Electrodeposition and Reversibility of Lithium Metal in Liquid Electrolytes

Electrodeposition and Reversibility of Lithium Metal in Liquid Electrolytes
Author: Prayag Biswal
Publisher:
Total Pages: 0
Release: 2021
Genre:
ISBN:

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The 21st century has witnessed dramatic changes in the energy harvesting and supply scenario with an appreciable transition from non-renewable energy resources (fossil fuels) to renewable energy resources (wind, solar, hydroelectricity, geothermal), brought on by global efforts to battle climate change associated with elevated greenhouse emissions. This energy transition to meet the world's growing needs for electricity, heating, cooling, and power for transport in a sustainable way is widely considered to be one of the greatest challenges facing humanity in this century. The transition is largely enabled by improvements in generation and storage technologies for energy harvested from renewable, but inherently intermittent supplies. As most of renewable energy technologies provide electricity, development of fast, efficient, and safe electrical energy storage techniques is crucial for further progress. Moreover, growing needs for smaller, lighter, more powerful portable electronic devices, and more powerful electric vehicles suitable for long-range transportation have further fostered the demand for dispatchable and efficient electrical energy storage. In this regard, rechargeable batteries composed of reactive metal anodes such as Lithium, have garnered interest in recent years, primarily due to their potential to significantly improve the energy density compared to current state-of -art Lithium-ion batteries. However, the commercialization of these Lithium metal batteries has received steady challenges from concerns of short-circuiting and fire hazard, brought on by uneven (dendritic, tree-like) electrodeposition of the reactive metal during several charge-discharge cycles of the batteries. The dendritic electrodeposition is thought to be facilitated by an interplay of morphological and chemical instabilities at the Lithium metal anode during battery charge. The work reported in this thesis utilizes theoretical and experimental tools to fundamentally understand the nature of these instabilities at the initiation step and to thereby develop rational designs of Li anode-electrolyte interphases that delay or eliminate the instabilities at their source. Towards this goal, the physics of nucleation and early-stage growth of Lithium electrodeposits is firstly interrogated and is shown to be consistent across different liquid electrolyte chemistries. Next, based on an understanding of nucleation of Li in liquid electrolytes, certain halide rich electrolytes hypothesized to enhance the surface energetics of Lithium electrodeposition are studied to evaluate their influence on the morphology and chemistry of Lithium electrodeposits. It is shown that these electrolytes do in fact eliminate the morphological and chemical instabilities at the initiation step, and the fine control achieved in physical-chemical features of the Lithium electrodeposits can be translated to achieve greater control of electrodeposit morphology at later stages of electroplating. Finally, custom blends of halide rich electrolytes with beneficial additives are developed to eliminate the instabilities and preserve the therein developed physical-chemical features of Lithium electrodeposits through the deep cycling of Lithium metal anodes. Liquid electrolyte blends developed through rational choice of electrolyte chemistry are shown to improve the electrochemical performance of Lithium metal batteries.

Handbook of Battery Materials

Handbook of Battery Materials
Author: Claus Daniel
Publisher: John Wiley & Sons
Total Pages: 973
Release: 2012-12-21
Genre: Technology & Engineering
ISBN: 3527637192

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A one-stop resource for both researchers and development engineers, this comprehensive handbook serves as a daily reference, replacing heaps of individual papers. This second edition features twenty percent more content with new chapters on battery characterization, process technology, failure mechanisms and method development, plus updated information on classic batteries as well as entirely new results on advanced approaches. The authors, from such leading institutions as the US National Labs and from companies such as Panasonic and Sanyo, present a balanced view on battery research and large-scale applications. They follow a distinctly materials-oriented route through the entire field of battery research, thus allowing readers to quickly find the information on the particular materials system relevant to their research.

