Ranganathan Akimsha | Electronic Nose Technology | Innovative Research Award

Innovative Research Award

Ranganathan Akimsha
Affiliation University Of Kelaniya
Country Sri Lanka
Scopus ID 60262598700
Documents 3
Subject Area Electronic Nose Technology
Event Global Sensor Awards
ORCID 0009-0008-2216-1848

Ranganathan Akimsha
University Of Kelaniya, Sri Lanka

The Innovative Research Award recognizes researchers who demonstrate meaningful scholarly contributions through original scientific investigations, interdisciplinary collaboration, and emerging technological developments. Ranganathan Akimsha of the University Of Kelaniya has established research interests in Electronic Nose Technology, contributing to the advancement of sensing methodologies and analytical applications. The available scholarly profile reflects participation in peer-reviewed research dissemination and international academic visibility through indexed publications.[1]

Abstract

Electronic Nose Technology represents a multidisciplinary research field combining sensor engineering, pattern recognition, artificial intelligence, and analytical chemistry to identify volatile compounds for environmental, medical, agricultural, and industrial applications. Ranganathan Akimsha’s research profile reflects participation in this evolving domain through peer-reviewed scholarly publications indexed in Scopus. The Innovative Research Award acknowledges scientific originality, technical relevance, and commitment to advancing sensing technologies that contribute to future research and practical implementation.[1][3]

Keywords

  • Electronic Nose Technology
  • Chemical Sensors
  • Gas Sensing
  • Pattern Recognition
  • Sensor Systems
  • Analytical Instrumentation
  • Research Innovation

Introduction

Electronic nose systems integrate arrays of chemical sensors with computational algorithms to recognize complex odor patterns and volatile organic compounds. Their applications span disease diagnosis, food quality assessment, environmental monitoring, and industrial process control. Continuous improvements in sensor materials, machine learning, and signal processing have significantly enhanced system performance and reliability. Researchers contributing to this field support scientific progress through experimentation, publication, and interdisciplinary collaboration.[2]

Research Profile

Ranganathan Akimsha is affiliated with the University Of Kelaniya, Sri Lanka. The research profile is represented through Scopus Author ID 60262598700 and ORCID 0009-0008-2216-1848. Available bibliographic information indicates three indexed scholarly documents associated with Electronic Nose Technology and related sensing research. These publications contribute to the dissemination of scientific knowledge within the international research community.[1]

Research Contributions

  • Research in electronic nose sensing methodologies.
  • Support for multidisciplinary sensor-based analytical studies.
  • Contribution to peer-reviewed scientific communication.
  • Participation in advancing chemical sensing technologies.
  • Promotion of evidence-based research and academic collaboration.

Publications

The Scopus author profile lists three indexed research documents that collectively demonstrate scholarly engagement within Electronic Nose Technology. Publication activity serves as an important indicator of scientific productivity and contributes to research visibility through internationally recognized indexing services.[1]

Research Impact

Research impact extends beyond publication counts by encouraging scientific collaboration, reproducibility, technological innovation, and practical applications. Work within Electronic Nose Technology supports improvements in intelligent sensing systems capable of addressing healthcare, agriculture, food safety, and environmental monitoring challenges. Continued publication and collaboration enhance the long-term academic influence of researchers working in this field.[2]

Award Suitability

Based on the available scholarly profile, Ranganathan Akimsha demonstrates characteristics consistent with recognition under the Innovative Research Award, including participation in peer-reviewed research, contributions to Electronic Nose Technology, institutional affiliation with a recognized university, and internationally indexed academic visibility. The Global Sensor Awards recognize scientific excellence through transparent evaluation of originality, research quality, innovation, and professional contribution.[4]

Conclusion

The Innovative Research Award article summarizes the academic profile of Ranganathan Akimsha, highlighting scholarly engagement in Electronic Nose Technology and contributions to sensor science. Through peer-reviewed publications, institutional research activity, and internationally recognized researcher identifiers, the profile reflects ongoing participation in the advancement of sensing technologies while supporting future scientific collaboration and innovation.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Ranganathan Akimsha, Author ID 60262598700. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=60262598700
  2. Gardner, J. W., & Bartlett, P. N. Electronic Noses: Principles and Applications.
    DOI: https://doi.org/10.1093/acprof:oso/9780198559559.001.0001
  3. Review article on electronic nose technologies published in Sensors and Actuators B: Chemical.
    DOI: https://doi.org/10.1016/j.snb.2020.128470
  4. Global Sensor Awards. International Recognition for Excellence in Sensor Science and Innovation.
    https://globalsensorawards.com/

