Advanced Two-Dimensional Material-Based Heterostructures in Sustainable Energy Storage Devices

Advanced Two-Dimensional Material-Based Heterostructures in Sustainable Energy Storage Devices
Author: Srikanth Ponnada
Publisher: CRC Press
Total Pages: 221
Release: 2024-08-30
Genre: Technology & Engineering
ISBN: 1040103618

Advanced Two-Dimensional Material-Based Heterostructures in Sustainable Energy Storage Devices provides a detailed overview of advances and challenges in the development of 2D materials for use in energy storage devices. It offers deep insight into the synthesis, characterization, and application of different 2D materials and their heterostructures in a variety of energy storage devices, focusing on new phenomena and enhanced electrochemistry. This book: Introduces 2D materials, synthesis methods, and characterization techniques Discusses application in a wide range of batteries and supercapacitors Offers perspectives on future investigations necessary to overcome existing challenges This comprehensive reference is written to guide researchers and engineers working to advance the technology of energy-efficient energy storage devices.

2D Materials for Energy Storage and Conversion

2D Materials for Energy Storage and Conversion
Author: Suresh C. Pillai
Publisher: IOP Publishing Limited
Total Pages: 200
Release: 2021-11-28
Genre: Science
ISBN: 9780750333177

This reference text provides a comprehensive overview of the latest developments in 2D materials for energy storage and conversion. It covers a wide range of 2D materials and energy applications, including 2D heterostructures for hydrogen storage applications, cathode and anode materials for lithium and sodium-ion batteries, ultrafast lithium and sodium-ion batteries, MXenes for improved electrochemical applications and MXenes as solid-state asymmetric supercapacitors. 2D Materials for Energy Storage and Conversion is an invaluable reference for researchers and graduate students working with 2D materials for energy storage and conversion in the fields of nanotechnology, electrochemistry, materials chemistry, materials engineering and chemical engineering. Key Features: Provides a comprehensive overview of the latest developments in 2D materials for energy storage and conversion technologies Covers the most promising candidates for radically advanced energy storage Covers 2D heterostructures and provides a holistic view of the subject Includes 2D materials beyond graphene, defects engineering, and the main challenges in the field

Sustainable Energy Storage in the Scope of Circular Economy

Sustainable Energy Storage in the Scope of Circular Economy
Author: Carlos Miguel Costa
Publisher: John Wiley & Sons
Total Pages: 342
Release: 2023-03-27
Genre: Technology & Engineering
ISBN: 1119817706

Sustainable Energy Storage in the Scope of Circular Economy Comprehensive resource reviewing recent developments in the design and application of energy storage devices Sustainable Energy Storage in the Scope of Circular Economy reviews the recent developments in energy storage devices based on sustainable materials within the framework of the circular economy, addressing the sustainable design and application of energy storage devices with consideration of the key advantages and remaining challenges in this rapidly evolving research field. Topics covered include: Sustainable materials for batteries and fuel cell devices Multifunctional sustainable materials for energy storage Energy storage devices in the scope of the Internet of Things Sustainable energy storage devices and device design for sensors and actuators Waste prevention for energy storage devices based on second life and recycling procedures With detailed information on today’s most effective energy storage devices, Sustainable Energy Storage in the Scope of Circular Economy is a key resource for academic researchers, industrial scientists and engineers, and students in related programs of study who wish to understand the state of the art in this field.

Creating a Two-Dimensional Heterointerface in Layered Oxide Electrodes for Advanced Electrochemical Energy Storage

Creating a Two-Dimensional Heterointerface in Layered Oxide Electrodes for Advanced Electrochemical Energy Storage
Author: Ryan Andris
Publisher:
Total Pages: 0
Release: 2023
Genre: Bilayered Vanadium Oxide
ISBN:

