Piperidinium Based Ionic Liquid Silica Nanoparticle Hybrid Electrolyte For Lithium Metal Batteries PDF Download

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Piperidinium Based Ionic Liquid - Silica Nanoparticle Hybrid Electrolyte for Lithium Metal Batteries

Piperidinium Based Ionic Liquid - Silica Nanoparticle Hybrid Electrolyte for Lithium Metal Batteries
Author: Kevin Stephen Korf
Publisher:
Total Pages: 65
Release: 2014
Genre:
ISBN:

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Herein is reported a novel piperidinium tethered silica nanoparticle hybrid electrolyte with 1M LiTFSI and PC for use in lithium metal batteries. This unique NOHMs electrolyte provides a solid-like physical barrier to dendritic growth due to the jamming phase transition while maintaining use of the piperidinium chemistry to achieve the same effect. Through a battery of characterizations, it was found that the tethered electrolyte displayed thermal stability up to 380 °C, high conductivities that were weakly affected by increases in viscosity and followed a VFT fit, low interfacial resistances, could be tuned to exhibit MPa scale moduli, and had an SEI layer that was able to efficiently stem dendritic growth. Polarization experiments of lithium symmetric cells showed long short circuit times whereas cycling experiments of symmetric cells showed no sign of short circuit, even after 1000 hours. Using a carbon modified lithium titanate counterelectrode, the cell exhibited stable voltage plateaus indicating electrolyte robustness during battery operation, capacity retentions of 87% over 1000 cycles, and no short circuit over 2000 cycles.


Ionic Liquid-tethered Hybrid Nanoparticle Electrolytes for Secondary Lithium Batteries

Ionic Liquid-tethered Hybrid Nanoparticle Electrolytes for Secondary Lithium Batteries
Author: Yingying Lu
Publisher:
Total Pages: 452
Release: 2014
Genre:
ISBN:

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Rechargeable lithium-based battery is one of the most promising battery candidates for high energy storage devices. Batteries containing lithium metal, eschewed the use of carbon supporting materials can lead to as much as a ten-fold improvement in anode storage capacity from 360 mAh g-1 to 3860 mAh g-1 and would open up opportunities for high energy un-lithiated cathode materials such as sulfur and oxygen, among others. Unfortunately, significant improvements in safe and stable battery performance are needed due to the non-uniform lithium deposition on the negative electrode. These uneven dendritic structures increase the potential risk of cell short-circuiting, energy fading or even fire hazards. Recent discoveries and advances have focused on electrolyte reconfigurations for the sake of suppressing or even eliminating dendrite formation. Of the various options, ionic liquids offer multiple synergetic properties that make them attractive electrolytes for extending lifetime and safety of LMBs. Their inherently low vapor pressure, non-flammability, good electrochemical stability in the presence of metallic lithium make ILs excellent choice in fail-safe LMBs. When anchored to metal oxide nanoparticle surface, it promotes the mechanical strength as well as maintaining the advantages of ILs. This dissertation researches ionic liquid-tethered hybrid nanoparticle electrolytes with several goals: improving room temperature ionic conductivity of the electrolytes while maintaining chemical and mechanical stabilities, improving lithium-ion transference number, and studying the dendritic lithium metal growth as a function of electrolyte properties. It is found that all types of IL electrolytes show improvements over the conventional electrolytes such as propylene carbonate in LiTFSI. It also found that untethered IL has comparable cell lifetime to tethered IL and piperidinium-based IL suppresses dendrite growth more efficiently than imidazolium-based IL. Later in this dissertation, we discussed the efforts of extending the cell lifetime beyond ionic 3 liquid platform. Chapter 7 and 8 evaluate the battery performance and cell lifetime by adding fluorine generating salt and by employing single ion conductor, respectively. 4.


SYNTHESIS AND CHARACTERIZATION OF HYBRID ELECTROLYTES WITH TETHERED IONIC LIQUID FOR LITHIUM ION BATTERIES.

SYNTHESIS AND CHARACTERIZATION OF HYBRID ELECTROLYTES WITH TETHERED IONIC LIQUID FOR LITHIUM ION BATTERIES.
Author: Guang Yang
Publisher:
Total Pages:
Release: 2018
Genre:
ISBN:

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Rechargeable lithium ion batteries are revolutionary energy storage systems widely used in portable electronic devices (e.g., mobile phones, laptops) and more recently electrical vehicles. The conventional liquid electrolytes in the lithium ion battery brought about safety problems such as fire and explosion. Related safety accidents (e.g., cell phone explosion, laptop fire, plane smoldering, etc.) have been reported many times. This also eliminates the possibility of using lithium metal as anode material which has much higher theoretical specific capacity in comparison with commercial graphite electrode because of the growth of uncontrolled lithium dendrites can lead to short circuit and other serious accidents. Solid polymer electrolytes have many advantages over conventional liquid electrolytes. They are light-weighted, non-volatile and have much better safety features than liquid electrolyte. Meanwhile, they are also better than the ceramic electrolyte in terms of their excellent flexibility and processability. Currently, low ionic conductivity of solid polymer electrolytes (e.g., polyethylene oxide (PEO)) at ambient temperature still hinders their practical application. Ionic liquids (ILs) are non-flammable and have negligible volatility. Its ionic conductive nature, excellent chemical stability, and good electrochemical stability enable them to be regarded as useful components for next generation battery electrolytes. In this thesis work, focus will be placed on synthesis and characterization of ionic liquid tethered organic/inorganic hybrid polymer electrolyte with high room temperature ionic conductivity. Moreover, their electrochemical properties and prototype battery performances were also looked into. The use of highly conductive solid-state electrolytes to replace conventional liquid organic electrolytes enables radical improvements in reliability, safety and performance of lithium batteries. Here in chapter 2, we report the synthesis and characterization of a new class of nonflammable solid electrolytes based on the grafting of ionic liquids onto octa-silsesquioxane. The electrolyte exhibits outstanding room-temperature ionic conductivity (~4.8 10-4 S/cm), excellent electrochemical stability (up to 5 V relative to Li+/Li) and high thermal stability. All-solid-state Li metal batteries using the prepared electrolyte membrane are successfully cycled with high coulombic efficiencies at ambient temperature. Good cycling stability of the electrolyte against lithium has been demonstrated. This work provides a new platform of solid polymer electrolyte for the application of room-temperature lithium batteries. In chapter 3, an organic-inorganic hybrid solid electrolyte with ionic liquid moieties tethered onto dumbbell-shaped octasilsesquioxanes through oligo(ethylene glycol) spacers was synthesized. The hybrid electrolyte is featured by its high room-temperature ionic conductivity (1.210-4 S/cm at 20 oC with LiTFSI salt), excellent electrochemical stability (4.6 V vs Li+/Li), and great thermal stability. Excellent capability of the hybrid electrolyte to mediate electrochemical deposition and dissolution of lithium has been demonstrated in the symmetrical lithium cells. No short circuit has been observed after more than 500 hrs in the polarization tests. Decent charge/discharge performance has been obtained in the prepared electrolyte based all-solid-state lithium battery cells at ambient temperature. In chapter 4, hybrid polymer electrolyte network (XPOSS-IL) synthesized by crosslinking the individual dendritic POSS-IL was investigated. To be specific, after grafting mono-broninated hexaethylene glycol to the POSS cage, 1-vinyl imidazole was adopted for the subsequent quarternization reaction. Then the chain end double bonds underwent free radical crosslinking process to produce XPOSS-IL. The ionic conductivity of LiTFSI dissolved XPOSS-IL is 5.4 10-5 S/cm at 30 . By adding a small fraction of ionic liquid 1-ethyl-3-methylimidazolium bis(trifluoromethylsulfonyl)imide (EMITFSI), the ionic conductivity increases to 1.4 10-4 S/cm at room temperature. It is also found that EMITFSI will enhance the anodic stability of XPOSS-IL. The Li/LTO and Li/LFP cell assembled with X-POSS-IL-LiTFSI/EMITFSI demonstrates capability of delivering high specific capacities at room temperature and elevated temperature.


Studies of Ionic Liquid Hybrids

Studies of Ionic Liquid Hybrids
Author: Mengxin Liu
Publisher:
Total Pages: 107
Release: 2017
Genre: Capacitors
ISBN:

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Ionic liquids (ILs) have attracted much attention in electrochemical energy storage systems for their advantageous properties over traditional lithium salt/carbonate solvent electrolyte in terms of higher electrochemical potential windows, comparable ionic conductivity, negative vapor pressure and non-flammability. Ionic liquids can be used as the solvent-free electrolyte in electrochemical double layer capacitors (EDLCs) or can act as the important additives to the carbonate electrolyte in lithium ion batteries (LIBs). Recently, lithium ion capacitors (LICs) have emerge as a novel energy storage system to satisfy the demands for higher energy density and higher power density in portable and transportation systems. This Master thesis research is focused on three types of imidazolium based ionic liquids and their hybrids for potential applications to EDLCs, LIBs or LICs. The electrochemical characteristics, including ionic conductivities and stability windows of the three pristine ILs and their hybrids with additions of organic solvent diethyl carbonate (DEC), or common lithium ion electrolyte (LiPF6/EC/DEC) are systematically investigated. The influences of temperature and the volumetric percentageivof the IL additive on their electrochemical behaviors are discussed. Finally, these ionic liquid hybrids were examined in LIB and LIC devices to assess their impacts on energy storage performances.