Asadullah Memon | Gas Sensors | Best Researcher Award

Best Researcher Award

Asadullah Memon
Mehran University of Engineering & Technology (SZAB Campus), Khairpur Mir’s, Sindh, Pakistan.

Asadullah Memon
Affiliation Mehran University of Engineering & Technology (SZAB Campus)
Country Pakistan
Scopus ID 57127624000
Documents 28
Citations 372
h-index 11
Subject Area Petroleum Engineering, Gas Sensors
Event Global Sensor Award
ORCID 0000-0002-6086-7138

Asadullah Memon is a Pakistani petroleum engineering academic, researcher, administrator, and Higher Education Commission-approved supervisor known for his scholarly contributions to unconventional hydrocarbon resources, shale gas adsorption mechanisms, reservoir engineering, enhanced oil recovery, and petroleum field development. Over a professional career spanning more than fifteen years, he has combined teaching excellence, research productivity, institutional leadership, and international collaboration to advance petroleum engineering education and energy research. His work has been published in leading international journals indexed in SCIE, Scopus, EI, and other major databases, contributing significantly to contemporary understanding of shale gas storage, adsorption behavior, permeability modeling, and reservoir optimization strategies.[1]

Abstract

This article presents a scholarly overview of Dr. Asadullah Memon’s academic career, research accomplishments, institutional leadership, and scientific contributions to petroleum engineering. His research portfolio encompasses shale gas adsorption, gas storage mechanisms, unconventional reservoirs, permeability modeling, enhanced oil recovery, reservoir simulation, carbon dioxide sequestration, and sustainable energy technologies. Through interdisciplinary collaboration and international research engagement, he has produced influential studies that contribute to both theoretical understanding and industrial application. His publication record, editorial responsibilities, supervision activities, and academic leadership collectively demonstrate a sustained commitment to advancing petroleum engineering research and education.[2]

Keywords

Petroleum Engineering, Shale Gas Reservoirs, Gas Adsorption, Enhanced Oil Recovery, Reservoir Simulation, Unconventional Resources, Carbon Sequestration, Natural Gas Engineering, Energy Sustainability, Oil and Gas Field Development.

Introduction

The petroleum industry increasingly depends on advanced scientific approaches to maximize hydrocarbon recovery while addressing environmental and sustainability challenges. Researchers specializing in unconventional reservoirs, shale formations, adsorption phenomena, and reservoir engineering play a central role in this transformation. Among such scholars, Dr. Asadullah Memon has emerged as a significant contributor through research focused on shale gas behavior, gas storage mechanisms, permeability prediction, enhanced oil recovery, and reservoir optimization. His academic journey from petroleum engineering student to departmental chairman reflects a sustained commitment to research excellence, educational leadership, and professional service.[3]

Research Profile

Dr. Memon earned his Bachelor of Engineering and Master of Engineering degrees in Petroleum Engineering from Mehran University of Engineering and Technology before completing a PhD in Oil and Gas Field Development Engineering from China University of Petroleum. His academic career includes progression through lecturer, assistant professor, associate professor, and chairman positions at Mehran University of Engineering and Technology (SZAB Campus), Khairpur Mir’s. His research activities focus on shale gas reservoirs, adsorption and desorption mechanisms, permeability modeling, gas-in-place estimation, enhanced oil recovery, reservoir simulation, and environmental aspects of hydrocarbon production.[1]

  • Associate Professor and Chairman, Department of Petroleum and Natural Gas Engineering.
  • HEC Approved Supervisor and academic leader.
  • Recipient of UPC Scholarship, Qingdao Government Scholarship, and Wang Tao Scholarship.
  • Founder Faculty Advisor of SPE MUCET Student Chapter.
  • Reviewer and Associate Editor for internationally recognized journals.

