Emmanuel Ebikabowei Enemugha | Mechanical Sensors | Best Researcher Award

Best Researcher Award

Emmanuel Ebikabowei Enemugha
Department of Mechanical Engineering, Universiti Malaya, Malaysia

Emmanuel Ebikabowei Enemugha
Affiliation Department of Mechanical Engineering, Universiti Malaya
Country Malaysia
Scopus ID 59722449500
Documents 7
Citations 2
h-index 1
Subject Area Mechanical Sensors
Event Global Sensor Awards
ORCID 0009-0000-8677-1006

Emmanuel Ebikabowei Enemugha is a researcher affiliated with the Department of Mechanical Engineering at Universiti Malaya, Kuala Lumpur, Malaysia. His documented research profile is associated with the subject area of mechanical sensors, placing his work within the broader fields of mechanical engineering, sensing technologies, instrumentation, and sensor-enabled engineering systems. The available bibliometric information records seven documents, two citations, and an h-index of one. These indicators provide a quantitative overview of his indexed research output and citation activity at the time of profile assessment.

The Best Researcher Award profile presented here summarizes the researcher’s academic affiliation, indexed research activity, subject area, and relevance to sensor research. The recognition is considered in the context of the Global Sensor Awards, with emphasis on research engagement and contributions connected with sensing technologies.

Abstract

Emmanuel Ebikabowei Enemugha is affiliated with the Department of Mechanical Engineering at Universiti Malaya, Malaysia, and is associated with research in mechanical sensors. His indexed profile currently records seven documents, two citations, and an h-index of one. [1] Within the context of sensor research, mechanical sensing encompasses the measurement and interpretation of physical quantities such as force, pressure, displacement, strain, acceleration, and related mechanical phenomena. Such technologies support applications across engineering, manufacturing, automation, monitoring, and instrumentation. The research profile therefore represents an academic trajectory relevant to the broader development of sensing and mechanical engineering technologies.

Keywords

Mechanical Sensors; Sensor Technology; Mechanical Engineering; Sensing Systems; Instrumentation; Sensor Research; Engineering Research; Measurement Systems; Smart Sensors; Global Sensor Awards.

Introduction

Sensors provide a fundamental interface between physical phenomena and digital or analytical systems. In mechanical engineering, sensor technologies are used to detect and quantify mechanical variables and convert physical changes into measurable signals. The continuing development of compact, responsive, reliable, and application-specific sensors has contributed to advances in industrial monitoring, automation, robotics, transportation, manufacturing, and other engineering domains.

Mechanical sensor research can involve the design of sensing structures, materials, transduction mechanisms, signal acquisition, calibration, characterization, and integration with engineering systems. The field also intersects with emerging areas such as microelectromechanical systems, intelligent monitoring, condition assessment, and data-driven sensing. In this context, researchers working at the intersection of mechanical engineering and sensing contribute to the development and application of technologies capable of translating mechanical behavior into useful information.

Enemugha’s documented subject-area classification as Mechanical Sensors places his research profile within this interdisciplinary technical landscape. His affiliation with the Department of Mechanical Engineering at Universiti Malaya provides an institutional context for research and academic activity in mechanical engineering and related technological areas.

Research Profile

The available bibliometric profile identifies Emmanuel Ebikabowei Enemugha through Scopus Author ID 59722449500 and ORCID identifier 0009-0000-8677-1006. The Scopus-indexed profile records seven documents, two citations, and an h-index of one. [1] These values are bibliographic indicators rather than comprehensive measures of research quality and should be interpreted together with the nature, relevance, originality, and technical significance of individual research outputs.

The stated subject area, Mechanical Sensors, indicates a research orientation toward sensing technologies associated with mechanical systems. Depending on the specific research application, this area may encompass sensor design, mechanical measurement, transduction, system integration, experimental characterization, and monitoring technologies.

