Best Researcher Award

Meysam Heydari Gharahcheshmeh
San Diego State University, United States

Meysam Heydari Gharahcheshmeh
Affiliation San Diego State University
Country United States
Scopus ID 26667621700
Documents 35
Citations 1,868
h-index 21
Subject Area Sustainable Energy
Event Applied Scientist Awards
ORCID 0000-0001-5664-3759

Meysam Heydari Gharahcheshmeh is a researcher affiliated with San Diego State University, United States, whose scholarly profile is presented in connection with the Best Researcher Award. His research record includes work on conjugated conducting and semiconducting polymers, chemical vapor deposition, thin-film engineering, electrochemical energy systems, and energy-device applications. His published research connects materials processing and nanoscale structure with applications in energy conversion, energy storage, sensing, and related technologies. [1] [2]

Abstract

Meysam Heydari Gharahcheshmeh is a researcher whose published work is associated with advanced polymer materials, oxidative chemical vapor deposition, thin-film engineering, and energy-related device technologies. His research has addressed the fabrication and structural engineering of conjugated conducting and semiconducting polymers, with particular attention to processing methods and their influence on electrical, optical, electrochemical, and thermoelectric properties. [1] [2]

His publication record includes research on polymer-based energy devices, redox flow batteries, perovskite solar-cell integration, and chemical vapor deposition approaches for functional thin films. Such work provides a research basis for considering materials processing and nanoscale engineering within the broader context of sustainable energy technologies. [3] [4]

Keywords

Sustainable Energy; Conjugated Polymers; Chemical Vapor Deposition; Conducting Polymers; Semiconducting Polymers; Energy Devices; Energy Storage; Thermoelectric Materials; Thin-Film Engineering; Nanostructure Engineering

Introduction

The research profile of Meysam Heydari Gharahcheshmeh is situated at the intersection of materials science, chemical and mechanical engineering, polymer processing, and energy-device development. His publications demonstrate an emphasis on oxidative chemical vapor deposition (oCVD), a vapor-phase technique used to fabricate functional polymer films and coatings. The approach has been examined for applications where conformal thin films, controlled morphology, and solvent-free processing are relevant to device fabrication. [2] [4]

Research Profile

The available publication evidence indicates a sustained interest in the relationship between polymer morphology, deposition conditions, electrical properties, and device performance. A 2019 publication examined device fabrication based on oCVD synthesis of conducting polymers and related conjugated organic materials, describing the relevance of these materials to electronic, optoelectronic, electrochemical, and energy-storage or harvesting applications. [5]

Research Contributions

The research contributions represented in the available literature can be organized around several interconnected areas:

  • Vapor-phase polymer processing: Development and analysis of oxidative chemical vapor deposition approaches for producing conducting and semiconducting polymer films. [1]
  • Energy-device materials: Investigation of conjugated polymers and PEDOT-based materials for applications involving energy storage, conversion, and harvesting. [2]
  • Electrochemical energy systems: Application of ultrathin conformal polymer coatings to porous carbon electrodes for redox flow battery systems. [3]

Publications

Selected publications illustrate the progression of the research program from polymer deposition and device fabrication toward specialized energy applications. The following works are directly associated with Meysam Heydari Gharahcheshmeh and provide representative evidence of the themes described in this profile.

  1. Heydari Gharahcheshmeh, M., & Gleason, K. K. (2019). Device Fabrication Based on Oxidative Chemical Vapor Deposition (oCVD) Synthesis of Conducting Polymers and Related Conjugated Organic Materials. Advanced Materials Interfaces, 6, 1801564. DOI: 10.1002/admi.201801564
  2. Heydari Gharahcheshmeh, M., et al. (2020). Ultrathin Conformal oCVD PEDOT Coatings on Carbon Electrodes Enable Improved Performance of Redox Flow Batteries. Advanced Materials Interfaces, 7, 2000855. DOI: 10.1002/admi.202000855

Research Impact

The supplied bibliometric profile reports 35 documents, 1,868 citations, and an h-index of 21. These indicators provide quantitative measures of publication activity and citation visibility, although they do not independently establish the quality or practical significance of individual contributions. A fuller assessment considers the nature of the publications, originality of methods, collaboration, reproducibility, and application of research findings. [3] [5]

Award Suitability

For the purposes of a Best Researcher Award profile, the available record provides several objective elements for consideration. These include a documented publication portfolio, citation activity, an h-index of 21, research addressing advanced materials and energy-device applications, and peer-reviewed publications with identifiable DOI records. [1] [3]

The research is particularly relevant to an applied-science recognition framework because it links materials processing and nanoscale engineering with functional devices and energy-related applications. Work spanning conducting polymers, thin-film fabrication, redox flow batteries, solar cells, and thermoelectric materials demonstrates a multidisciplinary research trajectory that can be evaluated in relation to originality, technical contribution, scholarly influence, and application potential. [2] [4] [5]

Conclusion

Meysam Heydari Gharahcheshmeh’s research profile reflects sustained scholarly activity in conducting and semiconducting polymers, oxidative chemical vapor deposition, thin-film engineering, and energy-related materials and devices. His publications connect fundamental materials and processing considerations with applications in energy storage, photovoltaic systems, thermoelectric technologies, and other functional-device contexts.

References

  1. L Sun, G Yuan, L Gao,M Heydari Gharahcheshmeh, et al. (2021). Chemical vapour deposition.
    https://www.nature.com/articles/s43586-020-00005-y
  2. Heydari Gharahcheshmeh, M., & Gleason, K. K. (2022). Recent Progress in Conjugated Conducting and Semiconducting Polymers for Energy Devices.
    https://doi.org/10.3390/en15103661
  3. M Heydari Gharahcheshmeh, KK Gleason. (2020). Texture and nanostructural engineering of conjugated conducting and semiconducting polymers.
    https://www.sciencedirect.com/science/article/pii/S2590049820300333
  4. Heydari Gharahcheshmeh, M., et al. (2021). Humidity‐Initiated Gas Sensors for Volatile Organic Compounds Sensing.
    https://advanced.onlinelibrary.wiley.com/doi/abs/10.1002/adfm.202101310
  5. Heydari Gharahcheshmeh, M., Dautel, B., & Chowdhury, K. (2025). Enhanced Carrier Mobility and Thermoelectric Performance by Nanostructure Engineering of PEDOT Thin Films Fabricated via the oCVD Method Using SbCl5 Oxidant.
    https://doi.org/10.1002/adfm.202570056

Meysam Heydari Gharahcheshmeh | Sustainable Energy | Best Researcher Award

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