Jianping Li | Biotechnology | Best Researcher Award

Prof. Jianping Li | Biotechnology | Best Researcher Award

Associate professor at Zhejiang Normal University, China

Jianping Li, Ph.D., is an Associate Professor and master’s supervisor at Zhejiang Normal University. He specializes in micro- and nano‑scale actuators and sensors, bioelectrical impedance measurements, and energy‑harvesting technologies. Dr. Li has led around 20 academic projects and contributed to four industry collaborations. With over 130 scholarly publications, including 13 recognized by the Chinese Academy of Sciences and two among the top 1% most‑cited in ESI, his work drives innovation in piezoelectric precision positioning and early detection of thrombosis and tumors. He has authored or co‑authored six monographs/chapters and holds about 50 Chinese invention patents. Dr. Li serves on editorial boards for both Chinese and international journals such as Sensors, Frontiers in Mechanical Engineering, and IEEE Transactions on Industrial Electronics. He’s an IEEE, Chinese Society of Instrumentation & Control, and Japanese Thrombolysis Society member. His research has earned him the First Prize in the Mechanical Industry Science & Technology Award. He is deeply involved in advancing biomedical sensing and smart materials technology.

Professional Profiles📖

🎓 Education 

Dr. Jianping Li earned his Ph.D. in Mechanical Engineering, with a specialized focus on piezoelectric materials and their applications in micro/nano positioning and sensing. His doctoral research laid the foundation for innovations in actuator technology, energy harvesting, and bioelectrical impedance diagnostics. Through rigorous training, he mastered experimental instrumentation—including sealing ultra‑high‑temperature chambers, topology‑optimized specimen design, and precision signal acquisition—alongside theoretical modeling methods like finite-element analysis and multi‑physics coupling. His academic journey integrated deep coursework in mechanics, materials science, electronics, and bioengineering. During this formative period, he honed interdisciplinary skills bridging engineering and biomedical science. Publications during his Ph.D. included high-impact journals and electronic conference proceedings. Over time, he extended his scholarly output to six monographs and 50 patents, demonstrating how his educational grounding enabled groundbreaking research and practical engineering solutions in instrumentation and diagnostics.

🛠️ Experience 

Dr. Jianping Li brings over a decade of experience in academia and industry. At Zhejiang Normal University, he teaches and mentors graduate students as an Associate Professor and master’s supervisor. He leads 20 academic research projects spanning piezoelectric actuators, bioelectrical impedance systems, and energy-harvesting devices. In industry partnerships, he has overseen four consultancy projects, translating lab innovations into real-world applications. His extensive portfolio of 50 Chinese innovation patents covers actuator mechanisms, sensor modules, and diagnostic tools. He serves on editorial boards and guest-edits for journals like Sensors and Frontiers in Mechanical Engineering, and reviews manuscripts for IEEE Transactions on Industrial Electronics and Advanced Materials. Dr. Li also collaborates internationally through IEEE and Japanese research societies. He has designed complex instrumentation, including ultra-high-temperature sealed chambers and optimized mechanical testing systems. His breadth of experience reflects a seamless integration of research leadership, teaching, engineering design, intellectual property development, and global scientific engagement.

🏆 Awards & Honors 

Dr. Jianping Li excellence has been recognized through multiple honors and awards. He earned the First Prize in Technical Invention from the Chinese Mechanical Industry Science & Technology Award for his innovative work on sealed biaxial loading chambers and topology-optimized testing devices. Among his scholarly output, 13 papers were selected as “top papers” by the Chinese Academy of Sciences, and 2 achieved placement in the top 1% in ESI citation rankings. He’s been acknowledged as an Outstanding Reviewer by journals such as Sensors, IEEE/ASME Transactions on Mechatronics, and Advanced Materials. He’s served as Guest Editor and review editor for prestigious journals like Frontiers in Sensors and Biosensors & Bioelectronics, underscoring his leadership in peer review. His six monographs/book chapters from IntechOpen further showcase his editorial and scholarly impact. He holds 50 innovation patents—another testament to his inventiveness. His memberships (e.g., senior IEEE, Chinese biomedical and mechanical societies, Japanese Thrombolysis) reflect his professional standing and peer recognition. Collectively, these accolades reflect his multidisciplinary influence in science and engineering.