Research Contributions

Research associated with mechanical sensors contributes to the broader objective of obtaining accurate and actionable information from physical systems. Mechanical sensing technologies can support measurement of physical parameters, system diagnostics, experimental investigations, automation, and monitoring. Their effectiveness depends on factors including sensitivity, selectivity, response characteristics, stability, repeatability, environmental tolerance, and integration with the intended engineering platform.

Based on the available profile information, Enemugha’s research classification in Mechanical Sensors identifies a connection to this technological domain. The limited bibliometric record available for this profile does not, by itself, provide sufficient evidence to attribute specific patented technologies, major discoveries, or individual technical innovations without examination of the underlying publications. Accordingly, this article focuses on the documented research area and bibliometric information rather than making unsupported claims about individual research outcomes.

Publications

The research profile provided for Emmanuel Ebikabowei Enemugha records seven documents in Scopus. [1] The available source data supplied for this recognition profile does not include a complete publication bibliography, individual publication titles, journal names, publication years, or DOI identifiers. Consequently, specific publications are not listed here to avoid introducing bibliographic information that has not been independently established.

A complete publication assessment would ordinarily consider publication venue, research topic, authorship position, methodological contribution, citation performance, DOI records, and relevance to the researcher’s stated subject area. Such an assessment can provide additional context beyond aggregate document and citation counts.

Research Impact

Bibliometric indicators provide one method for describing the visibility and citation activity of indexed research. In the supplied Scopus profile, the researcher has seven documents, two citations, and an h-index of one. [1] These indicators indicate an established indexed publication record while also reflecting a relatively limited citation history in the available dataset.

Research impact in mechanical sensing should not be evaluated solely through citation metrics. Technical relevance, reproducibility, practical applicability, collaboration, adoption of methods or technologies, educational contributions, and contributions to engineering practice can also provide meaningful evidence of impact. A comprehensive evaluation would therefore combine bibliometric indicators with qualitative assessment of the research outputs.

Award Suitability

The Best Researcher Award profile recognizes a researcher whose documented academic activity is relevant to the sensor research community. Enemugha’s affiliation with a mechanical engineering department and stated subject area of Mechanical Sensors establish a clear thematic connection with the Global Sensor Awards. His indexed research record of seven documents provides a measurable basis for considering his research activity. [1]

In an award evaluation, bibliometric information can serve as one component of assessment alongside research relevance, originality, technical contribution, publication quality, interdisciplinary engagement, and potential application. The information presented in this profile supports consideration of Enemugha within a sensor-focused recognition framework, while avoiding claims that cannot be verified from the supplied evidence.

The Global Sensor Awards provides a platform for recognizing research and innovation associated with sensor technologies. Enemugha’s documented focus on Mechanical Sensors aligns with the broader scope of sensing research represented by the event.

Conclusion

Emmanuel Ebikabowei Enemugha is a researcher in the Department of Mechanical Engineering at Universiti Malaya, Malaysia, with a documented research profile associated with Mechanical Sensors. The supplied Scopus information records seven documents, two citations, and an h-index of one. [1] These indicators, together with his stated research area, establish a documented connection to sensor-related mechanical engineering research.

The Best Researcher Award profile places this research activity within the broader context of the Global Sensor Awards. Further evaluation of individual publications and research outputs would provide additional evidence for assessing technical significance and broader research impact.

References

  1. Elsevier. (n.d.). Scopus author details: Emmanuel Ebikabowei Enemugha, Author ID 59722449500. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=59722449500
  2. ORCID. (n.d.). Emmanuel Ebikabowei Enemugha, ORCID iD 0009-0000-8677-1006. ORCID.
    https://orcid.org/0009-0000-8677-1006

Alok Kumar Tiwari | Mechanical Sensors | Innovative Research Award

Innovative Research Award

Alok Kumar Tiwari
IIT ROORKEE, India

Alok Kumar Tiwari
Affiliation IIT ROORKEE
Country India
Scopus ID 59535110900
Documents 7
Citations 20
h-index 2
Subject Area Mechanical Sensors
Event Global Sensor Awards
ORCID 0000-0002-1083-1145

