Naiqiang Liu | Materials Science | Best Researcher Award

Dr. Naiqiang Liu | Materials Science | Best Researcher Award

Lecture Sichuan University of Science & Engineering, China

Naiqiang Liu is a distinguished academic in the field of Materials Science and Engineering. He currently serves as a Lecturer at Sichuan University of Science and Engineering (SUSE) in China, specializing in advanced energy storage technologies. Liu’s research primarily focuses on the development of materials for high-performance batteries, including lithium-sulfur, lithium-ion, and sodium-ion batteries. He has contributed significantly to the development of high-porous carbon materials and multi-functional binders for energy storage devices. Liu’s work addresses critical challenges in the improvement of battery performance, such as enhancing energy density, cycling stability, and material efficiency. His research has resulted in several impactful publications in prestigious journals, underscoring his expertise and influence in the field. With a solid foundation in both teaching and research, Liu continues to explore innovative solutions for sustainable energy storage systems, which are vital for advancing clean energy technologies globally.

Professional Profile

Education:

Naiqiang Liu’s academic journey began at Beijing University of Chemical Technology, where he earned his Bachelor’s degree in Polymer Materials Science and Engineering in 2012. He continued his academic pursuit at the same institution, completing his Ph.D. in Materials Science and Engineering in 2017. Liu’s doctoral research was pivotal in shaping his expertise in materials for energy storage devices, an area that has been the focal point of his career. His academic background has provided him with a deep understanding of materials science, especially in areas related to polymers and energy storage technologies. This solid educational foundation has not only equipped him with advanced theoretical knowledge but also practical insights into the material challenges that modern energy storage systems face. His educational journey laid the groundwork for a successful academic career, enabling him to push boundaries in his field.

Professional Experience:

Naiqiang Liu’s professional career began shortly after the completion of his Ph.D. in 2017, when he assumed the role of Lecturer at Sichuan University of Science and Engineering (SUSE), China. As a faculty member in the Materials Science and Engineering department, Liu has been actively involved in both teaching and research. His professional experience includes mentoring graduate students, conducting independent research, and collaborating with colleagues on advanced materials for battery applications. Liu has worked extensively on the development of innovative materials for energy storage, contributing to multiple published studies that have helped shape the research landscape in this area. His position at SUSE allows him to combine his passion for teaching with a strong commitment to advancing research, both of which are integral to his professional identity. His continued work in energy storage and battery technologies remains at the forefront of his professional career.

Research Interests:

Naiqiang Liu’s primary research interests lie in the development of advanced materials for energy storage systems, particularly focusing on lithium-sulfur (Li-S), lithium-ion (Li-ion), and sodium-ion (Na-ion) batteries. His work aims to address some of the most pressing challenges in these fields, such as improving battery energy density, cycle life, and stability. Liu has made significant strides in developing high-porous carbon materials and multi-functional binders for lithium sulfur batteries, as well as carbonaceous anode materials for Li+/Na+ batteries. Another area of his research includes the exploration of fiber-based materials for batteries, which can improve the flexibility and performance of energy storage devices. Through his work, Liu aims to contribute to sustainable energy solutions that can power a range of applications, from electric vehicles to renewable energy systems. His research is not only grounded in material science but also seeks to create practical solutions for the widespread adoption of clean energy technologies.

Research Skills:

Liu’s research skills are rooted in his deep understanding of materials science and his expertise in energy storage technologies. His work encompasses the synthesis and characterization of advanced materials, including carbon-based composites and nanostructured materials, to improve battery performance. Liu is skilled in employing a variety of techniques for material synthesis, such as electrospinning, as well as in using advanced characterization methods to evaluate the electrochemical properties of the materials he develops. His ability to design and test new materials for energy storage applications is complemented by his knowledge of the theoretical principles that govern material behavior. Liu’s multidisciplinary approach to research, which integrates chemistry, materials science, and electrochemistry, enables him to tackle complex challenges in the field of energy storage. Furthermore, his experience in collaborating with other researchers and mentoring students allows him to translate his research into meaningful scientific and technological innovations.

