Yafei Luo | Drug Delivery | Best Researcher Award

Dr. Yafei Luo | Drug Delivery | Best Researcher Award

Lab Master, Chongqing University of Arts and Sciences, China

Yafei Luo, born on October 4, 1990, in Leshan, Sichuan Province, China, is a dedicated researcher in Physical Chemistry. Holding a Master’s degree from Southwest University under the guidance of Prof. Wei Shen, he has been active in theoretical and computational chemistry since 2013. Luo’s early work involved designing phosphorescent Pt(II) and Ir(III) complexes with a focus on photodeactivation mechanisms. He expanded his research into catalysis and drug design, investigating cycloisomerization, semihydrogenation, and coupling reactions, using tools like Gaussian, VASP, ADF, and Discovery Studio. His computational methods include DFT, AIMD simulations, MECP calculations, and molecular docking. Luo’s work is well-recognized in peer-reviewed journals like Phys. Chem. Chem. Phys., J. Org. Chem., and J. Phys. Chem. C. With strong interdisciplinary expertise, he contributes significantly to organometallic photophysics, catalysis, and CADD. His academic journey reflects passion, precision, and progress in chemical research. 📘🔬💡

 Professional Profile

🎓 Education

Yafei Luo began his academic path at Leshan Normal University, where he earned his Bachelor’s degree in Chemistry from 2009 to 2013. His undergraduate training laid the foundation in core physical and chemical sciences. In 2013, he commenced his Master’s studies at the College of Chemistry and Chemical Engineering, Southwest University in Chongqing, China. Guided by Professor Wei Shen, his graduate research focused on theoretical investigations of phosphorescent platinum(II) and iridium(III) complexes. His thesis, completed in June 2016, was titled “Reasonable Design of High-Efficiency Phosphorescent Platinum(II), Iridium(III) Complexes and Theoretical Investigation on the Photo-Deactivation Mechanism.” Throughout his education, Luo gained expertise in advanced quantum chemistry techniques, including transition state analysis, radiative decay modeling, and excited-state deactivation pathways. These studies prepared him for in-depth research in photochemistry and catalysis, equipping him with powerful computational tools like Gaussian, ADF, and Materials Studio. His academic background bridges theory and application.

💼 Experience 

Since 2013, Yafei Luo has engaged in progressive research across physical chemistry, catalysis, and computational drug design. His early work emphasized the photostability and emission control of Pt(II) and Ir(III) phosphorescent complexes. He developed mechanisms to suppress nonradiative decay using ligand design and geometric control strategies. From 2016 onwards, he explored catalytic mechanisms for ω-alkynylfuran cycloisomerisation, acetylene semihydrogenation, and Suzuki coupling using nanoclusters and single-atom catalysts. His experience spans advanced modeling software such as Gaussian, VASP, ADF, SIESTA, and Discovery Studio, coupled with MD simulations and 3D-QSAR analysis. Additionally, Luo has actively contributed to virtual screening and structure–activity relationship studies in CADD, focusing on efficient drug delivery systems. His computational workflow includes transition state search, MECP computation, and surface interaction modeling. With interdisciplinary expertise, Luo has become a key contributor to both fundamental theory and practical chemical applications.

🏅 Awards and Honors

While detailed honors were not explicitly listed, Yafei Luo’s consistent publication in high-impact journals like J. Phys. Chem. C, ChemPhysChem, Phys. Chem. Chem. Phys., and Org. Electron. indicates peer recognition and scholarly impact. His research has been published alongside prominent authors and cited for its innovation in theoretical design and catalysis mechanisms. Luo’s selection for collaborative, multidisciplinary projects, including studies on nanocluster catalysis and drug design, reflects the scientific community’s trust in his expertise. His work has contributed to advancements in OLEDs, green catalysis, and structure–activity relationships. The complexity and originality of his computational designs also suggest competitive academic grants and project participation. His role in clarifying photodeactivation mechanisms and enhancing catalyst stability indicates a reputation for precision and innovation in theoretical chemistry. These academic achievements position him as a rising scholar in computational physical chemistry. 🏆

🔬 Research Focus 

Yafei Luo’s research spans theoretical photochemistry, catalysis, and computer-aided drug design. His core expertise lies in the design and photostability of phosphorescent Pt(II) and Ir(III) complexes, targeting emission tuning and suppression of nonradiative decay. Luo investigates photodeactivation pathways through quantum chemistry, using MECP searches, Huang-Rhys factor calculations, and AIMD simulations. His work has expanded into catalytic mechanisms of organic transformations, such as ω-alkynylfuran cycloisomerisation, semihydrogenation of alkynes, and Suzuki coupling reactions. These studies often involve metal clusters, single-atom catalysts, and oxide supports. Since 2016, he has contributed to computer-aided drug discovery (CADD), performing virtual screening, 3D-QSAR modeling, and molecular dynamics simulations to evaluate drug–target interactions. His computational skills include Gaussian, VASP, ADF, Materials Studio, and Amber, making his research deeply interdisciplinary. Luo aims to bridge materials chemistry, catalysis, and pharmaceutical applications through theoretical insights.