The Innovative Research Award recognizes researchers who have demonstrated meaningful scholarly contributions through original research, scientific publications, and measurable academic impact. This article provides a neutral academic overview of ALOK KUMAR TIWARI, a researcher affiliated with IIT ROORKEE, India. Based on publicly available bibliometric information, the researcher has authored seven Scopus-indexed publications, received twenty citations, and attained an h-index of two. These indicators provide an objective summary of research productivity and scholarly visibility within the field of Mechanical Sensors.[1]

Abstract

This academic profile summarizes the publicly available scholarly record of ALOK KUMAR TIWARI. It highlights bibliometric indicators, research interests, publication activity, and academic contributions associated with Mechanical Sensors. The information is presented in a neutral, encyclopedic style suitable for academic recognition and professional reference. Bibliographic indicators have been derived from publicly available research databases and persistent researcher identifiers.[1]

Keywords

Mechanical Sensors, Sensor Engineering, Smart Sensors, Industrial Sensing, Sensor Systems, Instrumentation, Engineering Research, Mechanical Engineering, Scientific Publications, Global Sensor Awards

Introduction

Mechanical sensors are fundamental components in modern engineering systems, enabling precise measurement of displacement, force, pressure, vibration, acceleration, and other physical quantities. Continuous advancements in sensor design, signal processing, and intelligent monitoring contribute significantly to industrial automation, structural health monitoring, robotics, and smart manufacturing. Researchers in this field support technological progress through experimental investigations, theoretical analysis, and practical engineering applications.[2]

Research Profile

ALOK KUMAR TIWARI is affiliated with IIT ROORKEE, one of India’s leading engineering institutions. According to publicly available Scopus records, the researcher has published seven indexed documents with twenty citations and an h-index of two. These bibliometric indicators reflect ongoing scholarly engagement and participation in engineering research related to Mechanical Sensors and associated technologies.[1]

Research Contributions

  • Research activities associated with Mechanical Sensor technologies and engineering applications.
  • Publication of peer-reviewed scholarly articles indexed in international bibliographic databases.
  • Contribution to engineering knowledge through experimental investigations and scientific communication.
  • Support for interdisciplinary research involving sensing systems and instrumentation.
  • Participation in scientific dissemination through internationally recognized publications.

Publications

The available Scopus profile indicates seven indexed publications authored or co-authored by the researcher. These publications contribute to the dissemination of scientific knowledge within engineering and sensor-related disciplines. Persistent identifiers such as Digital Object Identifiers (DOIs) support reliable citation, long-term accessibility, and academic referencing of published research.[3]

Research Impact

Bibliometric indicators represent one method of evaluating scholarly influence. With twenty citations and an h-index of two, the available metrics indicate that the published research has received recognition within the scientific community. Citation-based indicators complement qualitative assessments of research quality, innovation, collaboration, and scientific relevance.[1]

Award Suitability

The available academic record demonstrates scholarly activity through peer-reviewed publications, measurable citation performance, and contributions within the discipline of Mechanical Sensors. These objective indicators provide evidence of continued research engagement and align with commonly considered evaluation criteria for academic recognition programs such as the Global Sensor Awards. The information presented remains descriptive and does not imply the outcome of any award evaluation process.[1]

Conclusion

ALOK KUMAR TIWARI has established a developing scholarly profile through research contributions in Mechanical Sensors and related engineering fields. The available bibliometric indicators provide a concise overview of publication productivity and citation impact. This article serves as a structured academic summary prepared in a Wikipedia-inspired format for scholarly recognition and informational purposes.[1]

References

  1. Elsevier. (n.d.). Scopus author details: ALOK KUMAR TIWARI, Author ID 59535110900. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=59535110900
  2. ORCID. (n.d.). Researcher Profile: ALOK KUMAR TIWARI.
    https://orcid.org/0000-0002-1083-1145
  3. DOI Foundation. (n.d.). Persistent Digital Object Identifier reference for engineering research.
    https://doi.org/10.1016/j.measurement.2020.108316
  4. Global Sensor Awards. (n.d.). Official Awards Website.
    https://globalsensorawards.com/

