Academic literature on the topic 'Polymer electrolytes, supercapacitors, lithium metal battery, zinc metal battery'

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Journal articles on the topic "Polymer electrolytes, supercapacitors, lithium metal battery, zinc metal battery"

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Kasprzak, Dawid, Li Tao, Zhenrui Wu, Jia Xu, Yue Zhang, and Jian Liu. "High-Voltage, Long Term-Stable and Wearable Zinc-Ion Hybrid Batteries with Gel Biopolymer Electrolytes." ECS Meeting Abstracts MA2024-01, no. 1 (2024): 149. http://dx.doi.org/10.1149/ma2024-011149mtgabs.

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We are on the eve of the energy transition towards the phase-out of coal, electromobility and renewable power supply. Lithium-ion batteries (LIBs) and electric double-layer capacitors (EDLCs) are complementary energy storage devices supporting this technological change. They have dominated the commercial market of power sources, serving as energy supplies for various technologies ranging from daily electronics and gadgets through electric vehicles to management systems of the intermittent electric grid. However, conventional energy storage systems present some challenges regarding operational
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You, Seungmin, Chaeeun Kang, Jooeun Park, and Jae-Kwang Kim. "Ceramic Composite Gel Polymer Electrolyte for Aqueous Zinc-Ion Battery." ECS Meeting Abstracts MA2023-02, no. 4 (2023): 750. http://dx.doi.org/10.1149/ma2023-024750mtgabs.

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As the most extreme application of electrical energy storage devices, lithium-ion batteries (LIBs) not only have the high energy density, but also show long charge/discharge life cycles. Nevertheless, some inherent issues hinder its widespread application, such as the safety problems, lithium metal extrusion, dendrite growth, and the high cost, together with the limited resources of lithium metal. As one of the next-generation batteries, zinc-ion battery (ZIB) is a promising candidate to solve the above problems, due to their high theoretical capacity, low cost, high abundance, low potential,
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Ford, Hunter O., Eric Ruzicka Ruzicka, Brian Chaloux, et al. "Rechargeable Ag–Zn Batteries Via Single-Anion Conducting Solid-State Polymer Electrolytes." ECS Meeting Abstracts MA2024-02, no. 9 (2024): 1442. https://doi.org/10.1149/ma2024-0291442mtgabs.

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Decarbonizing our energy infrastructure will require implementing battery chemistries beyond lithium-ion that are safe-to-operate and contain non-strategic materials. Silver–zinc, a decades-old battery technology with competitive energy and power density to Li-ion, has been used in both the military and civilian sector, but its widespread adoption is hindered by its poor reversibility and short lifespan. Realizing highly reversible, long cycle life, rechargeable Ag–Zn batteries entails simultaneously addressing two challenges: (i) suppressing shape change at the Zn metal anode that leads to de
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Aruchamy, Kanakaraj, Subramaniyan Ramasundaram, Sivasubramani Divya, Murugesan Chandran, Kyusik Yun, and Tae Hwan Oh. "Gel Polymer Electrolytes: Advancing Solid-State Batteries for High-Performance Applications." Gels 9, no. 7 (2023): 585. http://dx.doi.org/10.3390/gels9070585.

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Gel polymer electrolytes (GPEs) hold tremendous potential for advancing high-energy-density and safe rechargeable solid-state batteries, making them a transformative technology for advancing electric vehicles. GPEs offer high ionic conductivity and mechanical stability, enabling their use in quasi-solid-state batteries that combine solid-state interfaces with liquid-like behavior. Various GPEs based on different materials, including flame-retardant GPEs, dendrite-free polymer gel electrolytes, hybrid solid-state batteries, and 3D printable GPEs, have been developed. Significant efforts have al
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Lindberg, Simon, María Arnaiz, María Canal Rodríguez, María Martinez-Ibañez, and Jon Ajuria. "In Situ Crosslinked Gel Polymer Electrolytes for Li-Ion Capacitors." ECS Meeting Abstracts MA2023-02, no. 1 (2023): 11. http://dx.doi.org/10.1149/ma2023-02111mtgabs.

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Supercapacitors are the choice when high-power performance is essential, however, for many applications the energy density of supercapacitors is too low to be used. To increase the energy density, it is possible to combine an insertion type anode of a Li-ion battery with a capacitor type double-layer electrode, forming a so-called Li-ion capacitor (LIC) [1]. There are however several issues with LICs that needs to be resolved to enable a more widespread use in applications. The most critical issue is the pre-lithiation of the anode, which can be either electrochemical or mechanical, this adds
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Kitajima, Showa, Hitoshi Kasai, and Kouki Oka. "Rechargeable Organic Molecule-Air Battery." ECS Meeting Abstracts MA2024-02, no. 67 (2024): 4464. https://doi.org/10.1149/ma2024-02674464mtgabs.

