyun Chul Kim is a distinguished academic in mechanical and automotive engineering, currently serving at Kongju National University. With a robust background in research, industry, and teaching, he has held roles at MIT, Samsung Electronics, and KAIST. His contributions span intelligent systems, automotive innovation, and mechanical design. Over the years, he has played a pivotal role in advancing future automotive technologies and mentoring young engineers. His global exposure and multidisciplinary expertise make him a respected figure in engineering academia. Prof. Kim continues to drive innovation through research and academic leadership in Korea and internationally.

Publication Profile

Scopus

🎓 Education

Prof. Kim completed all his academic qualifications from the Korea Advanced Institute of Science and Technology (KAIST), a premier institution in South Korea. He earned his B.S. in Mechanical Engineering in 1999, followed by an M.S. in 2001. He further pursued his Ph.D. at the same institution, completing it in 2005. His seamless progression through undergraduate to doctoral studies reflects his commitment to academic excellence and deep-rooted interest in mechanical systems. His education at KAIST laid a strong foundation for both theoretical knowledge and applied research, enabling his contributions to diverse engineering domains.

💼 Experience

Prof. Kim’s career spans over two decades in academia, research, and industry. He served as a Postdoctoral Associate at MIT and held research roles at KAIST and MEL, Japan. His industry experience includes a tenure as Senior Researcher at Samsung Electronics. From 2008 to 2022, he was a professor at Inje University, later joining Kongju National University in 2022 as Professor in the Dept. of Future Automotive Engineering. His professional path reflects a blend of global research excellence, innovation-driven industry work, and extensive academic leadership in mechanical and automotive engineering.

🏅 Awards and Honors

Prof. Kim has been recognized for his scholarly excellence and engineering innovations throughout his career. While specific award names are not listed, his affiliations with top-tier institutions like MIT, KAIST, and Samsung Electronics suggest a strong record of recognition and merit. His professorship roles, particularly in the evolving field of Future Automotive Engineering, also imply peer acknowledgement and leadership status in academic circles. Participation in global research projects and collaborations further hint at awards, grants, and honors received in support of his pioneering research in mechanical and automotive systems.

🔬 Research Focus

Prof. Kim’s research primarily focuses on mechanical and automotive engineering, with an emphasis on future automotive systems, intelligent vehicle design, and smart manufacturing technologies. His interdisciplinary approach integrates mechanical systems, automation, and cutting-edge automotive innovations. At Kongju National University, he contributes to the evolution of mobility and sustainable transport. His past work includes collaborations in robotics, mechatronics, and manufacturing processes. His research addresses real-world challenges through applied mechanics and system integration, making significant impacts on smart automotive technologies and industry-academia partnerships.

Publication Top Notes

📘 Numerical Investigation of In-Line and Staggered Trap Channels in the Serpentine Flow Field of PEMFCsInternational Journal of Precision Engineering and Manufacturing – Green Technology, 2025 | 🔢 Cited by: 1 👨‍🔬⚙️🔁

📘 Development of a Regression-Based Tool Life Prediction Model in Manufacturing EnvironmentsJournal of the Korean Society for Precision Engineering, 2025 | 🔢 Cited by: 0 🛠️📊📉

📘 Novel Design of a Staggered-Trap/Block Flow Field for Use in Serpentine Proton Exchange Membrane Fuel CellsRenewable Energy, 2024 | 🔢 Cited by: 2 ♻️🔋📐

📘 Enhancing Oxygen Distribution in Proton Exchange Membrane Fuel Cells Based on Modified Gas Diffusion Layer Designs: A Comparative StudyIonics, 2024 | 🔢 Cited by: 0 💨🔬⚡

Tingwei Zhou | Energy | Best Researcher Award

Prof. Tingwei Zhou | Energy | Best Researcher Award

Prof. Tingwei Zhou, Southwest University, China

Prof. Tingwei Zhou (周廷伟), born in February 1988, is an Associate Professor at the School of Physical Science and Technology, Southwest University, China. A member of the Communist Party, he specializes in theoretical research on material design, optoelectronic device performance, and quantum entanglement, often combining artificial intelligence with physical chemistry. With over 27 SCI papers and an H-index of 18, his work has significantly advanced the understanding of superatomic perovskites. He actively contributes to teaching, high-performance computing infrastructure, and peer-review processes for renowned journals. He is passionate about scientific exploration, education, and interdisciplinary collaboration.

Publication Profile

Scopus

🎓 Education

Prof. Zhou earned his PhD in Optical Engineering from Chongqing University (2016–2019), focusing on the frontier of superatomic materials. He obtained his MSc in Theoretical Physics from Southwest University (2013–2016), where he began his exploration of computational modeling and material theory. His undergraduate degree in Physics was completed at Zunyi Normal College (2009–2013). With a solid educational foundation in both theoretical and applied physics, his academic journey reflects a deep interest in quantum mechanics, materials science, and interdisciplinary research, forming the basis of his innovative approach to perovskite material studies and quantum phenomena. 🧪📚

🧑‍🏫 Experience

Since 2023, Prof. Zhou has served as an Associate Professor at Southwest University, where he previously held a Lecturer position (2019–2023). He has taught core subjects including computational physics, electrodynamics, and linear algebra, with experience in online, offline, and hybrid modes. Zhou has guided numerous undergraduates and postgraduates in research, thesis writing, and publishing. He also built and now manages a high-performance computing lab supporting theoretical modeling. Beyond teaching, he contributes to academic administration, graduate admissions, and collaborative research across physics and engineering disciplines. His experience showcases strong innovation, mentorship, and institutional service. 💻🧑‍🎓

🔬 Research Focus

Prof. Zhou’s research focuses on the design and performance evaluation of superatomic and perovskite materials for applications in energy, optoelectronics, and catalysis. He explores properties like crystal structure, adsorption energy, charge density, and activation energy using first-principles simulations. His interests extend to quantum entanglement theory and integrating artificial intelligence into physical chemistry. He also pioneers theoretical frameworks linking category theory to quantum physics. His published work in top-tier journals highlights advances in device efficiency, defect engineering, and stability mechanisms in functional materials. His cross-disciplinary approach pushes the boundaries of theoretical materials science and quantum innovation. ⚛️🧠💡

Publication Top Notes

📘 Coherence Programming for Efficient Linearly Polarized Perovskite Light-Emitting Diodes – Xiao, M.; Yang, J.; Zhang, W.; Wang, J.; Chen, P. – ACS Nano, 2024 – 📈 Cited by: 1

🌞 Facile Surface Regulation for Highly Efficient and Thermally Stable Perovskite Solar Cells via Chlormequat Chloride – Yang, B.; Lin, P.; Zhou, T.; Cai, B.; Zhang, W. – Chinese Chemical Letters, 2024

🌿 Facile and Sustainable Interface Modulation via a Self-Assembly Phosphonate Molecule for Efficient and Stable Perovskite Photovoltaics – Yang, B.; Cai, B.; Zhou, T.; Zheng, X.; Zhang, W. – Chemical Engineering Journal, 2024 – 🔟 Cited by: 10

🔬 A Construction Method of the Wave–Particle Entanglement State of the Particle System – Zhou, T. – Modern Physics Letters B, 2024