Mohamed Ragab | Mechanical Sensors | Best Researcher Award

Best Researcher Award

Mohamed Ragab
Affiliation Shoubra Faculty of Engineering, Benha University, Cairo, Egypt
Country Egypt
Scopus ID 58668208600
Documents 9
Citations 106 Citations by 93 Documents
h-index 5
Subject Area Mechanical Sensors
Event Global Sensor Awards
ORCID 0000-0001-8878-760X

Mohamed Ragab
Shoubra Faculty of Engineering, Benha University, Cairo, Egypt

The Best Researcher Award recognition profile documents the scholarly activities, research productivity, and scientific contributions of Mohamed Ragab, a researcher affiliated with the Shoubra Faculty of Engineering, Benha University, Egypt. His work in the field of mechanical sensors contributes to the advancement of sensing technologies, measurement systems, and engineering applications. Bibliometric indicators, publication records, and citation performance demonstrate sustained engagement with academic research and knowledge dissemination within the engineering community.[1]

Abstract

This article presents an academic overview of Mohamed Ragab and highlights research achievements relevant to consideration for the Best Researcher Award. The profile summarizes scholarly productivity, citation performance, publication activity, and scientific engagement within the domain of mechanical sensors. The available bibliometric indicators suggest an active research record supported by peer-reviewed publications and measurable academic influence.[1][2]

Keywords

Mechanical Sensors; Sensor Engineering; Instrumentation Systems; Engineering Research; Scientific Publications; Citation Analysis; Research Excellence; Measurement Technology; Sensor Applications; Academic Recognition.

Introduction

Research in mechanical sensing technologies plays a critical role in industrial automation, monitoring systems, diagnostics, and precision engineering. Mohamed Ragab has contributed to this field through scholarly investigations and publications addressing sensor technologies and related engineering applications. His academic activities align with the broader objectives of improving measurement accuracy, operational efficiency, and technological innovation in engineering systems.[3]

Research Profile

Mohamed Ragab is affiliated with the Shoubra Faculty of Engineering, Benha University, Egypt. His documented scholarly record includes nine indexed publications, 106 citations received from 93 citing documents, and an h-index of 5. These metrics indicate active participation in scientific research and demonstrate the visibility of his published work within relevant academic communities.[1]

Research Contributions

The research contributions associated with Mohamed Ragab are primarily connected to mechanical sensors and engineering measurement systems. His scholarly work supports ongoing developments in sensor design, performance evaluation, signal acquisition, and applied engineering research. Through publication and dissemination of research findings, he contributes to the advancement of knowledge in sensing technologies and their practical implementation across engineering environments.[4]

Publications

The publication portfolio associated with this researcher reflects engagement with peer-reviewed scientific communication. Publications indexed through recognized academic databases provide evidence of research dissemination, scholarly collaboration, and contribution to the engineering literature. Citation activity further indicates that these publications have been referenced and utilized by subsequent researchers working in related domains.[1][5]

Research Impact

Research impact can be evaluated through publication quality, citation performance, academic visibility, and influence on subsequent investigations. The available citation record demonstrates that Mohamed Ragab’s research outputs have attracted scholarly attention and have contributed to ongoing scientific discussions in engineering and sensor-related studies. Such indicators are commonly utilized in assessing academic performance and research effectiveness.[1]

Award Suitability

Based on documented scholarly indicators, publication activity, citation performance, and disciplinary engagement, Mohamed Ragab demonstrates qualifications relevant to consideration for the Best Researcher Award under the Global Sensor Awards framework. Evaluation of research excellence commonly includes publication output, scientific impact, innovation, and contributions to the advancement of specialized knowledge, all of which are represented within the available academic record.[1]

Conclusion

Mohamed Ragab’s academic profile reflects continued involvement in mechanical sensor research and engineering scholarship. His publication history, citation performance, and documented scientific contributions support recognition within professional and academic award programs. The profile illustrates measurable scholarly engagement and a commitment to advancing engineering research through peer-reviewed scientific output.[1]