Research Contributions

Dr. Memon’s scholarly contributions are particularly notable in the field of unconventional hydrocarbon resources. His investigations into shale gas adsorption and storage mechanisms have provided new insights into pore structure behavior, effective porosity estimation, permeability changes, and gas-in-place calculations. Several of his publications explore the interaction between adsorption-induced pore radius changes, effective stress, and gas transport mechanisms in shale formations.[4]

His work has also addressed enhanced oil recovery technologies, including polymer flooding, nanoparticle-assisted displacement, chemical flooding, gas cycling, and reservoir optimization. These studies contribute to improved hydrocarbon recovery while supporting efficient resource management and sustainable production strategies.[5]

Publications

Selected high-impact publications authored or co-authored by Dr. Memon include:

  • Experimental Simulation on Imbibition of Residual Fracturing Fluid in Tight Sandstone Reservoirs (ASME Journal of Energy Resources Technology, 2019).
  • Effect of Gas Adsorption-Induced Pore Radius and Effective Stress on Shale Gas Permeability in Slip Flow (Open Geosciences, 2019).
  • Study of Gas Sorption, Stress Effects and Analysis of Effective Porosity and Permeability for Shale Gas Reservoirs (Journal of Petroleum Science and Engineering, 2020).
  • Gas Adsorption and Controlling Factors of Shale: Review, Application, Comparison and Challenges (Natural Resources Research, 2021).
  • Quantitative Models and Controlling Factors of Langmuir Volume and Pressure for Measurement of Shale Gas Adsorption (Arabian Journal of Geosciences, 2022).
  • Recent Progress on Gas Adsorption Models, Machine Learning Approaches and Molecular Simulation Techniques for Shale Reservoirs (Unconventional Resources, 2026).

Research Impact

The impact of Dr. Memon’s work extends beyond publication metrics. His studies have enhanced understanding of shale gas reservoir behavior, supported reservoir development strategies, improved predictive models for adsorption and permeability, and informed enhanced oil recovery methodologies. His publications have appeared in internationally recognized journals such as Journal of Petroleum Science and Engineering, Natural Resources Research, ACS Omega, Thermal Science, Arabian Journal of Geosciences, Open Geosciences, and ASME Journal of Energy Resources Technology. Furthermore, his contributions as editor, reviewer, conference participant, and supervisor have strengthened scholarly communication and academic quality within petroleum engineering.[4]

Award Suitability

Dr. Asadullah Memon demonstrates several characteristics associated with recipients of prestigious research awards. These include a sustained publication record, leadership in academic administration, successful supervision of research projects, editorial and peer-review contributions, international collaboration, and impactful investigations addressing contemporary energy challenges. His research has contributed to advances in unconventional hydrocarbon resources, reservoir engineering, and sustainable energy development while maintaining relevance to both academia and industry. Such achievements establish a strong foundation for recognition through an Outstanding Research Excellence Award or related international academic honors.[5]

Conclusion

Dr. Asadullah Memon has established a distinguished academic profile through excellence in petroleum engineering education, scientific research, institutional leadership, and professional service. His extensive body of work in shale gas systems, adsorption science, reservoir simulation, and enhanced oil recovery has contributed to the advancement of energy research and engineering practice. Through scholarly productivity, mentorship, and international engagement, he continues to influence the development of petroleum engineering research and education on both national and international levels.

References

  1. Mehran University of Engineering & Technology. (2026). Faculty Profile: Dr. Asadullah Memon.
    https://www.muetkhp.edu.pk/p-ng-engineering-2/faculty-of-png-engineering/
  2. Elsevier. Scopus Author Details: Asadullah Memon, Author ID 57127624000.
    https://www.scopus.com/authid/detail.uri?authorId=57127624000
  3. ORCID. Research Profile of Dr. Asadullah Memon.
    https://orcid.org/0000-0002-6086-7138
  4. Memon, A., Li, A., Han, W., Tian, W. (2019). Effect of Gas Adsorption-Induced Pore Radius and Effective Stress on Shale Gas Permeability in Slip Flow.
    https://doi.org/10.1515/geo-2019-0073
  5. Memon, A., Li, A., Jacqueline, N., Kashif, M., Ma, M. (2020). Study of Gas Sorption, Stress Effects and Analysis of Effective Porosity and Permeability for Shale Gas Reservoirs.
    https://doi.org/10.1016/j.petrol.2020.107370