Awards and Honors:

Naiqiang Liu has received several prestigious awards and honors throughout his academic career, highlighting his exceptional contributions to the field of materials science. Among his notable achievements are the National Scholarships for Doctoral Students, awarded to him in both 2014 and 2016 by Beijing University of Chemical Technology. These scholarships are a testament to Liu’s academic excellence and the high regard in which he is held by his institution. Liu’s research on advanced materials for energy storage has garnered significant recognition within the academic community, evidenced by his numerous publications in well-regarded scientific journals. His achievements not only reflect his technical expertise but also his commitment to advancing the field of materials science, particularly in the area of sustainable energy storage solutions. These accolades serve as a recognition of his hard work, innovation, and dedication to his field.

Conclusion:

In conclusion, Naiqiang Liu stands out as a highly accomplished and promising researcher in the field of Materials Science and Engineering, particularly in the area of energy storage systems. His academic background, professional experience, and extensive research on energy storage materials have solidified his reputation as a leader in his field. Liu’s work, which focuses on developing innovative materials for lithium-sulfur and lithium-ion batteries, demonstrates his commitment to advancing sustainable energy solutions. His research skills, academic recognition, and impressive publication record further highlight his potential for continued contributions to energy storage technologies. While Liu’s focus remains on energy materials, expanding his research collaborations internationally and diversifying his research topics could provide opportunities for greater impact and innovation. Overall, Liu’s dedication to scientific advancement, coupled with his proven academic and research track record, makes him a deserving candidate for recognition in the Best Researcher Award. His future endeavors are poised to significantly contribute to the field of sustainable energy solutions and materials science.

Publication Top Notes

  • NiCoSe₄@CNFs derived from MOF compounds enabling robust polysulfide adsorption and catalysis in Li-S batteries
    Authors: He, D., Yue, C., Tang, L., Gao, M., Liu, N.
    Journal: Journal of Alloys and Compounds
    Year: 2023
    Citation count: 19
  • Hierarchical Composite from Carbon Nanofibers Wrapped SnS Core-Shell Nanoparticles as an Anode for Lithium-Ion Batteries
    Authors: Yue, C., He, D., Qing, L., Zhao, W., Chen, J.
    Journal: Energy and Fuels
    Year: 2023
    Citation count: 10
  • Electrospun PAN membranes toughened and strengthened by TPU/SHNT for high-performance lithium-ion batteries
    Authors: Tang, L., Wu, Y., He, D., De Guzman, M.R., Chen, J.
    Journal: Journal of Electroanalytical Chemistry
    Year: 2023
    Citation count: 16
  • Efficient Interface Enabled by Nano-Hydroxyapatite@Porous Carbon for Lithium-Sulfur Batteries
    Authors: Wang, J.-Y., Tong, X.-F., Peng, Q.-F., Liu, N.-Q., Huang, Y.-Q.
    Journal: Journal of Electrochemistry
    Year: 2022
    Citation count: 5
  • Enhanced electromechanical properties of natural rubber using mussel-inspired modification of calcium titanate particles with supercapacitive property
    Authors: Guo, D., Liu, N., Jia, Q., Ruan, M., Liu, Z.
    Journal: Polymers and Polymer Composites
    Year: 2022
  • Nanostructures of Carbon Nanofiber-Constrained Stannous Sulfide with High Flexibility and Enhanced Performance for Sodium-Ion Batteries
    Authors: Qing, L., Li, R., Su, W., Liu, N., Chen, J.
    Journal: Energy and Fuels
    Year: 2022
    Citation count: 12
  • Facile yet versatile assembling of helical carbon nanofibers via metal-organic frameworks burned in ethanol flame and their electrochemical properties as electrode of supercapacitor
    Authors: Zhang, W., Fu, Q., Chen, X., Xiao, L., Chen, J.
    Journal: Journal of Power Sources
    Year: 2022
    Citation count: 7
  • Helical carbon nanofibers modified with Fe₂O₃ as a high performance anode material for lithium-ion batteries
    Authors: Qing, T., Liu, N., Jin, Y., Chen, G., Min, D.
    Journal: Dalton Transactions
    Year: 2021
    Citation count: 15
  • The porous spherical Mn and Ti co-doped Li₂FeSiO₄/C cathodes material for lithium-ion batteries
    Authors: Liu, P., Gong, Y., Nie, S., Liu, N., Chen, J.
    Journal: Ionics
    Year: 2019
    Citation count: 6
  • Heteroatoms-Doped Porous Carbon Derived from Tuna Bone for High Performance Li-S Batteries
    Authors: Ai, F., Liu, N., Wang, W., Zhang, H., Huang, Y.
    Journal: Electrochimica Acta
    Year: 2017
    Citation count: 45