References

  1. Elsevier. (n.d.). Scopus author details: Mohamed Ragab, Author ID 58668208600. Scopus.
    https://www.scopus.com/authid/detail.uri?authorId=58668208600
  2. ORCID. (n.d.). ORCID record for Mohamed Ragab.
    https://orcid.org/0000-0001-8878-760X
  3. Fraden, J. (2016). Handbook of Modern Sensors. Springer.
  4. Gardner, J. W., & Varadan, V. K. (2001). Microsensors, MEMS and Smart Devices.
  5. Elsevier. (n.d.). Scopus Content Coverage Guide.
    https://www.scopus.com/sources

Yao Zhang | Mechanical sensors | Best Researcher Award

Prof. Yao Zhang | Mechanical sensors | Best Researcher Award

Prof. Yao Zhang | Mechanical sensors | Professor at University of Chinese Academy of Sciences | China

Prof. Yao Zhang is a prominent researcher and academic at the University of Chinese Academy of Sciences, widely recognized for his expertise in geotechnical engineering, sensing technology, and environmental geomechanics. He holds a Ph.D. in Geological Engineering, with his research primarily focused on the application of advanced sensing systems in subsurface energy systems, including carbon capture and storage (CCS), hydromechanical interactions, and seismic risk mitigation. Prof. Yao Zhang has established a strong academic and professional presence, having published 47 peer-reviewed articles indexed in Scopus, accumulating over 360 citations and achieving an h-index of 11, which reflects his growing impact in the geosciences and sensing technology communities. His professional experience includes collaborative international research projects involving the development of sensor-based monitoring frameworks for COβ‚‚ injection sites and modeling freeze-thaw effects on soil structures. His research interests span hydro-mechanical coupling, induced seismicity regulation, wellbore integrity assessment, and smart environmental sensing. He is proficient in field instrumentation, numerical modeling, data acquisition systems, and integrated geotechnical analysis. Prof. Yao Zhang’s research skills bridge theoretical modeling and real-world applications, enabling a significant contribution to sustainable and safe energy practices. He is an active member of IEEE and participates in academic peer-reviewing and international conferences in the field of energy geoscience and sensing systems. His scholarly work is published in leading journals such as Engineering Geology, Construction and Building Materials, and Energy Geoscience. Although already contributing significantly to sensing-based engineering science, opportunities for further enhancement lie in integrating AI and machine learning into sensor networks and expanding multidisciplinary collaborations with environmental and civil engineering sectors. Prof. Yao Zhang has been acknowledged for his research contributions and continues to mentor young researchers in advancing geotechnical sensing methods. In conclusion, Prof. Yao Zhang exemplifies excellence in academic research, leadership in applied geoscience, and commitment to advancing sensing technologies for environmental and infrastructure safety.

Academic Profile: Scopus

Featured Publications:

  • Zhang, Y. (2025). Study on wellbore damage caused by COβ‚‚ injectionβ€’induced hydromechanical coupling. Gongcheng Kexue Yu Jishu Advanced Engineering Sciences.

  • Zhang, Y. (2025). Effect of freeze-thaw cycles on mechanical properties and microstructure of artificially prepared site soil. Construction and Building Materials. (Citations: 2)

  • Zhang, Y. (2025). Hydro-mechanical interactions in COβ‚‚ storage: Critical parameters influencing coal mine at Shenhua’s CCS site. Engineering Geology. (Citations: 4)

  • Zhang, Y. (2025). Traffic light system regulation of induced seismicity under multi-well fluid injection. Energy Geoscience. (Citations: 2)

 

 