Ms. Preeti Shakya | Gas Sensor | Best Researcher Award

Ms. Preeti Shakya | Gas Sensor | Best Researcher Award 

Ms. Preeti Shakya, Malaviya National Institute of Technology Jaipur, India

Preeti Shakya is a dedicated researcher in nanotechnology, currently affiliated with the Materials Research Centre at Malaviya National Institute of Technology (MNIT) Jaipur. She specializes in nanoscale materials and device design, with a particular focus on gas sensor development using MEMS technology and advanced 2D materials. Her research expertise spans synthesis and characterization of nanomaterials such as graphene oxide (GO), reduced graphene oxide (rGO), MoS₂, MoSe₂, WSe₂, and CNT-based composites. Proficient in advanced characterization techniques including FTIR, UV-Vis spectroscopy, BET surface area measurement, FE-SEM, HR-TEM, and XPS, she actively contributes to the development of next-generation sensing devices. Preeti holds a B.Tech in Electronics and Communication Engineering from Rajasthan Technical University, an M.Tech in Nanotechnology from University College of Engineering, RTU Kota, and is pursuing a Ph.D. at MNIT Jaipur. Her research interests extend to gas sensors, supercapacitors, batteries, nanofabrication, and the development of novel intelligent material systems. Passionate about advancing gas sensor technology, she is committed to creating innovative solutions that have a lasting impact on the field.

Professional Profile:

ORCID

SCOPUS

Summary of Suitability for Best Researcher Award  

Preeti Shakya demonstrates a strong background in nanotechnology, particularly in the development of gas sensors using MEMS technology and advanced nanomaterials. Her expertise in synthesis, fabrication, and characterization of nanoscale materials, along with her proficiency in advanced research software and instrumentation, makes her a strong contender for the Best Researcher Award.

📚 Education

  • 🎓 Doctor of Philosophy (Ph.D.) – Materials Research Centre, Malaviya National Institute of Technology Jaipur (CGPA: 8.1)
  • 🎓 M.Tech (Nanotechnology) – University College of Engineering, RTU Kota (79%)
  • 🎓 B.Tech (Electronics and Communication Engineering) – Rajasthan Technical University (75.75%)
  • 🏫 All India Senior Secondary School Examination (2011) – R.B.S.E (72.92%)
  • 🏫 All India Secondary School Examination (2009) – C.B.S.E (61.61%)

💼 Work Experience

🔬 Nanotechnology Researcher – Specializing in:

  • Gas sensor development using MEMS technology
  • Synthesis of nanomaterials (GO, rGO, MoS₂, MoSe₂, WSe₂, CNT, rGO-CNT composites)
  • Electronic devices (Gas Sensors, Supercapacitors, Batteries)
  • Advanced characterization techniques (FTIR, UV-Vis, FE-SEM, HR-TEM, XPS, Raman spectroscopy)
  • Nanofabrication & research instrumentation development

🏆 Achievements, Awards & Honors

🌟 Recognized researcher in nanotechnology with expertise in advanced materials
🏅 Published research in gas sensors and sensing materials
🎖️ Contributions to MEMS-based gas sensor development using 2D materials
🏆 Active participation in national & international research projects

Publication Top Notes:

Charge storage kinetics of interconnected MnO<sub>2</sub> nano-needles/reduced graphene oxide composite for high energy density quasi-solid-state sodium ion asymmetric supercapacitor

Unraveling the Pseudocapacitive Charge Storage Mechanism of NiCo<sub>2</sub>O<sub>4</sub> Nanoflakes for Advanced Quasi Solid-State Hybrid Supercapacitor

Electrochemical Study of Reduced Graphene Oxide for Supercapacitor Application

Exploring Eco-friendly Nanocellulose-Based Hydrogel Membranes as Flexible and Biocompatible Electrolyte in Supercapacitors

Ultrathin and Flexible Gas Sensor Based on Monolayer Graphene for Environmental Monitoring