Lithium Metal Anodes and Rechargeable Lithium Metal Batteries

Lithium Metal Anodes and Rechargeable Lithium Metal Batteries
Author: Ji-Guang Zhang
Publisher: Springer
Total Pages: 206
Release: 2016-10-06
Genre: Technology & Engineering
ISBN: 3319440543

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This book provides comprehensive coverage of Lithium (Li) metal anodes for rechargeable batteries. Li is an ideal anode material for rechargeable batteries due to its extremely high theoretical specific capacity (3860 mAh g-1), low density (0.59 g cm-3), and the lowest negative electrochemical potential (−3.040 V vs. standard hydrogenelectrodes). Unfortunately, uncontrollable dendritic Li growth and limited Coulombic efficiency during Li deposition/stripping inherent in these batteries have prevented their practical applications over the past 40 years. With the emergence of post Liion batteries, safe and efficient operation of Li metal anodes has become an enabling technology which may determine the fate of several promising candidates for the next generation energy storage systems, including rechargeable Li-air batteries, Li-S batteries, and Li metal batteries which utilize intercalation compounds as cathodes. In this work, various factors that affect the morphology and Coulombic efficiency of Li anodes are analyzed. The authors also present the technologies utilized to characterize the morphology of Li deposition and the results obtained by modeling of Li dendrite growth. Finally, recent developments, especially the new approaches that enable safe and efficient operation of Li metal anodes at high current densities are reviewed. The urgent need and perspectives in this field are also discussed. The fundamental understanding and approaches presented in this work will be critical for the applicationof Li metal anodes. The general principles and approaches can also be used in other metal electrodes and general electrochemical deposition of metal films.

Metal Electrodeposition

Metal Electrodeposition
Author: Magdalena Nuñez
Publisher: Nova Publishers
Total Pages: 226
Release: 2005
Genre: Science
ISBN: 9781594544569

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Electrochemistry is the branch of chemistry that deals with the chemical action of electricity and the production of electricity by chemical reactions. In a world short of energy sources yet long on energy use, electrochemistry is a critical component of the mix necessary to keep the world economies growing. Electrochemistry is involved with such important applications as batteries, fuel cells, corrosion studies, hydrogen energy conversion, and bioelectricity. Research on electrolytes, cells, and electrodes is within the scope of this old but extremely dynamic field. This book details advances in metal electrodeposition.

Electrochemical Phase Formation and Growth

Electrochemical Phase Formation and Growth
Author: Evgeni B. Budevski
Publisher: John Wiley & Sons
Total Pages: 421
Release: 2008-07-11
Genre: Science
ISBN: 3527614923

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Electrochemical processes and methods are basic to many important scientific disciplines, materials science and nanotechnology being only two keywords. For the first time in more than twenty years this volume presents a critical survey of the foundations, methodology and applications of electrochemical phase formation and growth processes. Written by a team of three internationally renowned authors, it is an invaluable source of information for all scientists concerned with electrocrystallization of metals or the in-situ characterization of electron-conducting surfaces. Not only the numerous illustrations (partly in colour) but also the vast number of references covering the literature up to and including 1995 make this volume indispensable for every laboratory working in electrochemical or materials science.

Liquid Electrolyte Chemistry for Lithium Metal Batteries

Liquid Electrolyte Chemistry for Lithium Metal Batteries
Author: Jianmin Ma
Publisher: John Wiley & Sons
Total Pages: 299
Release: 2022-02-09
Genre: Science
ISBN: 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.

Lithium Electrodeposition Dynamics in Aprotic Electrolyte Observed in Situ Via Transmission Electron Microscopy

Lithium Electrodeposition Dynamics in Aprotic Electrolyte Observed in Situ Via Transmission Electron Microscopy
Author:
Publisher:
Total Pages: 11
Release: 2015
Genre:
ISBN:

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Electrodeposited metallic lithium is an ideal negative battery electrode, but nonuniform microstructure evolution during cycling leads to degradation and safety issues. A better understanding of the Li plating and stripping processes is needed to enable practical Li-metal batteries. Here we use a custom microfabricated, sealed liquid cell for in situ scanning transmission electron microscopy (STEM) to image the first few cycles of lithium electrodeposition/dissolution in liquid aprotic electrolyte at submicron resolution. Cycling at current densities from 1 to 25 mA/cm2 leads to variations in grain structure, with higher current densities giving a more needle-like, higher surface area deposit. The effect of the electron beam was explored, and it was found that, even with minimal beam exposure, beam-induced surface film formation could alter the Li microstructure. The electrochemical dissolution was seen to initiate from isolated points on grains rather than uniformly across the Li surface, due to the stabilizing solid electrolyte interphase surface film. As a result, we discuss the implications for operando STEM liquid-cell imaging and Li-battery applications.