Waqar Muhammad | Mechanical sensors Award | Best Researcher Award

Mr. Waqar Muhammad | Mechanical sensors Award | Best Researcher Award

PhD scholar at Dongguk University, Seoul, South Korea

Muhammad Waqar is a dedicated researcher with a strong background in semiconductor process/device technology, micro and nano fabrication, and materials characterization. Currently pursuing a Ph.D. in Micro & Nano Electronics Engineering at Dongguk University, Seoul, he has extensive experience in manufacturing-grade, ISO-qualified fabs and has built testbeds for semiconductor device testing. Muhammad is skilled in Python-based data analysis and has expertise in the fabrication and characterization of wide bandgap semiconductor devices. His equipment proficiency includes UV and DUV photolithography, electron beam lithography, metallization, etching, and thin film processes. He is also adept at using various characterization tools such as SEM, HR-TEM, XRD, and XPS. Muhammad is fluent in English and has a basic understanding of Korean. He has received awards for his research, including a Graduate Research Assistantship from the National Research Foundation and an SRD Fellowship from Dongguk University. His research interests include wide bandgap semiconductor devices, solid-state electronic devices, and conducting polymers. Muhammad’s skills and achievements demonstrate his commitment to advancing the field of micro and nano electronics engineering.

Professional Profile

Education: πŸŽ“

Muhammad Waqar is currently pursuing a Ph.D. in Micro & Nano Electronics Engineering at Dongguk University in Seoul, Republic of Korea, a program he began in 2020. Prior to this, he completed his Master of Science in Electrical Engineering with a focus on Power Electronics at COMSATS University in Islamabad, Pakistan, from 2014 to 2016. He obtained his Bachelor of Science in Electrical Engineering from the National University of Computer and Emerging Sciences-FAST in Islamabad, Pakistan, graduating in 2013.

Work Experiences:πŸ‘¨β€πŸ«

Muhammad Waqar has a diverse professional background, starting with his current role as a Ph.D. Research Assistant at the Millimeter wave innovation technology (MINT) research center at Dongguk University in Seoul, where he has been involved in various projects focused on the design and fabrication of high-responsivity and solar-blind UV light photodetectors for light-induced fluorescence spectroscopy (LIFS), as well as the fabrication of highly flexible strain sensors using conducting polymer film on PDMS substrate. His expertise also extends to material synthesis, including the synthesis and doping of ZnO Nanorods, polypyrrole, carbon nanotubes, graphene flakes, graphene sheets, GaN, AlGaN, and AlGaN/GaN epitaxial structures. Prior to his current role, Muhammad worked for Lucky Cement Limited at the Pezu Plant in Pakistan as an Assistant Manager in the Instrument and Control department. During his time there, he was involved in several projects, including the erection of Line-2 SINOMA(CDI) with a production capacity of 8000 tons/day. He was also a member of the SAP team, responsible for managing daily in/out stock spares and instruments. His responsibilities included the installation of various sensors, actuators, pressure and temperature sensors, flow and level transmitters, vibro and proximity sensors, as well as configuring and diagnosing faults in DCS, PLC, Profibus Communication, analyzers, and control loops. He was also involved in the installation, calibration, and loop checking of field instruments, and reviewing control philosophy, P&I diagrams, instruments lists, and flow charts. Before his tenure at Lucky Cement Limited, Muhammad worked as a Lecturer at the Government College of Technology in Peshawar, Pakistan. During his time there, he taught courses in Digital Logic Design, AC machines, and Electrical Power Engineering, showcasing his passion for education and sharing his knowledge with students.

Skills:πŸ“ˆ

Muhammad Waqar possesses a wide range of skills that are integral to his work in semiconductor process/device technology and manufacturing. He has expertise in working with manufacturing-grade, ISO-qualified fabs, and has built testbeds for testing semiconductor devices and sensors. His proficiency in Python-based data analysis allows him to efficiently analyze and interpret data in his research. In terms of equipment, Muhammad is skilled in micro and nano fabrication techniques, including UV and DUV photolithography, electron beam lithography, nanoimprint lithography, metallization, etching, 3D printing, and thin film processes. He is also experienced in using various characterization tools for devices, materials, and optics, such as SEM, HR-TEM, XRD, XPS, PL, ellipsometry, AFM, and surface profilers. Additionally, he is adept at performing I-V, C-V, and QE measurements, and has experience with probe stations and auto probers. His knowledge also extends to optical components such as fibers, filters, diffraction gratings, monochromators, shutters, and optical choppers. Muhammad is proficient in several programming languages, including Python, Matlab, C++, and Verilog HDL. He is also familiar with software such as Lab-View, Comsol, Multisim, Pro-E, Rhino 3D, Proteus, PSpice, CASA XPS, Peak41, Origin Pro, K-layout, and Layout Editor. In terms of language proficiency, Muhammad is fluent in English and has a basic understanding of Korean. He has also contributed to publications and supervised undergraduate students and interns, showcasing his commitment to knowledge sharing and mentorship in his field.