🔬 Research Focus 

Dr. Jianping Li research is centered at the intersection of smart mechatronic systems and biomedical diagnostics. He develops piezoelectric micro/nano actuators for ultra-precise motion control using advanced materials and topology-optimized structures. In the biomedical arena, he innovates bioelectrical impedance spectroscopy tools for early detection of thrombosis and tumors, designing portable and sensitive diagnostic devices. He also explores energy harvesting, converting ambient mechanical energy into electrical power for self-sustained sensing applications through piezoelectric and similar transducers. His work includes designing multi-field coupling test instruments, such as ultra-high-temperature sealed chambers for material testing. He integrates these domains to create intelligent, low-power diagnostic platforms and precision positioning systems. His experiments often span theoretical modeling, structural optimization, sensor integration, and prototype validation. This interdisciplinary research is positioned to drive advancements in medical diagnostics, materials testing, and autonomous micro-electromechanical systems.

💡 Skills 

Dr. Jianping Li brings a rich, interdisciplinary skill set combining engineering, biomedical science, and innovation management. He excels in actuator/sensor design—especially piezoelectric devices—employing topology optimization, finite-element modeling, and precision drive electronics. His expertise includes bioelectrical impedance measurement, developing diagnostic signal processing systems for thrombosis/tumor detection. He is experienced in energy-harvesting systems, integrating transducers and power-management circuits for autonomous sensors. He designs and builds experimental instrumentation, such as sealed high-temperature chambers and biaxial-loading rigs. He’s adept in multi-physics materials testing, combining mechanical, thermal, and electrical fields. With 50 patents, he navigates intellectual property development and technical writing. He also leads academic publication—with over 130 papers—and excels in editorial and peer-review workflows, contributing to journals like Sensors and IEEE Transactions. His project management skills include coordination of both academic and industry consortia, often across Chinese and Japanese institutions. Overall, Dr. Li is a systems thinker: bridging experimental mechanics, electronic diagnostics, and applied engineering.

📚 Publications Top Notes

Siphon self-powered water level warning system with energy harvesting function based on triboelectric nanogenerators

Authors: Not specified (multiple authors)

Year: 2025

Citations: 0

Source: Sustainable Energy Technologies and Assessments


Improving the surface charge density of multi-layered triboelectric nanogenerator by dual-electric field mutual inductance

Authors: Not specified

Year: 2025

Citations: 0

Source: Chemical Engineering Journal


Review of Triboelectric Nanogenerators Designs for Wave Energy Harvesting: Tailoring Strategies for Various Marine Conditions

Authors: Not specified

Year: 2025

Citations: 2

Source: Review Article (journal unspecified)


Recent Advances in Microfluidic Impedance Detection: Principle, Design and Applications

Authors: Not specified

Year: 2025

Citations: 0

Source: Review Article (journal unspecified)


Application of bioelectrical impedance detection techniques: Cells and tissues

Authors: Not specified

Year: 2025

Citations: 1

Source: Review Article (journal unspecified)

🔚 Conclusion

Dr. Jianping Li exemplifies the fusion of cutting-edge engineering and biomedical innovation. His pioneering research in micro/nano piezoelectric actuators and bioelectrical impedance diagnostics has advanced both precision instrumentation and early disease detection technologies. With a prolific publication record, numerous patents, and recognized awards, he continues to push the boundaries of mechatronic systems and healthcare applications. His interdisciplinary expertise, leadership in academia, and collaborations across industry and international societies position him as a leading figure driving impactful scientific and technological progress. Dr. Li’s ongoing commitment to innovation promises to deliver transformative solutions in medical diagnostics and smart material systems, underscoring his qualification for the Best Researcher Award.