Rational Design of Nanostructured Polymer Electrolytes and Solid–Liquid Interphases for Lithium Batteries

Rational Design of Nanostructured Polymer Electrolytes and Solid–Liquid Interphases for Lithium Batteries
Author: Snehashis Choudhury
Publisher: Springer Nature
Total Pages: 230
Release: 2019-09-25
Genre: Technology & Engineering
ISBN: 3030289435

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This thesis makes significant advances in the design of electrolytes and interfaces in electrochemical cells that utilize reactive metals as anodes. Such cells are of contemporary interest because they offer substantially higher charge storage capacity than state-of-the-art lithium-ion battery technology. Batteries based on metallic anodes are currently considered impractical and unsafe because recharge of the anode causes physical and chemical instabilities that produce dendritic deposition of the metal leading to catastrophic failure via thermal runaway. This thesis utilizes a combination of chemical synthesis, physical & electrochemical analysis, and materials theory to investigate structure, ion transport properties, and electrochemical behaviors of hybrid electrolytes and interfacial phases designed to prevent such instabilities. In particular, it demonstrates that relatively low-modulus electrolytes composed of cross-linked networks of polymer-grafted nanoparticles stabilize electrodeposition of reactive metals by multiple processes, including screening electrode electrolyte interactions at electrochemical interfaces and by regulating ion transport in tortuous nanopores. This discovery is significant because it overturns a longstanding perception in the field of nanoparticle-polymer hybrid electrolytes that only solid electrolytes with mechanical modulus higher than that of the metal electrode are able to stabilize electrodeposition of reactive metals.


Ionic Liquid Electrolytes for Lithium Metal Batteries

Ionic Liquid Electrolytes for Lithium Metal Batteries
Author: George Hamilton Lane
Publisher:
Total Pages:
Release: 2010
Genre:
ISBN:

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This thesis explores the use of ionic liquids as electrolytes for rechargeable lithium metal batteries. The phenomenon of internal cell short circuiting, a result of dendritic lithium plating, is described along with some practices that ameliorate the problem. The ionic liquid type, charging method and additives are all found to affect short circuit behaviour. Short circuiting is found to be particularly troublesome for a N(SO2CF3)2- based electrolyte, which is remedied by using pulsed charging and an appropriate additive. More promisingly, electrolytes based on N(CN)2- are found to not suffer from short circuiting under the same conditions. Additives are an important part of electrolyte formulation, and their benefits and limitations are investigated from the viewpoints of interfacial stability and the longevity of their effects. Organic solvents used in typical molecule based lithium battery electrolytes, the alkyl carbonates, are found to improve interfacial stability when used as additives in ionic liquid based electrolytes. However, this does not guarantee a favourable lithium deposit morphology during the charging process. The chemical compositions of the surface films formed on lithium metal by reaction with different electrolytes are investigated using Fourier transform infrared spectroscopy. Evidence is presented that a cyclic ether type cation reacts at the lithium surface to form an alkoxide species in a surface process analogous to the reaction of a molecular ether with lithium metal. For N(SO2F)2- type ionic liquids, the SO2 group appears to be preserved in the surface film, however the S-F group is not. Electrolytes based on N(CN)2- appear to form a thick surface film that is chemically very similar to the ionic liquid. Although rate performance yet requires improvement, in terms of maximising battery cycle life, the N(CN)2- based electrolyte appears to be a promising alternative to the more exotic N(SO2CF3)2- and N(SO2F)2- based ionic liquids.


Nanostructured Hybrid Electrolytes for Lithium Metal Batteries

Nanostructured Hybrid Electrolytes for Lithium Metal Batteries
Author: Jennifer Lyn Schaefer
Publisher:
Total Pages: 250
Release: 2014
Genre:
ISBN:

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It has long been recognized that secondary batteries containing lithium metal anodes have some of the highest theoretical energy densities of known battery chemistries, due to the light weight and low deposition potential of lithium metal. Lithium metal batteries have several roadblocks to effective, wide-spread implementation: lithium metal is reactive with many lithium-ion electrolytes causing low coulombic efficiency and it electrodeposits unevenly upon recharge, creating a safety hazard due to potential short-circuit. Polymer electrolytes have been under investigation for several years due to their relatively low reactivity with lithium metal and potential to electrodeposit more uniformly, due to their higher mechanical strength. This dissertation researches polymer-ceramic hybrid electrolytes with several goals: improving room temperature ionic conductivity of the electrolytes while maintaining chemical stability and mechanical integrity, allowing tunability of mechanical properties, improving lithium-ion transference number of the electrolyte, and studying the lithium metal dendrite growth as a function of electrolyte properties. It is found that constraint of the polymer chain by tethering to a nanoparticle improves ambient temperature ionic conductivity by mitigating matrix crystallization. Immobilization of anionic ligands onto the nanoparticle is found to be a facile way to synthesize nanometric lithium salts with improved transference numbers; importantly, the chemistry of the suspending solvent is found to have a significant impact on ionic conductivity. It is found that polyether-based electrolytes with and without hybrid nanoparticle fillers exhibit the same lithium metal battery lifetime regardless of mechanical properties or ionic conductivity. Surprisingly, certain copolymer electrolytes are found to provide for exceeding longer lifetimes.


Polymerized Ionic Liquids

Polymerized Ionic Liquids
Author: Ali Eftekhari
Publisher: Royal Society of Chemistry
Total Pages: 564
Release: 2017-09-18
Genre: Science
ISBN: 1782629602

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The series covers the fundamentals and applications of different smart material systems from renowned international experts.