Electrode and Electrolyte Engineering for High Energy Density Li Metal Batteries

Electrode and Electrolyte Engineering for High Energy Density Li Metal Batteries

Author: Zhaohui Wu

Publisher:

Published: 2022

Total Pages: 137

ISBN-13:

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The rechargeable Li ion batteries are approaching their energy density limitation, while the prosperous growth of electric vehicle market is demanding cheaper and more sustainable batteries with higher energy density. To meet this goal, new battery material is needed to replace the current battery cathode, namely the LiCoO2 and LiNixMnyCo1-x-yO2 (NMC), which both contains the increasingly expensive transition metal, cobalt. One way to limit the cobalt usage is to increase the nickel substitution, as Ni is cheaper and more abundant compared to Co. Additionally, high Ni NMC delivers more capacity than their low Ni counterparts. However, transition metal substituent introduced an unexpected problem, i.e., the 1st cycle capacity loss. With electrochemical characterization and synchrotron X-ray diffraction, we have identified the sluggish Li intercalation at the end of discharge is the root-cause of this problem, which provided guidance for future improvement on these materials. In addition to optimizing the NMC cathode material, designing new cathode chemistry is another promising approach. Sulfur is a good cathode candidate for next generation energy storage system, due to its high capacity (~1675 mAh cm-2, 8 times as high as NMC), low price, and abundance in earth's crust. However, elemental sulfur cathode suffers from its insulating nature and polysulfide dissolution problem. Sulfurized polyacrylonitrile (SPAN) is a sulfur based conductive polymer, which prevents sulfur dissolution by forming covalent bonding with sulfur and provides electron pathway by the chemical backbone. Although SPAN typically shows extraordinary stable cycling performance due to its unique structure and high specific capacity (~700 mAh cm-2), the Li-SPAN batteries reported in literature are yet to satisfy the industry demand due to its low areal capacity and incompatibility with ether electrolyte, which is commonly used in Li metal batteries. We discovered that LiNO3 as an electrolyte additive, enables SPAN to stably cycle in ether electrolyte, by forming a LiF-rich CEI layer. Its reaction mechanism in different electrolytes was investigated by X-ray absorption spectroscopy, where Li2Sx dissolution was observed in ether electrolyte without additive. Besides the electrolyte optimization, we replaced the traditionally used PVdF binder with mechanically robust CMC binder, which prevents the mechanical disintegration of the high areal loading cathode (> 6 mAh cm-2) and enables its stable cycling with reduced porosity (30%). When it comes to the anode, Li metal is the ultimate choice of rechargeable battery anode material due to its highest gravimetric capacity (3862 mAh cm-2) and lowest electrochemical potential (-3.04 V vs SHE.). However, the irregular morphology of electrochemically deposited Li leads to lots of problems, such as parasitic reactions, electrochemically isolated "dead" Li formation, and dendrite shorting. Many approaches have been developed to suppress the dendritic lithium formation and increase the lithium metal stripping/plating efficiency to > 99.0%. However, the porosity of lithium anode increases upon long cycling is a real challenge, which causes electrolyte depletion, increases cell impedance, and ultimately dictates the end of cell life. We demonstrated a bottom-up approach that an Fe/LiF nanocomposite substrate promotes the nucleation and growth of hexagonal single crystal Li at the initial stage of Li deposition, inducing dense Li deposition on top of the nuclei. Leveraging the low porosity Li, we have shown >1000 (Coulombic efficiency (CE) = 99.17%) and >600 (CE=99.06%) cycle in half cells under exceptionally high current density, 3 and 5 mA cm-2. Further, the full cell tests using NMC811 cathode with practical areal capacity of > 3 mAh cm-2, 1-fold excess of Li, lean electrolyte (3 g Ah-1), and cycled at high current density of 3 mA cm-2 retains > 80% cell capacity for more than 130 cycles, which is a 550% improvement over the baseline cells. We believe that through proper design and optimization of cathode and anode materials, the commercialization route for rechargeable Li metal battery with high energy density will be realized in the coming years.