Secondary batteries are an important area of research to help create grid-scale energy storage solutions, improve the performance of small electronic devices, and expand electric transportation. Specifically, lithium-ion batteries are the dominant form of rechargeable energy storage due to its high energy density, high power density, and long-term stability over many cycles. A battery with high energy density allows for more compact devices with an extended battery life. In addition, high-power densities can lead to faster charging times as well as more efficient and reliable power delivery to high-performance machines such as laptops and electric vehicles. Therefore, cost effective and efficient energy storage devices are fundamental for founding more sustainable communities. Since the advent of Li-ion battery commercialization, layered oxide materials have dominated as intercalation type cathode materials. However, these common cathodes have limited capacities, low electronic conductivity, and relatively dense crystal structures that can negatively impact ionic diffusion and the general rate performance of the cell. Therefore, next-generation cathode materials require transition metals with high oxidation states that can undergo multiple reduction steps, improved electronic conductivity, and open ion diffusion channels. Various transition metal oxides have been studied extensively in these electrochemical systems due to their high theoretical capacity, low toxicity, and high natural abundance. Vanadium oxide is of particular interest due to vanadium's high redox activity in reversible charge storage reactions and its wide range of morphologies and structures. However, metal oxides are limited by their inherent low conductivity that can negatively impact rate performance and long-term stability. Therefore, this dissertation generates new knowledge needed to synthesize stacked 2D heterostructures combining bilayered [delta]-V2O5℗ʺnH2O and conductive carbon-based materials using the 'bottom-up', 'hybrid', and 'top-down' approaches to enhance bilayered vanadium oxide's (BVO) electrochemical performance in energy storage systems. The 'bottom-up' approach uses small organic molecules to intercalate into the interlayer region of BVO that are subsequently carbonized using hydrothermal treatment. The 'hybrid' strategy integrates small organic molecules into a BVO xerogel using a post sol-gel diffusion process. Again, these molecules are subsequently carbonized using heat treatment processing. Finally, stacked 2D heterostructures are synthesized using 'top-down' cation-driven assembly of exfoliated BVO and graphene oxide nanoflakes. The combined phases with increased electronic conductivity can lead to improved charge storage capability, faster charging, and longer lifetimes. Relationships between the heterostructure synthesis, the final structure, properties, and the electrochemical performance of each material are examined to use this knowledge to create improved electrodes for energy storage devices. The 'bottom-up' chemical preintercalation of dopamine hydrochloride into BVO was the first report to demonstrate a 2D oxide-carbon heterointerface using these materials. While carbon layers were only found intermittently among the vanadium bilayers, this material exhibited higher electronic conductivity and improved capacity retention, rate performance, and charge-transfer resistance when tested in Li-ion batteries compared to the reference material. The 'hybrid' diffusion synthesis method controllably intercalated small organic molecules into BVO resulting in a very repeatable heterostructure synthesis procedure with promising electrochemical performance in Li-ion cells. Next, the 'top-down' cation-driven assembly created stacked 2D heterostructures of LVO and reduced graphene oxide nanoflakes (rGO). These heterostructures demonstrated superior electrochemical stability, attributed to improved structural stability originating from bonds formed between rGO and LVO nanoflakes that preserved lamellar order of the layers in the LVO structure and a rGO encapsulation effect preventing significant dissolution of LVO nanoflakes in the electrolyte. Further, the improved electron transport of the heterostructures with enhanced rGO content was supported by both the rate capability study and decreased charge transfer resistance. Finally, we found that the 'top-down' cation-driven heterostructure assembly approach can be used to define the interlayer spacing of the bilayered vanadium oxide phase by changing the nature of the assembling cation. In turn, the CV curves and galvanostatic cycling highlight the benefit of using an active material with a large interlayer spacing for improved initial capacities. Moreover, the cations used to assemble the heterostructures can define intercalation sites for charge carrying ions and improve ion diffusion kinetics when the assembling cation and charge carrying ion are identical.