Kavya Keremane | Biotechnology | Best Researcher Award

Dr. Kavya Keremane | Biotechnology | Best Researcher Award

postdoctoral researcher at The Pennsylvania State University, United States

Dr. Kavya S. Keremane is a distinguished postdoctoral research scholar at the Department of Materials Science and Engineering, Pennsylvania State University, USA. With a Ph.D. in Materials Science, her research bridges the realms of advanced optoelectronics, photovoltaics, and neuromorphic computing. She is an expert in designing, synthesizing, and fabricating next-generation materials and devices such as perovskite solar cells, biological sensors, and memory devices. Her journey encompasses experience from prestigious institutions across India, Singapore, and the United States. Dr. Keremane’s scholarly impact is evident through her editorial roles with Discover Energy (Springer Nature) and the Journal of Organic Chemistry Synthesis and Process Development, alongside a growing list of high-impact publications. Her interdisciplinary contributions continue to redefine how material science drives innovation in energy and bio-integrated electronics. 🌍🔬⚡

Professional Profiles📖

Google Scholar 

ORCID 

🎓 Education

Dr. Kavya S. Keremane earned her Ph.D. in Materials Science from the National Institute of Technology Karnataka (NITK), Surathkal, India, where she conducted pioneering work on perovskite solar modules and sustainable energy devices. She further deepened her expertise with thesis-based projects at Nanyang Technological University (NTU), Singapore, focusing on large-area carbon-based perovskite modules. Earlier, she completed her Master’s studies in Chemistry with a specialization in organic synthesis at a reputed Indian institution, contributing to research on β-amino acid derivatives at Syngene International Ltd., Biocon. Her academic journey blends theoretical knowledge with practical applications, especially in synthetic organic chemistry and device engineering. Dr. Keremane’s educational background reflects a seamless transition from drug discovery chemistry to energy harvesting materials, showcasing her versatile aptitude for research and innovation across multiple scientific domains. 📚🧪🌱

🧪 Experience

Dr. Keremane brings over a decade of multidisciplinary research and industrial experience. At Penn State University, she currently explores advanced optoelectronic materials, neuromorphic computing, and wireless power transfer systems. Her Ph.D. research included developing tandem solar cells, DSSCs, and large-area stable modules. During her time at NTU Singapore and NITK Surathkal, she focused on photovoltaics and organic semiconductor design. Before transitioning to academia, she worked at Biocon and SignalChem Lifesciences, where she contributed to the synthesis of anticancer drug candidates using advanced synthetic organic chemistry. Her research has led to innovations in DNA-perovskite memory devices and photochemical neurotransmitter sensors funded by NSF and AFSOR. As an editor and prolific researcher, Dr. Keremane integrates material design with translational goals, crafting cutting-edge solutions in energy and biosensing. Her diverse roles reflect her ability to merge deep scientific inquiry with technological application. 🔧⚗️🌞

🏅 Awards and Honors

Dr. Kavya S. Keremane has received prestigious fellowships and project grants from leading funding agencies, including the National Science Foundation (NSF), Air Force Office of Scientific Research (AFSOR), and the U.S. Army RIF program. These awards supported her groundbreaking research on DNA-integrated memory devices, laser-induced wireless power systems, and photoreceptive architectures. Her doctoral work on large-area carbon-based perovskite solar modules earned acclaim for its innovation and potential scalability. She has been recognized for academic excellence throughout her education and has played influential editorial roles in high-impact journals such as Discover Energy (Springer Nature). Her interdisciplinary research profile and significant scholarly output have positioned her as an emerging leader in material science and sustainable energy research. 🥇📖🌟