Publication Top Notes 

 Redox-neutral depolymerization of lignin-derived aryl ethers catalyzed by Rh(III)-complexes: a mechanistic insight

  • Authors: Zhang Yan, Luo Yafei, Hu Changwei, Tang Dianyong, Su Zhishan
    Journal: Physical Chemistry Chemical Physics, 2024
    Citation Format:
    Zhang, Y., Luo, Y., Hu, C., Tang, D., & Su, Z. (2024). Redox-neutral depolymerization of lignin-derived aryl ethers catalyzed by Rh(III)-complexes: a mechanistic insight. Physical Chemistry Chemical Physics.
  • 🔍 Summary:
    This paper explores the catalytic mechanism of Rh(III)-complexes in the redox-neutral cleavage of lignin-derived aryl ether bonds. Through computational and possibly experimental investigations, the authors reveal the energy profiles, intermediates, and transition states that drive this green depolymerization process, potentially advancing sustainable biomass conversion strategies.

 Influence of coordinate character on the photo-deactivate process for Pt(II) complex: A theoretical investigation

  • Authors: Luo Yafei, Tang Lingkai, Zeng Wanrui, Hu Jianping, Tang Dianyong
    Journal: Optical Materials, 2024
    Citation Format:
    Luo, Y., Tang, L., Zeng, W., Hu, J., & Tang, D. (2024). Influence of coordinate character on the photo-deactivate process for Pt(II) complex: A theoretical investigation. Optical Materials.
  • 🔍 Summary:
    The study offers theoretical insights into how the coordination environment of Pt(II) complexes influences their photo-deactivation pathways. By analyzing excited-state dynamics and electronic configurations, the work informs the design of photostable metal complexes for applications in optoelectronics and sensing.

Alcohol solvent effect on the self-assembly behaviors of lignin oligomers

  • Authors: Ma Ya, Jiang Zhicheng, Luo Yafei, Luo Yiping, Shi Bi
    Journal: Green Energy and Environment, 2024 (Open Access)
    Citation Format:
    Ma, Y., Jiang, Z., Luo, Y., Luo, Y., & Shi, B. (2024). Alcohol solvent effect on the self-assembly behaviors of lignin oligomers. Green Energy and Environment.
  • 🔍 Summary:
    This open-access article investigates how different alcohol solvents impact the self-assembly mechanisms of lignin oligomers. The findings suggest that solvent polarity and hydrogen bonding critically influence aggregation behavior, offering implications for lignin valorization and the design of functional biobased materials.

🔬 Conclusion

Yafei Luo is a highly accomplished researcher specializing in physical chemistry with a focus on theoretical investigations of phosphorescent metal complexes, catalytic mechanisms, and drug design. With a solid academic background and extensive experience in computational modeling, he has made significant contributions to understanding photodeactivation pathways, catalytic efficiencies, and molecular interactions. His proficiency in tools like Gaussian, Materials Studio, VASP, and Discovery Studio has empowered his exploration of complex systems across photophysics, catalysis, and pharmaceuticals. Through 18+ peer-reviewed publications, Yafei has demonstrated scholarly excellence and continues to influence the field with innovative, multidisciplinary research. 🌟📘⚗️

Vijay Kumar Panthi | Medicine and Health Sciences | Best Researcher Award

Mr. Vijay Kumar Panthi | Medicine and Health Sciences | Best Researcher Award

PhD Candidate, Queensland University of Technology, Australia

Vijay Kumar Panthi is a seasoned professional in Pharmaceutics with a focus on drug delivery and formulation. He holds a Master’s degree in Pharmacy (Pharmaceutics) from Mokpo National University, South Korea, and a Bachelor’s degree in Pharmacy from Tribhuvan University, Nepal. With extensive experience in formulation, research, and development, he has worked with several prominent pharmaceutical companies, including Royal Sasa Nepal Pharmaceuticals and Corel Pharmaceuticals. His expertise spans across nanoformulations, drug delivery systems, and formulation development for anticancer and anti-aging treatments. He has also contributed to several publications and conference posters, particularly in the field of nanomedicine, wound healing, and oral drug bioavailability. His research interests center around enhancing drug solubility and permeability, particularly for anticancer and diabetes treatments. He is a registered pharmacist with the Pharmacy Council of Nepal and actively engages in clinical pharmacy training and regulatory affairs.