Machine Learning in 2D Materials Science

Machine Learning in 2D Materials Science
Author: Parvathi Chundi
Publisher: CRC Press
Total Pages: 249
Release: 2023-11-13
Genre: Technology & Engineering
ISBN: 1000987434

Data science and machine learning (ML) methods are increasingly being used to transform the way research is being conducted in materials science to enable new discoveries and design new materials. For any materials science researcher or student, it may be daunting to figure out if ML techniques are useful for them or, if so, which ones are applicable in their individual contexts, and how to study the effectiveness of these methods systematically. KEY FEATURES • Provides broad coverage of data science and ML fundamentals to materials science researchers so that they can confidently leverage these techniques in their research projects. • Offers introductory material in topics such as ML, data integration, and 2D materials. • Provides in-depth coverage of current ML methods for validating 2D materials using both experimental and simulation data, researching and discovering new 2D materials, and enhancing ML methods with physical properties of materials. • Discusses customized ML methods for 2D materials data and applications and high-throughput data acquisition. • Describes several case studies illustrating how ML approaches are currently leading innovations in the discovery, development, manufacturing, and deployment of 2D materials needed for strengthening industrial products. • Gives future trends in ML for 2D materials, explainable AI, and dealing with extremely large and small, diverse datasets. Aimed at materials science researchers, this book allows readers to quickly, yet thoroughly, learn the ML and AI concepts needed to ascertain the applicability of ML methods in their research.

Materials for Sustainable Energy Storage at the Nanoscale

Materials for Sustainable Energy Storage at the Nanoscale
Author: Fabian Ifeanyichukwu Ezema
Publisher: CRC Press
Total Pages: 747
Release: 2023-07-21
Genre: Science
ISBN: 1000894185

The book Materials for Sustainable Energy Storage Devices at the Nanoscale anticipates covering all electrochemical energy storage devices such as supercapacitors, lithium-ion batteries (LIBs), and fuel cells, transformation and enhancement materials for solar cells, photocatalysis, etc. The focal objective of the book is to deliver stunning and current information to the materials application at nanoscale to researchers and scientists in our contemporary time towardthe enhancement of energy conversion and storage devices. However, the contents of the proposed book, Materials for Sustainable Energy Storage at the Nanoscale, will cover various fundamental principles and wide knowledge of different energy conversion and storage devices with respect to their advancement due to the emergence of nanoscale materials for sustainable storage devices. This book is targeted to be award-winning as well as a reference book for researchers and scientists working on different types of nanoscale materials-based energy storage and conversion devices. Features Comprehensive overview of energy storage devices, an important field of interest for researchers worldwide Explores the importance and growing impact of batteries and supercapacitors Emphasizes the fundamental theories, electrochemical mechanism, and its computational view point and discusses recent developments in electrode designing based on nanomaterials, separators, and fabrication of advanced devices and their performances Fabian I. Ezema is a professor at the University of Nigeria, Nsukka. He earned a PhD in Physics and Astronomy from the University of Nigeria, Nsukka. His research focused on several areas of Materials Science, from synthesis and characterizations of particles and thin-film materials through chemical routes with emphasis on energy applications. For the last 15 years, he has been working on energy conversion and storage (cathodes, anodes, supercapacitors, solar cells, among others), including novel methods of synthesis, characterization and evaluation of the electrochemical and optical properties. He has published about 180 papers in various international journals and given over 50 talks at various conferences. His h-index is 21 with over 1500 citations and he has served as reviewer for several high impact journals and as an editorial board member. Dr. M.Anusuya, M.Sc., M.Phil., B.Ed., PhD is specialized in Material science, Thin Film Technology, Nano Science, and Crystallography. She is working as a Registrar of Indra Ganesan Group of Institutions, Trichy, Tamilnadu, India. Earlier to this, she served as a Vice-Principal at Trichy Engineering College, Trichy, Tamilnadu, India.. Being an administrator and teacher, with more than 25 years’ experience, for her perpetual excellence in academics she has been recognized with many awards. She has received over 45 awards in Academic and Social Activity. She has published more than 30 research papers in National and International journals, 7 chapters in edited books, 5 patents, presented 50 papers in the conferences and organized more than 200 webinars, both national and internationally. Dr Assumpta C. Nwanya is a Lecturer and a FLAIR (Future Leaders - African Independent Research) Scholar at the Department of Physics and Astronomy, University of Nigeria, Nsukka. She obtained her PhD in 2017 (University of Nigeria, Nsukka) with specialisation in the synthesis of nanostructured materials for applications in photovoltaics and electrochemical energy storage (batteries and supercapacitors) as well as for sensing. She was a Postdoctoral Fellow under the UNESCO-University of South Africa (UNISA) Africa Chair in Nanoscience and Nanotechnology (2018-2020). She is a research Affiliate with the SensorLab, University of the Western Cape Sensor Laboratories, Cape Town, South Africa. Dr Nwanya is a very active researcher and has published more than 85 scientific articles in high impact journals and has a Google Scholar’s H-index of 24 and 1475 citations.