Materials for Lithium-Ion Batteries

Materials for Lithium-Ion Batteries

Author: Christian Julien

Publisher: Springer Science & Business Media

Published: 2000-10-31

Total Pages: 658

ISBN-13: 9780792366508

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A lithium-ion battery comprises essentially three components: two intercalation compounds as positive and negative electrodes, separated by an ionic-electronic electrolyte. Each component is discussed in sufficient detail to give the practising engineer an understanding of the subject, providing guidance on the selection of suitable materials in actual applications. Each topic covered is written by an expert, reflecting many years of experience in research and applications. Each topic is provided with an extensive list of references, allowing easy access to further information. Readership: Research students and engineers seeking an expert review. Graduate courses in electrical drives can also be designed around the book by selecting sections for discussion. The coverage and treatment make the book indispensable for the lithium battery community.


Lithium-Ion Batteries

Lithium-Ion Batteries

Author: Xianxia Yuan

Publisher: CRC Press

Published: 2011-12-14

Total Pages: 431

ISBN-13: 1439841284

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Written by a group of top scientists and engineers in academic and industrial R&D, Lithium-Ion Batteries: Advanced Materials and Technologies gives a clear picture of the current status of these highly efficient batteries. Leading international specialists from universities, government laboratories, and the lithium-ion battery industry share their knowledge and insights on recent advances in the fundamental theories, experimental methods, and research achievements of lithium-ion battery technology. Along with coverage of state-of-the-art manufacturing processes, the book focuses on the technical progress and challenges of cathode materials, anode materials, electrolytes, and separators. It also presents numerical modeling and theoretical calculations, discusses the design of safe and powerful lithium-ion batteries, and describes approaches for enhancing the performance of next-generation lithium-ion battery technology. Due to their high energy density, high efficiency, superior rate capability, and long cycling life, lithium-ion batteries provide a solution to the increasing demands for both stationary and mobile power. With comprehensive and up-to-date information on lithium-ion battery principles, experimental research, numerical modeling, industrial manufacturing, and future prospects, this volume will help you not only select existing materials and technologies but also develop new ones to improve battery performance.


High Energy Density Lithium Batteries

High Energy Density Lithium Batteries

Author: Katerina E. Aifantis

Publisher: John Wiley & Sons

Published: 2010-03-30

Total Pages: 296

ISBN-13: 9783527630028

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Materials Engineering for High Density Energy Storage provides first-hand knowledge about the design of safe and powerful batteries and the methods and approaches for enhancing the performance of next-generation batteries. The book explores how the innovative approaches currently employed, including thin films, nanoparticles and nanocomposites, are paving new ways to performance improvement. The topic's tremendous application potential will appeal to a broad audience, including materials scientists, physicists, electrochemists, libraries, and graduate students.


Electrolytes for Lithium and Lithium-Ion Batteries

Electrolytes for Lithium and Lithium-Ion Batteries

Author: T. Richard Jow

Publisher: Springer

Published: 2014-05-06

Total Pages: 488

ISBN-13: 1493903020

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Electrolytes for Lithium and Lithium-ion Batteries provides a comprehensive overview of the scientific understanding and technological development of electrolyte materials in the last several years. This book covers key electrolytes such as LiPF6 salt in mixed-carbonate solvents with additives for the state-of-the-art Li-ion batteries as well as new electrolyte materials developed recently that lay the foundation for future advances. This book also reviews the characterization of electrolyte materials for their transport properties, structures, phase relationships, stabilities, and impurities. The book discusses in-depth the electrode-electrolyte interactions and interphasial chemistries that are key for the successful use of the electrolyte in practical devices. The Quantum Mechanical and Molecular Dynamical calculations that has proved to be so powerful in understanding and predicating behavior and properties of materials is also reviewed in this book. Electrolytes for Lithium and Lithium-ion Batteries is ideal for electrochemists, engineers, researchers interested in energy science and technology, material scientists, and physicists working on energy.


