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Nano-PCM Breakthroughs

Unlocking Efficient Energy Storage and Conversion in Photovoltaic Thermal Systems

  • 1st Edition - May 1, 2027
  • Latest edition
  • Editors: Md. Golam Kibria, Monjur Mourshed, Md Shamim Ahamed, Saidur Rahman
  • Language: English

Nano-PCM Breakthroughs: Unlocking Efficient Energy Storage and Conversion in Photovoltaic Thermal Systems examines the integration of hybrid nano-phase change materials (HNPCMs)… Read more

Description

Nano-PCM Breakthroughs: Unlocking Efficient Energy Storage and Conversion in Photovoltaic Thermal Systems examines the integration of hybrid nano-phase change materials (HNPCMs) into photovoltaic thermal (PVT) systems, addressing the challenge of efficient, scalable energy storage. It analyses how nanotechnology improves thermal energy storage and conversion, and how these materials enhance solar capture, thermal regulation, and conversion efficiency across diverse climates, reducing reliance on fossil fuels.
Readers will gain insight into the fabrication, characterization, and application of hybrid nano-PCMs, alongside recent research developments, design considerations, and thermal management approaches that boost thermal conductivity, energy density, and system stability. The book also introduces innovative uses such as nano-PCM integration in Controlled Environment Agriculture (CEA), supporting energy-efficient farming and climate resilience, and assesses the economic and environmental case for advanced thermal storage through cost analysis, sustainability indices, and lifecycle benefits.
Designed for researchers, engineers, industry professionals, and policymakers, it offers practical guidance, case studies, and performance assessments that support energy resilience, decarbonization, and wider climate goals.

Key features

  • Covers cutting-edge nanotechnology applications in thermal energy storage
  • Presents practical case studies comparing Photovoltaic Thermal (PVT) / Hybrid Nano-Phase Change Materials (HNPCM) systems with conventional PVT systems
  • Analyzes economic and sustainability factors to guide real-world implementation

Readership

Researchers and professionals in renewable energy, materials science, and thermal energy storage, engineers working on photovoltaic thermal (PVT) systems and sustainable energy solutions, graduate students and academics in mechanical engineering, physics, energy technology, energy utilization and energy management, energy systems, and nanotechnology

Table of contents

1. Advanced Sustainable Energy Storage Systems – Overview of TES systems, PCMs, and their role in renewable energy

2. Advancements in Phase Change Materials (PCMs) in Thermal Energy Storage – Classification, properties, and challenges of PCMs

3. Nanotechnology-Based Thermal Energy Storage Technologies – Enhancements of PCMs using nanomaterials

4. Hybrid Nano-PCMs: Fabrication, Characterization, and Applications – Preparation techniques, thermophysical properties, and applications

5. Photovoltaic Thermal Systems (PVT)-Based Thermal Energy Storage Technologies – Design and optimization of PVT systems

6. PVT/HNPCM Systems: A New Era of Sustainable Energy Storage – Thermodynamic evaluations and research gaps

7. Nano-Enhanced TES Systems – Integration of nanomaterials in TES materials for improved performance

8. Nano-PCM in Controlled Environment Agriculture Industry – Role of nano-PCMs in greenhouses and vertical farming

9. Economic and Environmental Aspects of Sustainable Energy Storage Technologies – Cost analysis, payback periods, and sustainability indices

10. Challenges and Prospects of the Proposed Technology

Product details

  • Edition: 1
  • Latest edition
  • Published: May 1, 2027
  • Language: English

About the editors

MK

Md. Golam Kibria

Md. Golam Kibria is an Assistant Professor in the Department of Mechanical Engineering at Rajshahi University of Engineering & Technology (RUET), Bangladesh. He received his B.Sc. and M.Sc. in Mechanical Engineering from RUET, graduating with the highest academic distinction and receiving the Prime Minister Gold Medal and the University Gold Medal for his outstanding academic achievement. His research interests include renewable energy technologies, phase change materials, thermal energy storage, hybrid nanofluids and nanomaterials, and spectrally selective nanofluid-based glazing for greenhouses. He has published extensively in leading international journals, including the Journal of Cleaner Production, ACS Energy & Fuels, Solar Energy, and Biomass and Bioenergy. Through his research and publications, he has contributed to the advancement of sustainable energy technologies and energy storage solutions.

Affiliations and expertise
Assistant Professor, Department of Mechanical Engineering, Rajshahi University of Engineering & Technology (RUET), Bangladesh

MM

Monjur Mourshed

Monjur Mourshed is an Associate Professor, Rajshahi University of Engineering & Technology, Bangladesh. He has earned his Ph.D. in Engineering from RMIT University, Australia. His doctoral research focused on the development of proton flow reactor technology for the production of hydrogenated carbon-based materials. He has also contributed to advanced research in hydrogen fuel cells and electrolyzer technologies through his work with the Sustainable Hydrogen Energy Laboratory (SHEL) at RMIT University. His research interests include hydrogen fuel cells, electrochemical flow battery energy storage systems, renewable energy storage and management, solar thermal energy storage and applications, and waste-to-energy conversion and management. Through his research and publications, he has contributed to the advancement of sustainable energy technologies and energy storage solutions.

Affiliations and expertise
Associate Professor, Rajshahi University of Engineering and Technology, Bangladesh

MA

Md Shamim Ahamed

Md. Shamim Ahamed is an Assistant Professor at University of California, California, USA. He has earned his Ph.D. in Environmental Engineering from the University of Saskatchewan, Canada. He has also undertaken advanced postdoctoral research in energy, environment, and sustainable building technologies. His research interests include energy modeling and energy-efficient design for agricultural built environments, renewable energy-based heating and cooling systems, dehumidification technologies, control systems for controlled environment agriculture, and the application of machine learning techniques for automated fault detection and diagnosis in HVAC systems. Through his research, publications, and professional contributions, he has advanced the development of sustainable energy solutions and innovative engineering approaches for agricultural and built environments.

Affiliations and expertise
Associate Professor, University of California, CA, USA

SR

Saidur Rahman

Professor Saidur Rahman is a Distinguished Research Professor and Head of the Research Centre for Nano-Materials and Energy Technology at Sunway University, with a part-time affiliation to the Department of Engineering at Lancaster University. His research focuses on renewable energy, energy efficiency, thermal energy storage, and the application of nanomaterials in energy systems. He has published over 350 peer-reviewed journal articles, many in top-tier journals, with more than 20 highly cited papers listed by Web of Science. He has been recognized as a Highly Cited Researcher by Thomson Reuters from 2014–2016 and in 2017. Professor Rahman has supervised over 65 postgraduate students and previously held key academic positions at King Fahd University of Petroleum & Minerals and University of Malaya. His current work includes enhancing solar thermal systems using nanofluids and phase change materials.

Affiliations and expertise
Distinguished Research Professor and Head, Research Centre for Nanomaterials and Energy Technology, Sunway University, Selangor, Malaysia