Dr. Subhash Singh | Material Science | Best Researcher Award

Dr. Subhash Singh | Material Science | Best Researcher Award

Dr. Subhash Singh | Senior Scientist / Research Faculty | University of Rochester | United States

Academic Background

He completed his foundational studies in physics with a focus on laser spectroscopy, optical metrology, and the spectroscopic diagnosis of laser-produced metal plasmas. His academic journey spans undergraduate, postgraduate, and doctoral education at a leading Indian university known for its contributions to physical sciences. His citation record reflects substantial influence across disciplines. On Google Scholar, his work has been cited more than seven thousand times with an h-index exceeding forty. On Scopus, his research output includes over one 126 indexed documents with citations recorded across more than 4626 works and an h-index above 36. These indicators highlight sustained research impact and continued relevance in multiple scientific domains.

Research Focus

His research centers on ultrafast laser–matter interactions, plasma science, nanomaterials, and surface engineering for energy and environmental applications. He also explores thermal management, renewable desalination, direct air capture, and photonic sensing using advanced plasmonic and nanoscale platforms.

Work Experience

He has served in senior research and academic roles across prominent institutions in the United States, China, Ireland, and India. His work includes leading femtosecond laser laboratories, supervising research teams, managing laboratory operations, mentoring postgraduate and undergraduate researchers, and writing successful grants valued in the millions. He has also developed experimental facilities, established new research laboratories, and contributed to interdisciplinary collaborations in optics, materials science, and sustainable technologies. His responsibilities have ranged from designing experimental systems and developing energy solutions to directing doctoral research groups and leading institutional scientific initiatives.

Key Contributions

He has advanced knowledge in femtosecond laser surface processing, evaporation-driven desalination, direct cooling technologies, and nanoparticle synthesis in liquids. His investigations into higher harmonic generation, plasmonic sensing, metasurfaces, and photovoltaic-thermal integration have influenced both applied and fundamental research. He has also contributed to laser doping of semiconductors, solar cell fabrication, and nanostructured catalyst development.

Awards and Recognition

His research achievements have resulted in high-impact publications, international collaborations, funded projects, and recognition through editorial and invited research roles.

Professional Roles and Memberships

He has served as a guest editor for scientific journals, supervised doctoral and master’s candidates, and contributed to institutional committees. His leadership includes directing research groups, conducting weekly progress reviews, hiring academic staff, and coordinating laboratory operations in optics, plasmonics, and materials science. He is affiliated with professional communities through publications, collaborations, peer-review, and editorial contributions.

Publication Profile

Scopus

ORCID

Featured Publications

Singh, S. C., Vorbeyev, A., Madsen, M., Wei, R., & Guo, C. (2025). Maintenance-free evaporative cooling using laser-processed superwicking surfaces. Cell Reports Physical Sciences.

Singh, S. C., Tang, L., Wei, R., & Guo, C. (2025). Solar-thermal purification with high interfacial efficiency. Advanced Functional Materials.

Xu, T., Wei, R., Singh, S. C., & Guo, C. (2025). Solar thermoelectric performance enhancement through spectral engineering. Light: Science & Applications.

Konda, S. R., Barik, P., Singh, S. C., & Rao, V. (2025). Nonlinear optical modulation in MoS2 media. Advanced Optical Materials.

Saraj, C. S., Singh, S. C., Verma, G., Li, W., & Guo, C. (2023). Pulsed-laser ablated nanocomposites for hydrogen generation. Applied Surface Science Advances.

Impact Statement / Vision

His work bridges laser physics, nanotechnology, and sustainable engineering to address global energy, water, and environmental challenges. He envisions advancing laser-assisted material processing and photonic technologies to deliver scalable solutions for clean energy, climate resilience, and resource optimization.

Nora Baaalla | Material Sciences | Best Researcher Award

Dr. Nora Baaalla | Material Sciences | Best Researcher Award

Assistant professor | Foundation for Research, Development and Innovation in Science and Engineering | Morocco

Dr. Nora Baaalla is a Moroccan physicist whose work bridges materials theory and energy applications. She focuses on hybrid compounds, transition-metal oxides, and halide perovskites, translating first-principles insights into pathways for better optoelectronic and photovoltaic devices. Her career blends teaching, mentoring, and collaborative research across Moroccan and international laboratories. She contributes to curriculum design, supervises capstone projects, and participates in scientific events that connect academic advances with industry needs. With a background spanning modeling, thin-film studies, and device-relevant properties, she champions rigorous computation aligned with measurable outcomes, emphasizing reproducibility, open scientific discussion, and practical recommendations for sustainable technology adoption.