Solid Electrolytes for Advanced Applications

Solid Electrolytes for Advanced Applications

Author: Ramaswamy Murugan

Publisher: Springer Nature

Published: 2019-12-11

Total Pages: 373

ISBN-13: 3030315819

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This book highlights the state of the art in solid electrolytes, with particular emphasis on lithium garnets, electrolyte-electrode interfaces and all-solid-state batteries based on lithium garnets. Written by an international group of renowned experts, the book addresses how garnet-type solid electrolytes are contributing to the development of safe high energy density Li batteries. Unlike the flammable organic liquid electrolyte used in existing rechargeable Li batteries, garnet-type solid electrolytes are intrinsically chemically stable in contact with metallic lithium and potential positive electrodes, while offering reasonable Li conductivity. The book's respective chapters cover a broad spectrum of topics related to solid electrolytes, including interfacial engineering to resolve the electrolyte-electrode interfaces, the latest developments in the processing of thin and ultrathin lithium garnet membranes, and fabrication strategies for the high-performance solid-state batteries.This highly informative and intriguing book will appeal to postgraduate students and researchers at academic and industrial laboratories with an interest in the advancement of high energy-density lithium metal batteries


High-energy Batteries Based on Lithium Metal Chemistry

High-energy Batteries Based on Lithium Metal Chemistry

Author: Dingchang Lin

Publisher:

Published: 2018

Total Pages:

ISBN-13:

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Lithium batteries have profoundly impacted our daily life, with extensive applications in portable electronics, electrical automotive and grid−scale energy storage applications. In order to achieve much higher energy density than the state−of−the−art, chemistries beyond Li−ion are currently being investigated and need to be made viable for commercial applications. Using metallic Li is among the most prominent choices for next−generation Li batteries, such as Li−S and Li−air systems. After falling into oblivion for several decades because of safety concerns, metallic Li is now ready for a revival. In this talk, I will present my fundamental studies on the failure mechanisms of Li metal, as well as the rational material designs to tackle the problems. In the first chapter, the backgrounds regarding lithium battery research will be introduced. More specifically, the basic principles and the current stages of lithium battery, the future direction of its development, the chemistries at the battery electrode interfaces, and the failure mechanisms will be thoroughly discussed. These aspects lay the foundation for the research presented in this dissertation. In the second chapter, I will present the new findings and fundamental understandings on Li metal failure mechanisms. In the studies, infinite relative volume change of the conventional lithium metal electrode was first identified to be a key contributor to its failure. Then, the failure was further studied from the corrosion points of view, where a new corrosion pathway was identified as the dominant origin of the corrosion in the long term. In addition, typical Kirkendall voids were observed in the corroded Li. The findings were further rationalized by detailed analysis of solid electrolyte interphase formed on the surfaces. In the third part, I presented our efforts in stabilizing Li metal anode by Adv. Mater. development. Based on the new understandings presented in Chapter 2, the stable "host" design for Li metal was proposed and demonstrated. Interfacial modification technology was also developed to further stabilize the electrode/electrolyte interfaces. The two methodologies were proven to be very powerful in stabilizing Li metal. In the next part, battery safety issue was tackled by materials design in advanced battery separators and solid−state electrolytes, both of which were prominent for future batteries employing high energy battery chemistries. On one hand, strong separators with Li dendrite sensing function was developed. On the other hand, solid−state electrolytes with highly improved ionic conductivity and modulus were demonstrated. In the final part of the dissertation, I will present my perspectives and outlooks for the future research in this field. To commercialize the high−energy and safe batteries based on Li metal chemistry requires continuous efforts in various aspects, including electrode design, electrolyte engineering, development of advanced characterization/diagnosis technologies, full−battery engineering, and possible sensor design for safe battery operation, etc. Ultimately, the combinations of various approaches might be required to make Li metal anode a viable technology.