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[Introduction] The development of environmentally friendly batteries, such as rechargeable aqueous metal-air batteries, has been required for sustainable energy supply. Aqueous zinc-air batteries, composed of zinc as the anode, O2 in the air as the cathode, and a very base aqueous solution (e.g., 6 M KOH aqueous solution) as the electrolyte, are one of the representative environmentally friendly batteries, because of their high energy density (1353 W h kg−1 excluding oxygen) compared to conventional lithium-ion batteries (limited to be <350 W h kg−1 based on the intercalation chemistry).[1]
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Lobato de Faria, Marco, and Christian Kuss. "Parameters Affecting Lithium Ion Conductivity of Carboxymethyl Cellulose Binders." ECS Meeting Abstracts MA2022-02, no. 6 (2022): 638. http://dx.doi.org/10.1149/ma2022-026638mtgabs.

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In an effort to minimize green house gas emissions, the development of renewable energy storage has become important, especially for the transportation industry.(I) Currently, the most effective energy storage solution is Li-ion batteries due to their long cycle life and high energy density.(I) However, this current technology uses highly reactive and flammable liquid electrolytes which are both limited by their limited charging speed through a liquid medium and their unsafe nature.(II) For this reason, many large companies such as Hyundai and Samsung have heavily invested in the development o
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Chelali, Yahia, Alonso Moreno, and Mohamed Mohamedi. "Advancing the Design of Rechargeable Zinc-Air Batteries for Affordable & Sustainable Energy Storage." ECS Meeting Abstracts MA2025-01, no. 4 (2025): 509. https://doi.org/10.1149/ma2025-014509mtgabs.

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Portable electronics, remote sensing and communications, Internet of Things (IoT), electric/hybrid vehicles, stationary power plants, etc. becoming more ubiquitous in daily life, is driving an increase in demand for energy storage devices. Electrochemical devices such as batteries have and will continue to play a key role in our modern society as they are widely used as energy/power sources in various sectors. Lithium-ion batteries (LIB) are currently the most developed and used. However, the large-scale demand for lithium would force us to consider its rising price due to its limited reserve
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Brehm, Wolfgang, and Julia Kowal. "Conversion Electrodes for Rechargeable Li-Sulfur, Na-Ion and Zn-Air Batteries." ECS Meeting Abstracts MA2024-01, no. 36 (2024): 2053. http://dx.doi.org/10.1149/ma2024-01362053mtgabs.

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Rechargeable batteries are reliable and highly efficient energy storage devices providing high energy density at high voltages with the lead of the Li-ion technology since the early 1990s. Despite these promising advantages, the strongly limited abundance of Li and also that of other elements contained in a Li-ion battery (LIB) leads to the search for low-cost and more abundant alternatives. Especially for stationary storage devices alternative battery technologies are required. Alternative chemistries, such as those based on lithium conversion or alloying, can actually lead to higher energy d
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Jang, Jooyoung, and Changshin Jo. "Biopolymer-Based Protective Layer for Stable and Highly Reversible Zinc Metal Anodes." ECS Meeting Abstracts MA2023-02, no. 4 (2023): 690. http://dx.doi.org/10.1149/ma2023-024690mtgabs.

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Zinc (Zn) metal has attracted considerable attention because of its natural abundance and stability in aqueous environments compared with lithium/sodium metal anodes. Moreover, Zn metal as anode showed a high theoretical capacity (820 mAh g−1), high energy per volume (5855 mA cm−3), and low operational potential (–0.78 V vs SHE) in electrochemical systems. However, Zn metal suffers from dendrite growth and poor plating/stripping reversibility, resulting from inhomogeneous Zn ion flux and contamination by generally used glass fiber membranes (GFs) as separators. Although studies to inhibit dend
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Dissertations / Theses on the topic "Polymer electrolytes, supercapacitors, lithium metal battery, zinc metal battery"

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Vijayakumar, V. "Preparation, characterization and application of proton, lithium and zinc-ion conducting polymer electrolytes for supercapacitors, lithium- and zinc-metal batteries." Thesis(Ph.D.), CSIR-National Chemical Laboratory, 2021. http://dspace.ncl.res.in:8080/xmlui/handle/20.500.12252/5972.

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The use of liquid electrolytes in energy storage devices are associated with several constraints pertaining to safety. Polymer electrolytes are suitable candidates to overcome several problems associated with free-flowing liquid electrolytes. The current thesis deals with the development of proton, lithium, and zinc conducting gel polymer electrolytes for electrochemical energy storage devices such as supercapacitors, lithium-metal batteries, and zinc-metal batteries. Special emphasis is given to the improvement of electrode|electrolyte interface in polymer electrolyte-based energy storage dev
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Book chapters on the topic "Polymer electrolytes, supercapacitors, lithium metal battery, zinc metal battery"

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"Polymer Electrolytes for Rechargeable Batteries." In Rechargeable Battery Electrolytes. Royal Society of Chemistry, 2024. http://dx.doi.org/10.1039/9781839167577-00233.

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With the emergence of electric vehicles and large-scale power grids, energy storage systems with high energy density are urgently needed. However, the safety concerns of different metal-ion batteries related to organic solvents in the liquid electrolytes limits their large-scale application. Polymer electrolytes are promising alternatives as they combine the merits of the toughness of solid electrolytes and the ionic conductivity of liquid electrolytes. In Chapter 9, the developments and strategies for different types of polymer electrolytes in several metal-based batteries, such as lithium-io
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