🔬 Research Focus

Dr. Keremane’s research traverses the interface of material science, optoelectronics, and bioelectronics. Her core areas include perovskite photovoltaics (including tandem and transparent structures), memristor devices for neuromorphic computing, and organic/inorganic hybrid materials for next-gen energy solutions. She is actively developing biosensors and biomimetic devices, photochemical neurotransmitter sensors, and quantum-enhanced optoelectronics. Her work integrates fundamental materials chemistry with device engineering, enabling practical applications in energy harvesting, wireless power transfer, and high-density data storage. She also explores large-area device fabrication for real-world deployment, emphasizing stability, scalability, and sustainability. With funding from top-tier organizations, her research continues to advance frontier technologies at the crossroads of electronics and biology. ⚡🧠🔍

🛠️  Research Skills

Dr. Kavya S. Keremane boasts a versatile skill set encompassing materials synthesis, nanostructuring, thin-film fabrication, and device engineering. She is proficient in optoelectronic material design, including quantum dots, hybrid perovskites, and organic semiconductors. Her expertise extends to solar cell fabrication (DSSC, tandem, organic, perovskite), photodetectors, and memristors. She has hands-on experience with laser-based systems for wireless energy transfer and designing bio-interfacing sensors for diagnostics. Her strong foundation in synthetic organic chemistry enables her to develop new functional molecules for both pharmaceutical and electronic applications. She is adept in advanced instrumentation, photophysical characterization, and collaborative R&D workflows, making her a valuable contributor to multidisciplinary scientific teams. 🧪💡🔬

✅ Conclusion 

Dr. Kavya S. Keremane is an exceptionally qualified candidate for the Best Researcher Award, with a track record that reflects both depth and breadth across interdisciplinary scientific domains. Her work in materials science, optoelectronics, and energy technology not only advances fundamental understanding but also drives practical innovations with real-world impact. Through her commitment to rigorous research and creative problem-solving, she has consistently delivered high-quality publications and meaningful contributions to the scientific community. Dr. Keremane’s ability to bridge theory and application underscores her unique position as a forward-thinking researcher. While further expanding her leadership in research funding and translational innovation would enhance her already impressive portfolio, her current achievements stand as a testament to her excellence and promise. She serves as a role model for emerging scientists, inspiring through both intellect and integrity. Dr. Keremane is a brilliant scientist whose work exemplifies innovation, dedication, and impact—strongly deserving of the Best Researcher Award.

Publications Top Notes📚

New carbazole-based symmetric double D–A type chromophores for DSSC application: Impact of di-anchoring nature on photoelectrochemical processes
Journal of Photochemistry and Photobiology A: Chemistry — 2025
Citations: N/A (recent/forthcoming)

A Molecular‐Level Exploration of Dopant‐Free Pyrazine‐Derived Hole Transport Materials: Investigation of Interfacial Interaction in Perovskite Photovoltaics
ChemPlusChem — 2025
Citations: N/A

Recent Advances in Aggregation-Induced Emission (AIE) Fluorescent Sensors for Biomolecule Detection
Chemosensors — 2025
Citations: N/A

Deciphering Potent Protein Tyrosine Phosphatase‐1B Inhibitors Through In silico Molecular Docking, MMGBSA, and Molecular Dynamics
ChemistrySelect — 2025
Citations: N/A

Pioneering the future of dentistry: AI-driven 3D bioprinting for next-generation clinical applications
Translational Dental Research — 2025
Citations: N/A

Dopant-free hydrophobic fluorene-based hole transport materials: impact of methoxy-substituted triphenylamine and carbazole peripheral groups on the performance of perovskite solar cells
Sustainable Energy & Fuels — 2025
Citations: N/A

Push–pull carbazole twin dyads as efficient sensitizers/co-sensitizers for DSSC application: effect of various anchoring groups on photovoltaic performance
Journal of Materials Chemistry C — 2025
Citations: N/A

Photovoltaic bioelectronics merging biology with new generation semiconductors and light in biophotovoltaics photobiomodulation and biosensing
npj Biosensing — 2024
Citations: ~7

