Development of Advanced Nanomaterials for Potential Lithium-Ion Battery Application

Development of Advanced Nanomaterials for Potential Lithium-Ion Battery Application

Author: Jian Liu

Publisher:

Published: 2013

Total Pages:

ISBN-13:

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Lithium-ion batteries (LIBs) are promising energy storage media under serious consideration for practical applications in electric vehicle (EVs) and hybrid electric vehicles (HEVs). However, to meet the requirements for EVs and HEVs, the performance of commercially available LIBs needs to be greatly improved in terms of the energy density, cycling life, rate capability, safety and cost. It is well known that the LIB performance is highly dependent on the choice of electrode materials. Therefore, it is greatly important to develop new electrode materials as replacements for graphite/LiCoO2 used in commercial LIBs, in order to achieve high-performance LIBs desirable for EV and HEV applications. In this thesis, to achieve the above goal, efforts made in this thesis followed into two sections. The first section was to develop novel nanostructured electrode materials, which could be directly used in LIBs. The other section was to develop various surface-modification materials, which could be applied to further improve the LIB performance of electrode materials. Various advanced characterization techniques, including field-emission scanning electron microscope (FE-SEM), energy dispersive X-ray spectroscopy (EDS), transmission electron microscope (TEM), high-resolution TEM (HRTEM), Raman spectroscopy, X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), Fourier transform-infrared spectroscopy (FT-IR), X-ray absorption near edge structure (XANES) spectroscopy, and electrochemical methods, have been applied to analyze the prepared nanomaterials, understand their growth mechanisms, and evaluate their battery performance. The nanostructured electrode materials included nitrogen-doped carbon nanotubes (NCNTs), phosphorus-nitrogen doped carbon nanotubes (PNCNTs), and lithium titanate (Li4Ti5O12). A scalable method, ultrasonic spray pyrolysis, was developed inhouse to produce NCNTs with tunable structure as potential anode materials. Further attempt to incorporate P element into CNTs was made, and it was successful when P and N elements were doped together. The P doping effect on the structure of NCNTs was investigated in details. Furthermore, novel nanosctuctured Li4Ti5O12 were prepared by a microwave-assisted hydrothermal method in a fast and energy-efficient way. Their electrochemical performances were evaluated, and nanoflower-like Li4Ti5O12 showed better LIB performance than nanoparticle Li4Ti5O12. Three different surface-modification materials, ZrO2, AlPO4 and LiTaO3 solid-state electrolyte, were developed by atomic layer deposition (ALD), for potential use to improve the chosen electrode materials. Deposition of these materials on different substrates, including NCNTs, graphene nanosheets, Si (100) and anodic aluminum oxide (AAO) template, showed that as-grown thin films of ZrO2, AlPO4 and LiTaO3 were precisely controllable in terms of film thickness, film crystallinity and film composition. These characteristics enabled by ALD promised ZrO2, AlPO4 and LiTaO3 great potentials as surface-modification materials. One application example of these materials was demonstrated by using ALD-ZrO2 coating to enhance the performance of nanoflower-like Li4Ti5O12.


Advanced Nanomaterials for Electrochemical Energy Conversion and Storage

Advanced Nanomaterials for Electrochemical Energy Conversion and Storage

Author:

Publisher: Elsevier

Published: 2019-11-14

Total Pages: 456

ISBN-13: 0128145595

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Advanced Nanomaterials for Electrochemical Energy Conversion and Storage covers recent progress made in the rational design and engineering of functional nanomaterials for battery and supercapacitor applications in the forms of electrode materials, separators and electrolytes. The book includes detailed discussions of preparation methods, structural characterization, and manipulation techniques. Users will find a comprehensive illustration on the close correlation between material structures and properties, such as energy density, power density, cycle number and safety. Provides an overview on the application of nanomaterials for energy storage and power systems Includes a description of the fundamental aspects of the electrochemical process Explores the new aspects of electrolyte and separator systems


Lithium-Sulfur Batteries

Lithium-Sulfur Batteries

Author: Ram Gupta

Publisher: Elsevier

Published: 2022-04-30

Total Pages: 710

ISBN-13: 0323919324

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Lithium-Sulfur Batteries: Materials, Challenges, and Applications presents the advantages of lithium-sulfur batteries, such as high theoretical capacity, low cost, and stability, while also addressing some of the existing challenges. Some of the challenges are low electrical conductivity, the possible reaction of sulfur with lithium to form a soluble lithium salt, the formation of the dendrimer, large volume variation of cathode materials during the electrochemical reaction, and shuttle behavior of highly soluble intermediate polysulfides in the electrolyte. This book provides some possible solutions to these issues through novel architecture, using composite materials, doping to improve low conductivity, etc., as well as emphasizing novel materials, architectural concepts, and methods to improve the performance of lithium-sulfur batteries. Covers the state-of-the-art progress on materials, technology, and challenges for lithium-sulfur batteries Presents novel synthetic approaches, characterizations, and applications of nanostructured and 2D nanomaterials for energy applications Provides fundamentals of electrochemical behavior and their understanding at nanoscale for emerging applications in lithium-sulfur batteries


Graphene and Carbon Nanotubes for Advanced Lithium Ion Batteries

Graphene and Carbon Nanotubes for Advanced Lithium Ion Batteries

Author: Stelbin Peter Figerez

Publisher: CRC Press

Published: 2018-12-07

Total Pages: 176

ISBN-13: 042978483X

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This title covers the fundamentals of carbon nanomaterials in a logical and clear manner to make concepts accessible to researchers from different disciplines. It summarizes in a comprehensive manner recent technological and scientific accomplishments in the area of carbon nanomaterials and their application in lithium ion batteries The book also addresses all the components anodes, cathodes and electrolytes of lithium ion battery and discusses the technology of lithium ion batteries that can safely operate at high temperature.