Bilge Imer | Materials Science | Best Researcher Award

Bilge Imer | Materials Science | Best Researcher Award

Assoc. Prof. Dr Bilge Imer, METU, Turkey

Assoc. Prof. Dr. Bilge Imer is an accomplished scientist and entrepreneur with expertise in electronic materials, thin films, and coatings. She earned her Ph.D. in Electronic Materials from the University of California, Santa Barbara, and holds an M.A. in Business Economics. Dr. Imer is the founder and CEO of ATOMICOAT Inc., specializing in semiconductor thin film growth equipment. She is an Associate Professor at METU, where she has led impactful research and development projects. With several patents in materials science and a strong background in R&D, Dr. Imer has significantly contributed to industrial advancements. 🌐📈🔬💡

Publication Profile

google scholar

Education

Assoc. Prof. Dr. Bilge Imer holds a Ph.D. in Electronic Materials from the University of California, Santa Barbara (2000-2006), where she also earned an M.A. in Business Economics and completed a Technology Management Program, focusing on new product development and venture creation. She obtained her B.S. in Materials Science and Engineering from the University of Pittsburgh (1996-2000). Her interdisciplinary academic background combines expertise in material science, business economics, and technology management, which shapes her research and teaching in the fields of innovation and entrepreneurship. 🎓💡📚👩‍🏫🔬

Experience

Assoc. Prof. Dr. Bilge Imer is the Founder & CEO of ATOMICOAT Inc., where she raised seed funding and developed innovative semiconductor thin film growth equipment. She is also an Associate Professor at METU, specializing in Metallurgical and Materials Engineering. Dr. Imer has led impactful research, including turbine blade materials for Istanbul’s Ambarlı plant, and managed a 5 million EUR TUBITAK project. She established advanced research labs and advised corporate companies on coatings and alloys. Holding two patents, she has authored 18 papers with over 1000 citations. Additionally, she has coordinated industry partnerships and supported student entrepreneurship. 🏢🔬💡🎓

Research Impact

Dr. Imer’s work has made significant contributions to material science and advanced semiconductor technology. His influential publications in top-tier journals, such as Applied Physics Letters and Journal of Crystal Growth, showcase his expertise and innovative research. In addition to his published articles, Dr. Imer holds multiple patents, further solidifying his impact in the field. His dedication to advancing material science is evident in his continuous pursuit of groundbreaking discoveries, shaping the future of semiconductor technology. 🌟🔬📚💡👨‍🔬

Additional Recognition

With numerous technical skills, business development expertise, and a strong commitment to community involvement, he is a well-rounded, influential researcher and leader. His work extends beyond academia, with significant contributions to TV and radio, where he engages with broader audiences and fosters impactful discussions. His diverse background in both technical and business sectors allows him to bridge the gap between innovation and practical application, enhancing his research’s relevance. As a leader, he mentors emerging professionals and drives initiatives that create lasting societal impact. 📡📈🎙️💡👥

Research Focus

Assoc. Prof. Dr. Bilge Imer’s research primarily focuses on the growth and microstructural evolution of gallium nitride (GaN) films, particularly non-polar and semi-polar III-Nitrides. She has contributed significantly to improving GaN quality through metalorganic chemical vapor deposition (MOCVD) and sidewall lateral epitaxial overgrowth (SLEO) techniques. Her work addresses defect reduction, polarization anisotropy, and the stability of m-plane GaN films. Dr. Imer’s research aims to enhance the performance and material properties of GaN for electronic and optoelectronic applications. Her work is instrumental in advancing the understanding of GaN growth on different substrates. 🔬✨🌱

Publication Top Notes

Growth of planar non-polar {1-1 0 0} m-plane gallium nitride with metalorganic chemical vapor deposition (MOCVD)

Microstructural evolution of a-plane GaN grown on a-plane SiC by metalorganic chemical vapor deposition

Improved quality (112 0) a-plane GaN with sidewall lateral epitaxial overgrowth

Defect reduction of non-polar and semi-polar III-Nitrides with sidewall lateral epitaxial overgrowth (SLEO)

Stability of (1100) m-plane GaN films grown by metalorganic chemical vapor deposition

Polarization anisotropy in GaN films for different nonpolar orientations studied by polarized photoreflectance spectroscopy

Polarized photoreflectance spectroscopy of strained A-plane GaN films on R-plane sapphire