HFIP‐Mediated Dual C(Ar)‐Alkylation Process Towards the Regioselective Synthesis of Triarylmethanes (TRAMs)
Chemistry – An Asian Journal — 2024
Citations: N/A

HFIP‐Mediated Cyclodesulfurization Approach for the Synthesis of 2‐Aminobenzoxazole and 2‐Aminobenzothiazole Derivatives
Asian Journal of Organic Chemistry — 2024
Citations: ~3

Reductive C−N Bond Formation of Nitroarenes Using Pd@rGO‐CuFe₂O₄ Magnetic Nanoparticles in Water towards the Synthesis of N‐Aryl Formamide and Azole Derivatives
Asian Journal of Organic Chemistry — 2024
Citations: N/A

Metal‐Free Organic Dyes for NiO‐Based Dye‐Sensitized Solar Cells: Recent Developments and Future Perspectives
Energy Technology — 2024
Citations: ~6

Exploring optical, electrochemical, thermal, and theoretical aspects of simple carbazole-derived organic dyes
Heliyon — 2024
Citations: ~15

Perovskite Optoelectronic Devices (Book) — 2024
Citations: N/A (book citations not typically tracked)

Synthesis and Characterization of Novel Pd@rGO−CuFe₂O₄ Magnetic Nanoparticles: A Recyclable Catalyst for C−C Coupling Reaction in Biomass‐Derived Organic Solvent
Asian Journal of Organic Chemistry — 2023
Citations: N/A

Synthesis, optical, electrochemical, and computational investigation of new cyanopyridine-centered organic dyads
Optical Materials — 2023
Citations: ~23

Push‐Pull Phenoxazine‐Based Sensitizers for p‐Type DSSCs: Effect of Acceptor Units on Photovoltaic Performance
ChemSusChem — 2022
Citations: ~12

New Carbazole-Based Sensitizers for p-Type DSSCs: Impact of the Position of Acceptor Units on Device Performance
The Journal of Physical Chemistry C — 2022
Citations: ~10

Carbazole based organic dyes as effective photosensitizers: A comprehensive analysis of their structure‐property relationships
Electrochemical Science Advances — 2022
Citations: ~24

Simple carbazole derivatives with mono/dimethoxyphenylacrylonitrile substituents as hole‐transporting materials: Performance studies in hybrid perovskite solar cells
Electrochemical Science Advances — 2021
Citations: ~10

Improving the Performance of Carbon-Based Perovskite Solar Modules (70 cm²) by Incorporating Cesium Halide in Mesoporous TiO₂
ACS Applied Energy Materials — 2021
Citations: ~21

Simple 3,6‐disubstituted Carbazoles as Potential Hole‐Transport Materials: Photophysical, Electrochemical and Theoretical Studies
Photochemistry and Photobiology — 2020
Citations: ~24

A simple D-A-π-A configured carbazole based dye as an active photo-sensitizer: A comparative investigation on different parameters of cell
Journal of Molecular Liquids — 2020
Citations: ~44

Solvent selection for highly reproducible carbon-based mixed-cation hybrid lead halide perovskite solar cells via adduct approach
Solar Energy — 2020
Citations: ~15

Simple Thiophene Based Organic Dyes as Active Photosensitizers for DSSC Application: from Molecular Design to Structure Property Relationship
Journal of Nano- and Electronic Physics — 2020
Citations: ~9

Simple thiophene-bridged D–π–A type chromophores for DSSCs: a comprehensive study of their sensitization and co-sensitization properties
Physical Chemistry Chemical Physics — 2020
Citations: ~45

Improvement in performance of N3 sensitized DSSCs with structurally simple aniline based organic co-sensitizers
Solar Energy — 2018
Citations: ~46

Highly efficient carbazole based co-sensitizers carrying electron deficient barbituric acid for NCSU-10 sensitized DSSCs
Solar Energy — 2018
Citations: ~34