Pengxia Zhou | Physics | Best Researcher Award

Prof. Dr. Pengxia Zhou | Physics | Best Researcher Award

Associate professor at Nantong University, China

Zhou Pengxia (Zhou Pengxia) ๐ŸŽ“, born on October 24, 1977 ๐ŸŽ‚, is a dedicated physicist and educator at the School of Physical Science and Technology, Nantong University ๐Ÿ‡จ๐Ÿ‡ณ. With over two decades of experience, she has contributed significantly to condensed matter physics and multiferroic materials research โš›๏ธ. She earned her Ph.D. from Nanjing University and conducted postdoctoral research at leading institutions in Singapore ๐ŸŒ. As the principal investigator of an NSFC-funded project, she explores octahedral rotations in perovskite superlattices ๐Ÿงช. Her work bridges teaching and innovation, advancing the frontiers of physics through both academia and international collaboration ๐ŸŒŸ.

Professional Profile:

Orcid

๐Ÿ”น Education and Experienceย 

๐Ÿ“˜ Education:

  • ๐ŸŽ“ 1997โ€“2001: Bachelor’s Degree in Physics โ€“ Yanbei Normal College

  • ๐Ÿ“š 2001โ€“2004: Masterโ€™s Degree in Condensed Matter Physics โ€“ Yangzhou University

  • ๐Ÿง  2011โ€“2015: Doctorโ€™s Degree in Physics โ€“ Nanjing University

๐Ÿง‘โ€๐Ÿซ Professional Experience:

  • ๐Ÿซ 2004โ€“Present: Lecturer โ€“ Nantong University

  • ๐ŸŒ 2017.10โ€“2018.02: Visiting Scholar โ€“ Singapore University of Technology and Design

  • ๐ŸŒ 2018.09โ€“2019.08: Research Fellow โ€“ National University of Singapore

๐Ÿ”น Professional Developmentย 

Dr. Zhou Pengxiaโ€™s professional journey reflects her passion for physics and global academic growth ๐ŸŒ๐Ÿ“ˆ. She has participated in international collaborations in Singapore, enriching her research and teaching perspectives ๐Ÿ‡ธ๐Ÿ‡ฌ๐Ÿ”ฌ. At Nantong University, she not only teaches but also mentors students in advanced materials science ๐ŸŽ“๐Ÿงช. Her participation in cutting-edge research on perovskite superlattices and multiferroicity has positioned her as a recognized contributor in her field โš›๏ธ. Through continual learning, overseas exchanges, and scientific leadership, Dr. Zhou remains committed to academic excellence and innovation in physical science education and research ๐Ÿ“˜๐ŸŒŸ.

๐Ÿ”น Research Focusย 

Dr. Zhou Pengxia’s research is centered around condensed matter physics with a specific emphasis on multiferroic materials and perovskite superlattices ๐Ÿงฒโšก. She investigates how octahedral rotation affects multiferroicity, exploring mechanisms to enhance functional properties of complex oxides ๐Ÿงช๐Ÿงฌ. Her work contributes to the understanding and engineering of materials that exhibit both ferroelectric and magnetic properties โ€“ critical for next-generation electronic devices ๐Ÿ’ป๐Ÿ”‹. With a focus on crystal structures and symmetry interactions, her research bridges fundamental science and potential applications in sensors, memory devices, and spintronics ๐ŸŒ๐Ÿ”ง. Zhou’s interdisciplinary approach adds great value to material innovation ๐Ÿ”๐Ÿง .

๐Ÿ”น Awards and Honorsย 

๐Ÿ† Awards & Honors:

  • ๐ŸŒŸ Principal Investigator โ€“ National Natural Science Foundation of China (2017โ€“2019) for research on perovskite superlattices

  • ๐ŸŽ“ Invited Research Fellow โ€“ National University of Singapore (2018โ€“2019)

  • ๐ŸŒ International Collaboration Grant โ€“ Singapore University of Technology and Design (2017โ€“2018)

Publication Top Notes

1. Employing interpretable multi-output machine learning to predict stable perovskites in photovoltaics

Journal: Materials Today Communications, 2025
DOI: 10.1016/j.mtcomm.2025.112552
Summary:
This study leverages interpretable multi-output machine learning models to predict thermodynamically stable perovskite materials for photovoltaic applications. The key innovation lies in the simultaneous prediction of multiple material properties (e.g., stability, band gap, defect tolerance) using models that offer transparency into decision-making (e.g., SHAP values, decision trees). This work contributes to faster and explainable discovery of efficient perovskites for solar cell design.

2. A first-principles study on the multiferroicity of semi-modified Xโ‚‚M (X = C, Si; M = F, Cl) monolayers

Journal: Physical Chemistry Chemical Physics, 2023
DOI: 10.1039/D2CP04575C
Summary:
This DFT-based study explores multiferroic behavior in 2D monolayers composed of Xโ‚‚M (X = C, Si; M = F, Cl), highlighting their coexisting ferroelectric and magnetic properties. The findings suggest semi-modified 2D materials could serve as candidates for spintronic and memory devices, due to their tunable multiferroic characteristics.

3. Theoretical investigation of the magnetic and optical properties in a transition metal-doped GaTeCl monolayer

Journal: Physical Chemistry Chemical Physics, 2023
DOI: 10.1039/D3CP02313C
Summary:
This study investigates how doping GaTeCl monolayers with transition metals (e.g., Mn, Fe, Co) affects their magnetic and optical behavior. Using DFT, the authors show enhanced magneto-optical properties, suggesting that doped GaTeCl systems are promising for optoelectronic and spintronic devices.