2D Materials for Energy Storage and Conversion

2D Materials for Energy Storage and Conversion
Author: Suresh C. Pillai
Publisher:
Total Pages: 0
Release: 2021
Genre: Energy storage
ISBN: 9780750333184

This reference text provides a comprehensive overview of the latest developments in 2D materials for energy storage and conversion. It covers a wide range of 2D materials and energy applications, including 2D heterostructures for hydrogen storage applications, cathode and anode materials for lithium and sodium-ion batteries, ultrafast lithium and sodium-ion batteries, MXenes for improved electrochemical applications and MXenes as solid-state asymmetric supercapacitors.

Flexible Supercapacitor Nanoarchitectonics

Flexible Supercapacitor Nanoarchitectonics
Author: Inamuddin
Publisher: John Wiley & Sons
Total Pages: 674
Release: 2021-06-29
Genre: Technology & Engineering
ISBN: 1119711452

The 21 chapters in this book presents a comprehensive overview of flexible supercapacitors using engineering nanoarchitectures mediated by functional nanomaterials and polymers as electrodes, electrolytes, and separators, etc. for advanced energy applications. The various aspects of flexible supercapacitors, including capacitor electrochemistry, evaluating parameters, operating conditions, characterization techniques, different types of electrodes, electrolytes, and flexible substrates are covered. This is probably the first book of its type which systematically describes the recent developments and progress in flexible supercapacitor technology, and will be very helpful for generating new and innovative ideas in the field of energy storage material for wearable/flexible industry applications.

Energy Harvesting and Storage Devices

Energy Harvesting and Storage Devices
Author: Laxman Raju Thoutam
Publisher: CRC Press
Total Pages: 325
Release: 2023-11-29
Genre: Technology & Engineering
ISBN: 1000997855

The book discusses the materials, devices, and methodologies that can be used for energy harvesting including advanced materials, devices, and systems. It describes synthesis and fabrication details of energy storage materials. It explains use of high-energy density thin films for future power systems, flexible and biodegradable energy storage devices, fuel cells and supercapacitors, nanogenerators for self-powered systems, and innovative energy harvesting methodologies. Features: Covers all relevant topics in energy harvesting research and focuses on the current state-of-the-art techniques and materials for this application. Showcases the true potential of the nature in energy harvesting industry by discussing various harvesting mechanisms based on renewable and sustainable energy sources. Explains the recent trends in flexible and wearable energy storage devices that are currently being used in IoT-based smart devices. Overviews of the state-of-the-art research performed on design and development of energy harvesting devices. Highlights the interdisciplinary research efforts needed in energy harvesting and storage devices to transform conceptual ideas to working prototypes. This book is aimed at graduate students and researchers in emerging materials, energy engineering, including harvesting and storage.

Energy Applications of 2D Nanomaterials

Energy Applications of 2D Nanomaterials
Author: Ram K. Gupta
Publisher: CRC Press
Total Pages: 395
Release: 2022-05-26
Genre: Science
ISBN: 1000586103

2D nanomaterials have emerged as promising candidates for use in energy devices owing to their superior electrochemical properties, surface area, nanodevice integration, multifunctionality, printability, and mechanical flexibility. Energy Applications of 2D Nanomaterials covers a wide range of applications of 2D nanomaterials for energy, as well as future applications and challenges in fabricating flexible energy generation and storage devices. This book: Examines 2D nanomaterials for solar cells, fuel cells, batteries, supercapacitors, and flexible devices Details novel methods and advanced technologies Covers future applications and challenges This book is aimed at materials scientists, chemists, electrochemists, and engineers working in energy disciplines.