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Carbon dioxide (CO2) capture and conversion to value added
products, such as chemicals, polymers, and carbon-based fuels
represents a promising approach to transform a potential threat to
the environment into a value-added product for long term
sustainability. Emerging Carbon Capture Technologies: Towards a
Sustainable Future provides a multidisciplinary view of the
research that is being carried out in this field, covering
materials and processes for CO2 capture and utilization and
including a broad discussion of the impact of novel technologies in
carbon capture on the energy landscape, society and climate. Of
interest to students, researchers and professionals in industries
related to greenhouse gas mitigation, post-combustion CO2 capture
processes, coal-fired power plants, environmental sustainability,
green solvents, green technologies, and the utilization of clean
energy for environmental protection, this book covers both the
experimental and theoretical aspects of novel materials and process
development providing a holistic approach toward a sustainable
energy future.
This book presents synthesis methods, characterization techniques,
properties and applications of hybrid conducting polymers. Special
emphasis is given to the applications of hybrid conductive
polymers, with chapters ranging from electronic devices,
environmental remediation, and sensors, to medical applications.
This book covers remarkable contemporary nanomaterials such as
carbon nanomaterials, nanoclays, quantum dots, MXene, and
metal-organic frameworks. Each chapter discusses the synthesis
techniques, characterization methods, properties, and the
nanomaterials' use in different aspects of biomedical, energy,
polymers, material construction, biosensors, coatings, and
catalysis. Moreover, commercialization challenges and environmental
risks of nanomaterials are also covered in depth. The book provides
an understanding of the fundamental properties, limitations and
challenges in nanomaterials synthesis, serving as a valuable
resource for researchers, graduate students, academicians, and
consultants working with nanomaterials for engineering
applications.
Low-Dimensional Halide Perovskites: Structure, Properties and
Applications provides an in-depth look at halide perovskite
materials and their applications. Chapters cover history,
fundamentals, physiochemical and optoelectronic properties,
synthesis and characterization of traditional and Pb-free halide
perovskites. The book concludes with sections describing the
different applications of halide perovskites for solar cells,
light-emitting diodes and photo detectors, as well as the
challenges faced in the industrialization of halide
perovskite-based devices and forward-thinking prospects for further
deployment.
Solar Energy Harvesting, Conversion and Storage: Materials,
Technologies and Applications focuses on the current state of solar
energy and the recent advancements in nanomaterials for different
technologies, from harnessing energy to storage. The book covers
different aspects of advanced nanomaterials for solar energy, rapid
developments in solar thermal and hot water systems, and PV and CSP
technologies. The book also discusses storing harnessed solar/heat
energy using different available energy storage technologies,
including phase change materials (PCMs), batteries, and
supercapacitors. Various applications such as agriculture and
aquaculture, desalination, domestic appliances, and transport are
explored, as well.
Presents current research in AOP techniques along with hybrid
technologies Covers latest advances in technological know-how for
remediation of wastewater soiled with micropollutants Discusses
pressing environmental pollution issues associated with AOPs needed
for wastewater remediation Presents future perspective as well as
techno-economic analysis in implementing various AOPs Reviews
strategies to limit the micropollutants in water bodies
Advances in Supercapacitor and Supercapattery: Innovations in
Energy Storage Devices provides a deep insight into energy storage
systems and their applications. The first two chapters cover the
detailed background, fundamental charge storage mechanism and the
various types of supercapacitor. The third chapter give details
about the hybrid device (Supercapattery) which comprises of battery
and capacitive electrode. The main advantages of Supercapattery
over batteries and supercapacitor are discussed in this chapter.
The preceding three chapters cover the electrode materials used for
supercapattery. The electrolyte is a major part that significantly
contributes to the performance of the device. Therefore, different
kinds of electrolytes and their suitability are discussed in
chapter 6 and 7. The book concludes with a look at the potential
applications of supercapattery, challenges and future prospective.
This book is beneficial for research scientists, engineers and
students who are interested in the latest developments and
fundamentals of energy storage mechanism and clarifies the
misleading concepts in this field.
This book presents the fundamental aspects, recent developments in
fabrication and characterization techniques, structure, properties,
and emerging applications of MXenes. It shows the advancement in
scale-up, challenges, and their futuristic perspectives. An
overview of all the latest developments in energy storage and
conversion applications, catalysis, environmental remediation, and
radiation shielding, etc is reported.
This book presents synthesis methods, characterization techniques,
properties and applications of hybrid conducting polymers. Special
emphasis is given to the applications of hybrid conductive
polymers, with chapters ranging from electronic devices,
environmental remediation, and sensors, to medical applications.
This book covers remarkable contemporary nanomaterials such as
carbon nanomaterials, nanoclays, quantum dots, MXene, and
metal-organic frameworks. Each chapter discusses the synthesis
techniques, characterization methods, properties, and the
nanomaterials' use in different aspects of biomedical, energy,
polymers, material construction, biosensors, coatings, and
catalysis. Moreover, commercialization challenges and environmental
risks of nanomaterials are also covered in depth. The book provides
an understanding of the fundamental properties, limitations and
challenges in nanomaterials synthesis, serving as a valuable
resource for researchers, graduate students, academicians, and
consultants working with nanomaterials for engineering
applications.
This book presents the fundamental aspects, recent developments in
fabrication and characterization techniques, structure, properties,
and emerging applications of MXenes. It shows the advancement in
scale-up, challenges, and their futuristic perspectives. An
overview of all the latest developments in energy storage and
conversion applications, catalysis, environmental remediation, and
radiation shielding, etc is reported.Â
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