Liquid Electrolyte Chemistry for Lithium Metal Batteries

Liquid Electrolyte Chemistry for Lithium Metal Batteries

Author: Jianmin Ma

Publisher: John Wiley & Sons

Published: 2022-02-09

Total Pages: 299

ISBN-13: 3527836381

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Liquid Electrolyte Chemistry for Lithium Metal Batteries An of-the-moment treatment of liquid electrolytes used in lithium metal batteries Considered by many as the most-promising next-generation batteries, lithium metal batteries have grown in popularity due to their low potential and high capacity. Crucial to the development of this technology, electrolytes can provide efficient electrode electrolyte interfaces, assuring the interconversion of chemical and electrical energy. The quality of electrode electrolyte interphase, in turn, directly governs the performance of batteries. In Liquid Electrolyte Chemistry, provides a comprehensive look at the current understanding and status of research regarding liquid electrolytes for lithium metal batteries. Offering an introduction to lithium-based batteries from development history to their working mechanisms, the book further offers a glimpse at modification strategies of anode electrolyte interphases and cathode electrolytic interphases. More, by discussing the high-voltage electrolytes from their solvents—organic solvents and ionic liquids—to electrolyte additives, the text provides a thorough understanding on liquid electrolyte chemistry in the remit of lithium metal batteries. Liquid Electrolyte Chemistry for Lithium Metal Batteries readers will also find: A unique focus that reviews the development of liquid electrolytes for lithium metal batteries State-of-the-art progress and development of electrolytes for lithium metal batteries Consideration of safety, focusing the design principles of flame retardant and non-flammable electrolytes Principles and progress on low temperature and high temperature electrolytes Liquid Electrolyte Chemistry for Lithium Metal Batteries is a useful reference for electrochemists, solid state chemists, inorganic chemists, physical chemists, surface chemists, materials scientists, and the libraries that supply them.


Electrodes for Li-ion Batteries

Electrodes for Li-ion Batteries

Author: Laure Monconduit

Publisher: John Wiley & Sons

Published: 2015-06-29

Total Pages: 100

ISBN-13: 1848217218

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The electrochemical energy storage is a means to conserve electrical energy in chemical form. This form of storage benefits from the fact that these two energies share the same vector, the electron. This advantage allows us to limit the losses related to the conversion of energy from one form to another. The RS2E focuses its research on rechargeable electrochemical devices (or electrochemical storage) batteries and supercapacitors. The materials used in the electrodes are key components of lithium-ion batteries. Their nature depend battery performance in terms of mass and volume capacity, energy density, power, durability, safety, etc. This book deals with current and future positive and negative electrode materials covering aspects related to research new and better materials for future applications (related to renewable energy storage and transportation in particular), bringing light on the mechanisms of operation, aging and failure.


Lithium-ion Battery Materials and Engineering

Lithium-ion Battery Materials and Engineering

Author: Malgorzata K. Gulbinska

Publisher: Springer

Published: 2014-09-06

Total Pages: 212

ISBN-13: 1447165489

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Gaining public attention due, in part, to their potential application as energy storage devices in cars, Lithium-ion batteries have encountered widespread demand, however, the understanding of lithium-ion technology has often lagged behind production. This book defines the most commonly encountered challenges from the perspective of a high-end lithium-ion manufacturer with two decades of experience with lithium-ion batteries and over six decades of experience with batteries of other chemistries. Authors with years of experience in the applied science and engineering of lithium-ion batteries gather to share their view on where lithium-ion technology stands now, what are the main challenges, and their possible solutions. The book contains real-life examples of how a subtle change in cell components can have a considerable effect on cell’s performance. Examples are supported with approachable basic science commentaries. Providing a unique combination of practical know-how with an in-depth perspective, this book will appeal to graduate students, young faculty members, or others interested in the current research and development trends in lithium-ion technology.