Publication Profile

Scopus

ORCID

Google Scholar

Education Background

Her academic formation progresses from foundational physical sciences to advanced specialization in renewable energy, storage, and materials modeling. Along the way, she explored solar geometry, thermal systems, and the design of collective solar solutions, integrating geographic and temporal datasets into user-friendly decision tools. Later, she deepened expertise in density-functional methods, band alignment at heterointerfaces, and structure–property relationships in complex solids and hybrids. This pathway unified laboratory techniques, computational packages, and data analysis workflows into a coherent approach for evaluating materials under realistic operating conditions, preparing her to address challenges in efficiency, reliability, and scalability for solar and optoelectronic technologies.

Professional Experience

She teaches core physics to preparatory and undergraduate cohorts, covering electromagnetism, electrostatics, electronics, thermodynamics, optics, materials, and fabrication processes across lectures, tutorials, and laboratories. Beyond classroom duties, she designs syllabi, coordinates academic cycles, and guides students through hands-on projects such as solar tracking and voice-controlled home systems. Her university service includes reviewing manuscripts, organizing scientific meetings on green hydrogen, and participating in training related to high-performance computing, pedagogy, research methodology, entrepreneurship, and scientific publishing. She also brings practical energy-engineering experience from industry placements, translating standards, feasibility analyses, and performance metrics into actionable classroom and research practices.

Awards and Honors

Her recognition stems from sustained scholarly engagement and service to the physics and energy communities. She has been invited to evaluate submissions for an international optics and quantum electronics journal and to help organize a global event focused on hydrogen. Her development record includes competitive workshops and certifications in high-performance computing, scientific writing, university pedagogy, intellectual property, and management, reflecting commitment to continuous improvement. Participation in regional and international conferences demonstrates her visibility and leadership. These activities, alongside mentorship and curriculum contributions, underscore dedication to scientific quality, collaborative impact, and the advancement of sustainable energy research and education.

Research Focus

Her current agenda leverages first-principles calculations to optimize device-relevant properties in semiconductors and hybrids. She studies band alignment at heterojunctions, dielectric response, optical absorption, and transport descriptors tied to thermoelectric and photovoltaic performance. Model systems include double perovskites, polyoxometalate-based frameworks, and mixed chalcogenide oxides. By coupling theory with experimentally accessible metrics, she proposes materials screening criteria, interface engineering strategies, and defect-tolerant design rules. The broader aim is to translate atomistic understanding into guidance for film growth, processing windows, and stack architectures that raise efficiency, stabilize operation, and reduce environmental impact across solar energy and optoelectronic applications.

Publications — Top Notes

  1. Study of optical, electrical and photovoltaic properties of CH₃NH₃PbI₃ perovskite: ab initio calculations 
    Published Year: 2020
    Citation: 36

  2. Structure, optical and magnetic properties of a novel homometallic coordination polymers: Experimental and Computational studies 
    Published Year: 2020
    Citation: 28

  3. Electronic and optical properties of organic–inorganic (CuII/ReVII)-heterobimetallic L-Arginine complex: Experimental and Computational studies
    Published Year: 2021
    Citation: 16

  4. Synthesis of CuO thin films based on Taguchi design for solar absorber
    Published Year: 2021
    Citation: 45

  5. Insights into Ag₂Mo₃SeO₁₂ for photovoltaic and optoelectronic applications: A theoretical exploration of its structural, electronic, and thermoelectric behavior 
    Published Year: 2024
    Citation: 6

Conclusion

Dr. Nora Baaalla unites rigorous computation, practical energy engineering, and student-centered pedagogy. Her teaching spans foundational physics through specialized materials topics, while her research connects electronic structure to measurable device outcomes. Engagement with peer review, conference organization, and professional training reflects a service-oriented approach that strengthens community standards and collaboration. By focusing on interface physics, optical response, and transport, she contributes guidance for scaling sustainable technologies. Her trajectory demonstrates careful integration of methods, clarity in problem selection, and commitment to mentorship, positioning her to advance materials-enabled solutions for renewable energy, efficient electronics, and modern scientific education.