4. Magnetism and hybrid improper ferroelectricity in LaMOโ‚ƒ/YMOโ‚ƒ superlattices

Journal: Phys. Chem. Chem. Phys., 2019
Author: Pengxia Zhou
Summary:
This work presents a theoretical analysis of LaMOโ‚ƒ/YMOโ‚ƒ (M, Y = transition metals) superlattices, showing hybrid improper ferroelectricity arising from coupling between octahedral tilting and rotations, along with magnetic ordering. The results support the design of multifunctional oxide heterostructures combining electric and magnetic orderings.

5. The excitonic photoluminescence mechanism and lasing action in band-gap-tunable CdSโ‚โˆ’โ‚“Seโ‚“ nanostructures

Journal: Nanoscale, 2016
Author: Pengxia Zhou
Summary:
This paper discusses CdSโ‚โˆ’โ‚“Seโ‚“ nanostructures with tunable band gaps. The team demonstrates strong excitonic photoluminescence and low-threshold lasing, linking optical properties to composition and quantum confinement. It provides a foundational understanding for nanoscale optoelectronic and laser devices.

6. Ferroelectricity driven magnetism at domain walls in LaAlOโ‚ƒ/PbTiOโ‚ƒ superlattices

Journal: Scientific Reports, 2015
Author: Pengxia Zhou
Summary:
This study reveals that in LaAlOโ‚ƒ/PbTiOโ‚ƒ superlattices, ferroelectric domain walls can induce localized magnetic moments due to lattice distortions and charge redistributions. This domain-wall magnetism introduces the potential for non-volatile magnetic memory controlled by ferroelectric domains.

Conclusion:

Dr. Zhou Pengxia is a suitable candidate for a Best Researcher Award, particularly in the fields of condensed matter physics and material science. Her leadership in nationally funded research, international collaboration experience, and long-standing academic service reflect a researcher committed to scientific advancement and knowledge dissemination. While her publication record and citation metrics were not provided, her PI role on an NSFC project suggests peer recognition and scholarly maturity.

Mallesh Baithi | Condensed Matter Physics | Best Researcher Award

Mr. Mallesh Baithi | Condensed Matter Physics | Best Researcher Award

Scopus Profile

Google Scholar Profile

Educational Details:

Mr. Baithi is pursuing his Ph.D. in Experimental Condensed Matter Physics at Sungkyunkwan University, South Korea, with a thesis titled “Quantum Phenomena in Two-Dimensional van der Waals Materials”. He began his doctoral studies in March 2020 and is expected to complete them by February 2025. He holds a Master of Science in Physics from the Indian Institute of Technology Madras, India (2016โ€“2018), where his thesis focused on “Annealing Effects on Diamond and Boron-Doped Diamond Thin Films Grown by Hot Filament Chemical Vapor Deposition (HFCVD) Method”. Prior to that, he earned a Bachelor of Science degree from Osmania University, India (2012โ€“2015), majoring in Physics, Chemistry, and Mathematics.

Professional Experience

Since March 2020, Mr. Baithi has been a doctoral student at the IBS-Center for Integrated Nanostructure Physics (CINAP), Department of Energy Science, Sungkyunkwan University. His research focuses on bulk growth of TMDCs, nano-device fabrication, and conducting Hall measurements at cryogenic temperatures. Prior to this, he worked as a Project Assistant at the Nanoscale Devices Laboratory, Indian Institute of Science Bengaluru (January 2019โ€“December 2019), where he was involved in device characterization and electron transport studies in two-dimensional van der Waals heterostructures. During his Masterโ€™s program at IIT Madras (June 2017โ€“December 2018), Mr. Baithi conducted research on the annealing and characterization of diamond thin films.

Research Interest

Mr. Baithi’s research interests are focused on experimental condensed matter physics, particularly quantum phenomena in two-dimensional van der Waals materials, device fabrication, and the growth of TMDCs. He is also interested in exploring the electronic and optical properties of low-dimensional materials, transport studies at cryogenic temperatures, and developing energy-efficient quantum materials for sustainable applications.

Top Notable Publications

Incommensurate Antiferromagnetic Order in Weakly Frustrated Two-Dimensional van der Waals Insulator CrPSe3
Authors: M. Baithi, N.T. Dang, T.A. Tran, J.P. Fix, D.H. Luong, K.P. Dhakal, D. Yoon, …
Journal: Inorganic Chemistry
Year: 2023
Citations: 8

High-Performance p-Type Quasi-Ohmic of WSe2 Transistors Using Vanadium-Doped WSe2 as Intermediate Layer Contact
Authors: X.P. Le, A. Venkatesan, D. Daw, T.A. Nguyen, M. Baithi, H. Bouzid, T.D. Nguyen
Journal: ACS Applied Materials & Interfaces
Year: 2024
Citations: (Not yet available, recently published)

Signature of Possible Spin Liquid State at 2K in Spin-Frustrated Cr1-xFexPSe3 Alloy
Authors: M. Baithi, N.T. Dang, T.D. Nguyen, T.A. Tran, T.K. Dinh, S. Choi, D.L. Duong
Journal: Journal of Alloys and Compounds
Year: 2024
Citations: (Not yet available, recently published)

Observation of Strange Metal in Hole-Doped Valley-Spin Insulator
Authors: T.D. Nguyen, B. Mallesh, S.J. Kim, H. Bouzid, B. Cho, X.P. Le, T.D. Ngo, W.J. Yoo, …
Journal: arXiv preprint
Year: 2022
Citations: (Preprint, citation data varies on indexing platforms)