Nanomaterials for Lithium-Ion Batteries

Nanomaterials for Lithium-Ion Batteries

Author: Rachid Yazami

Publisher: CRC Press

Published: 2013-10-08

Total Pages: 464

ISBN-13: 9814316407

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This book covers the most recent advances in the science and technology of nanostructured materials for lithium-ion application. With contributions from renowned scientists and technologists, the chapters discuss state-of-the-art research on nanostructured anode and cathode materials, some already used in commercial batteries and others still in development. They include nanostructured anode materials based on Si, Ge, Sn, and other metals and metal oxides together with cathode materials of olivine, the hexagonal and spinel crystal structures.


Nanotechnology in Advanced Electrochemical Power Sources

Nanotechnology in Advanced Electrochemical Power Sources

Author: S. R. S. Prabaharan

Publisher: CRC Press

Published: 2014-10-24

Total Pages: 382

ISBN-13: 9814241431

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The challenge of providing adequate power on an indefinite basis without causing long-term damage to the environment requires a versatile means of energy conversion and storage. As such, electrical energy storage is becoming more vital today than at any time in human history. Electrochemical systems, such as batteries, supercapacitors, fuel cells, and photoelectrochemical cells, can help meet this objective. Future generations of rechargeable lithium batteries will be required to power portable electronic devices, store electricity from renewable sources, and serve as a vital component to pursuing electric mobility in the future to reduce fossil fuel demand and mitigate environmental issues. In this context, engineering of new materials, especially at the nanoscale, has become imperative to achieve enhanced energy and power density to meet the future challenges of energy storage. This book outlines the state of the art of nanoscale aspects of advanced energy storage devices, such as lithium-ion batteries, including microbatteries and electrochemical supercapacitors. It focuses on various fundamental issues related to device performance of various positive and negative electrode materials, with special reference to their nanoscale advantages. It also includes fundamentals and processing techniques with regard to synthesis, characterization, physical, and electrochemical properties, and applications of nanoscale materials pertaining to advanced electrochemical power sources. A variety of advanced nanomaterials, such as transition metal oxides, phosphates, silicates, and conversion electrodes, together with some special nanomaterials such as carbon nanotubes, nanorods, and mesoporous carbons are discussed by many notable authorities in the field.


Nanomaterials in Advanced Batteries and Supercapacitors

Nanomaterials in Advanced Batteries and Supercapacitors

Author: Kenneth I. Ozoemena

Publisher: Springer

Published: 2016-07-18

Total Pages: 576

ISBN-13: 3319260820

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This book provides an authoritative source of information on the use of nanomaterials to enhance the performance of existing electrochemical energy storage systems and the manners in which new such systems are being made possible. The book covers the state of the art of the design, preparation, and engineering of nanoscale functional materials as effective catalysts and as electrodes for electrochemical energy storage and mechanistic investigation of electrode reactions. It also provides perspectives and challenges for future research. A related book by the same editors is: Nanomaterials for Fuel Cell Catalysis.


Nanotechnology for Lithium-Ion Batteries

Nanotechnology for Lithium-Ion Batteries

Author: Yaser Abu-Lebdeh

Publisher: Springer Science & Business Media

Published: 2012-10-17

Total Pages: 288

ISBN-13: 1461446058

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This book combines two areas of intense interest: nanotechnology, and energy conversion and storage devices. In particular, Li-ion batteries have enjoyed conspicuous success in many consumer electronic devices and their projected use in vehicles that will revolutionize the way we travel in the near future. For many applications, Li-ion batteries are the battery of choice. This book consolidates the scattered developments in all areas of research related to nanotechnology and lithium ion batteries.


Nanomaterials For Energy Conversion And Storage

Nanomaterials For Energy Conversion And Storage

Author: Dunwei Wang

Publisher: World Scientific

Published: 2017-11-10

Total Pages: 836

ISBN-13: 1786343649

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The use of nanomaterials in energy conversion and storage represents an opportunity to improve the performance, density and ease of transportation in renewable resources. This book looks at the most recent research on the topic, with particular focus on artificial photosynthesis and lithium-ion batteries as the most promising technologies to date. Research on the broad subject of energy conversion and storage calls for expertise from a wide range of backgrounds, from the most fundamental perspectives of the key catalytic processes at the molecular level to device scale engineering and optimization. Although the nature of the processes dictates that electrochemistry is a primary characterization tool, due attention is given to advanced techniques such as synchrotron studies in operando. These studies look at the gap between the performance of current technology and what is needed for the future, for example how to improve on the lithium-ion battery and to go beyond its capabilities.Suitable for students and practitioners in the chemical, electrochemical, and environmental sciences, Nanomaterials for Energy Conversion and Storage provides the information needed to find scalable, economically viable and safe solutions for sustainable energy.