Research interests:

Muhammad Waqar’s research interests encompass several key areas in the field of electronics and materials science. His focus includes the study of wide bandgap semiconductor devices, which play a crucial role in modern electronics due to their ability to operate at high temperatures and frequencies, making them suitable for power electronics and high-speed applications. Additionally, he is interested in solid-state electronic devices, particularly flexible and printed electronics, which have the potential to revolutionize the design and manufacturing of electronic devices by enabling lightweight, bendable, and customizable products. Lastly, Muhammad is interested in the synthesis and characterization of conducting polymers, which are key materials in the development of flexible and stretchable electronics, as well as in applications such as sensors, actuators, and energy storage devices. His research interests demonstrate a commitment to advancing the field of electronics and materials science through innovative research and development.

Awards: πŸ†

Muhammad Waqar has received prestigious awards recognizing his academic and research achievements. He was awarded a Graduate Research Assistantship by the National Research Foundation (NRF) through the program of Nanomaterial Technology Development (2009-0082580) managed by the Ministry of Science, Information, and Communication Technology (ICT) in the Republic of Korea. This assistantship has supported his Ph.D. research at Dongguk University in Seoul, Korea, focusing on microelectronic engineering. Additionally, he was granted the SRD Fellowship by Dongguk University, Seoul, Korea, for his Ph.D. studies in microelectronic engineering from 2020 to 2023. These awards underscore Muhammad’s dedication and excellence in the field of nanomaterial technology and microelectronic engineerin

 

Publications:πŸ“„

Tailoring polypyrrole film characteristics with multi-step oxygen plasma treatment for high-performance strain sensors: Impact on bonding, microstructure, and electrical responsivity

Author: W. Muhammad, S.-D. Kim

Year: 2024

Journal: Sensors and Actuators A: Physical

Citations: Not specified

DOI: 10.1016/j.sna.2024.115249

Impact Factor: 4.6

Flexible Bending Sensors Fabricated with Interdigitated Electrode Structures Cross-Linked by Transition Metal Doped ZnO Nanorods

Author: Muhammad, W.; Kim, S.-D.

Year: 2023

Journal: Chemosensors

Citations: Not specified

DOI: 10.3390/chemosensors11100529

Impact Factor: 4.2

Highly Stretchable PPy/PDMS Strain Sensors Fabricated with Multi-Step Oxygen Plasma Treatment

Author: Muhammad, W.; Kim, S.-D.

Year: 2023

Journal: Polymers

Citations: Not specified

DOI: 10.3390/polym15071714

Impact Factor: 5.0

Role of Seed Layer Crystalline Quality in Photoresponse Performance of Hydrothermally Grown ZnO Nanorods

Author: Muhammad, W.; Nam, K.; Seo, S.; Kim, S.-D.

Year: 2022

Journal: Int. J. Mol. Sci.

Citations: Not specified

DOI: 10.3390/ijms23179541

Impact Factor: 5.6

Influence of N2O Plasma Treatment on PET-Based Flexible Bending Sensors with ZnO Nanorod Array Cross-Linked with Interdigitated Electrode Structures

Author: Lee, S.; Nam, K.; Muhammad, W.; Shin, D.; Seo, S.; Kim, S.-D.

Year: 2022

Journal: Ceramics International

Citations: Not specified

DOI: 10.1016/j.ceramint.2022.05.177

Impact Factor: 5.2