Understanding and Controlling Lithium Microstructure During Electroplating for Energy Applications

Understanding and Controlling Lithium Microstructure During Electroplating for Energy Applications
Author: Yang Tian
Publisher:
Total Pages: 108
Release: 2019
Genre: Electroplating
ISBN:

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Lithium-ion batteries are reaching the specific theoretical capacity limit, while lithium metal batteries are regarded as the ideal energy storage system for the next generation “beyond lithium-ion” battery systems. The lithium metal anode is considered as the “Holy grail” of anodes due to its relatively low electrochemical potential (-3.04 V vs SHE) and high theoretical capacity (3860 mAh g-1). However, the application of lithium metal anodes is hindered because of significant reaction between metallic lithium and electrolytes, as well as uneven electro-plating, which leads to dendrite formation, causing safety problems. The kinetic parameters of Li ions such as diffusion coefficient are strongly related to dendrite growth. In this thesis, micro-electrodes are employed to determine the diffusion coefficients in various electrolytes. Compared with SEM images of lithium metal microstructures obtained by electro-deposition, the lower diffusion coefficient can promote lithium dendrite growth at a similar exchange current density, which is indicated by Sand’s equation. The low electro-chemical potential of lithium metal leads to reactions between the metallic lithium and the conventional electrolytes. However, the benzene possesses a lower electro-chemical potential (-3.42 V vs SHE). Therefore, benzene is applied as a co-solvent to adjust ionic solvation structures of the electrolytes for lithium anode protection. In chapter 1, the background of lithium metal anodes is introduced. In chapter 2, the micro-electrodes are employed to determine the kinetic parameters of the electrolytes. Then the relations among these parameters and electro-plating morphologies are explored. In chapter 3, benzene is applied as a co-solvent in the electrolyte. The improved performance of the lithium metal anode protection is shown in this chapter. Chapter 4 further investigates the benzene-based electrolytes as applied in lithium metal full-cell batteries, such as lithium-sulfur batteries and NCM-lithium metal batteries, and the performance is noted.

CVD Polymers

CVD Polymers
Author: Karen K. Gleason
Publisher: John Wiley & Sons
Total Pages: 484
Release: 2015-04-01
Genre: Technology & Engineering
ISBN: 352769028X

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The method of CVD (chemical vapor deposition) is a versatile technique to fabricate high-quality thin films and structured surfaces in the nanometer regime from the vapor phase. Already widely used for the deposition of inorganic materials in the semiconductor industry, CVD has become the method of choice in many applications to process polymers as well. This highly scalable technique allows for synthesizing high-purity, defect-free films and for systematically tuning their chemical, mechanical and physical properties. In addition, vapor phase processing is critical for the deposition of insoluble materials including fluoropolymers, electrically conductive polymers, and highly crosslinked organic networks. Furthermore, CVD enables the coating of substrates which would otherwise dissolve or swell upon exposure to solvents. The scope of the book encompasses CVD polymerization processes which directly translate the chemical mechanisms of traditional polymer synthesis and organic synthesis in homogeneous liquids into heterogeneous processes for the modification of solid surfaces. The book is structured into four parts, complemented by an introductory overview of the diverse process strategies for CVD of polymeric materials. The first part on the fundamentals of CVD polymers is followed by a detailed coverage of the materials chemistry of CVD polymers, including the main synthesis mechanisms and the resultant classes of materials. The third part focuses on the applications of these materials such as membrane modification and device fabrication. The final part discusses the potential for scale-up and commercialization of CVD polymers.

Theory and Practice of Metal Electrodeposition

Theory and Practice of Metal Electrodeposition
Author: Yuliy D. Gamburg
Publisher: Springer Science & Business Media
Total Pages: 385
Release: 2011-06-11
Genre: Science
ISBN: 1441996699

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The authors provide new insights into the theoretical and applied aspects of metal electrodeposition. The theory largely focuses on the electrochemistry of metals. Details on the practice discuss the selection and use of metal coatings, the technology of deposition of metals and alloys, including individual peculiarities, properties and structure of coatings, control and investigations. This book aims to acquaint advanced students and researchers with recent advances in electrodeposition while also being an excellent reference for the practical electrodeposition of metals and alloys.