Profile

Education

Vijay Kumar Panthi completed his Master’s in Pharmacy (Pharmaceutics) from Mokpo National University, South Korea, between 2017-2019. This advanced program deepened his knowledge of drug formulation, nanoformulations, and drug delivery systems. He earned his Bachelor’s degree in Pharmacy from Tribhuvan University, Nepal, at Sunsari Technical College, Dharan, between 2010 and 2014. Additionally, he completed Intermediate studies in Pharmacy at the Nepal Institute of Medical Science and Technology (NIMST), Kathmandu. Before that, he graduated from Mukti Higher Secondary School, Pyuthan, Nepal, in 2005. His academic journey has provided him with a solid foundation in pharmaceutical sciences and research, focusing on developing innovative solutions to improve drug efficacy and bioavailability, particularly in cancer and diabetes therapies.

Experience

Vijay Kumar Panthi has over 10 years of experience in the pharmaceutical industry, spanning formulation development, research, and regulatory affairs. He currently serves as the Manager of Formulation, Research, and Development (FR&D) at Royal Sasa Nepal Pharmaceuticals. Prior to this, he held the same position at Corel Pharmaceuticals Pvt. Ltd., where he developed and tested various drug formulations. His experience also includes conducting formulation and development research at Mokpo National University, South Korea, between 2017 and 2019. Additionally, he worked at Asian Pharmaceuticals Pvt. Ltd., where he contributed to GMP-certified projects, regulatory affairs, and validation processes. He has also participated in industrial training at companies like Everest Pharmaceuticals, Nepal, and Zydus Healthcare, India, which further honed his practical knowledge. Vijay’s diverse experience across multiple pharmaceutical functions highlights his expertise in drug formulation and development, particularly for anticancer and anti-aging applications.

Research Focus

Vijay Kumar Panthi’s primary research interests lie in the formulation of drug delivery systems, particularly for anticancer and diabetes treatments. His work focuses on enhancing the solubility, permeability, and bioavailability of active pharmaceutical ingredients (APIs), particularly those with limited oral bioavailability. In his Master’s thesis, he worked on the co-delivery system of pemetrexed and quercetin via multiple nanoemulsions to improve oral bioavailability and anticancer efficacy. His interest in nanoformulations extends to other therapeutic areas such as wound healing and anti-aging. By utilizing nanoemulsions, liposomes, and hydrogels, Vijay aims to develop novel drug delivery systems that improve the therapeutic outcomes of drugs for various diseases, especially chronic conditions like cancer and diabetes. His research on the formulation of anti-acne treatments and serine protease formulations for inflammation also demonstrates his versatility and commitment to improving patient care through scientific advancements.

Publication Top Notes

  1. Characterization and In Vivo Evaluation of an Oral Multiple Nanoemulsive System for Co-Delivery of Pemetrexed and Quercetin 📚💊
  2. Preparation, Characterization, and Biological Activities of Topical Anti-Aging Ingredients in a Citrus junos Callus Extract 🍊💆‍♂️
  3. Formulation and Development of Adapalene Topical Nanohydrogel Using Different Surfactants and Cosurfactants for Antiacne Activity: In Vitro and Ex Vivo Evaluation 🧴🔬
  4. Enhanced Oral Absorption of Pemetrexed by Ion-Pairing Complex Formation with Deoxycholic Acid Derivative and Multiple Nanoemulsion Formulations 💊🧪
  5. Formulation and Development of Serratiopeptidase Enteric Coated Tablets and Analytical Method Validation by UV Spectroscopy 🧫🔬
  6. A Validated RP-HPLC Method for Simultaneous Determination of Cefixime and Clavulanic Acid Powder in Pediatric Oral Suspension 🧪👶
  7. Preparation and Characterization of Callus Extract From Pyrus pyrifolia and Investigation of Its Effects on Skin Regeneration 🍐🧴
  8. Formulation and Development of Water-in-Oil Emulsion-Based Luliconazole Cream: In Vitro Characterization and Analytical Method Validation by RP-HPLC 🧴🔬