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Research papers on Battery technology

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  1. Lithium-Ion Battery Development with High Energy Density

    Pengfei Chen, Ziwei Lin, Tian Tan, et al. · 2022 · Highlights in Science, Engineering and Technology · 5 citations

    With the increasing development of technology, the battery's energy density has improved significantly, which led to improvements in numerous fields, such as the manufacture of electrical vehicles and phones. However, we found out that the battery's energy density is still not as high as expected. For example, electric aircraft are still not ready for mass production as the cost of the production is magnificent. This report will start with the introduction of batteries and how batteries are related to electrical cars to find out the energy density problems of batteries and how to solve those problems. Next, there will be an introduction to electrodes and electrolytes. We will focus on the di

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  2. Potential Failure Prediction of Lithium-ion Battery Energy Storage System by Isolation Density Method

    Yong Zhu, Mingyi Liu, Lin Wang, et al. · 2022 · Sustainability · 5 citations

    Lithium-ion battery energy storage systems have achieved rapid development and are a key part of the achievement of renewable energy transition and the 2030 “Carbon Peak” strategy of China. However, due to the complexity of this electrochemical equipment, the large-scale use of lithium-ion batteries brings severe challenges to the safety of the energy storage system. In this paper, a new method, based simultaneously on the concepts of statistics and density, is proposed for the potential failure prediction of lithium-ion batteries. As there are no strong assumptions about feature independence and sample distribution, and the estimation of the anomaly scores is conducted by integrating severa

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  3. Advanced Polymer Binder for Silicon Anodes Based High Energy Density Lithium Ion Battery

    Feng Zou, Yu Zhu · 2016 · ECS Meeting Abstracts · 1 citations

    The state-of-the-art lithium ion batteries (LIBs) do not have sufficient specific energy for emerging applications such as electrical vehicles. One route to increase the energy density of LIBs is the use of a silicon-based anode. Unlike conventional graphite anodes, which only have capacity of one lithium ion per six carbon atoms (372 mA-h/g), silicon-based anodes have a theoretical capacity of 4.4 lithium ions per silicon atom (4,200 mA-h/g). These results indicate that the Si anode offers great promising for achieving high specific energy LIBs. However, silicon-based anodes have yet to achieve widespread adoption or commercialization due to the large volume change that occurs upon lithia

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  4. Strategies for Developing High-Energy Density Lithium-Ion Battery Cathodes

    Wang Hay Kan, Guoying Chen · 2017 · ECS Meeting Abstracts

    Rechargeable lithium-ion batteries (LIBs) have the potential to meet DOE’s energy and cost goals for transportation applications but significant barriers to commercialization remain. Performance limitations in cathode materials are currently considered as the bottleneck even after decades of intense developmental effort in this area. In order to increase energy density of the state-of-the-art lithium transition-metal oxide (Li-TM oxide) cathodes, strategies for either increasing the operating voltage window or the charge density/capacity of the oxides are needed. It is well-known that when cycled at high voltages (> 4.3 V), Li-TM oxides suffer from structural instability, extensive side

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  5. Lesson learned of business strategy of supercapacitor battery and lithium ion battery: A comparative study

    Betsyeda Frea Anuarita · 2026 · Energy Storage Technology and Applications

    <span>Increasing carbon emissions are becoming a major issue in the growth of the renewable energy storage industry. One of the keys to this growth is understanding the business strategy of developing and implementing energy storage technologies such as lithium ion batteries and supercapacitors. This is done by exploring the innovation and entrepreneurship system of a successful company as a business strategy lesson by providing technology commercialization research based on comparative research currently conducted by established battery companies. This research provides a holistic view of the successes and challenges in both batteries by analyzing the dynamics of market conditions and

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  6. Automotive Lithium-ion Cells: Improving Cell Energy Density and Power Density

    Zexu Yang · 2025 · Highlights in Science, Engineering and Technology

    In recent years, environmental problems caused by carbon emissions have become increasingly serious, and traditional internal combustion engine vehicles are one of the main contributors to carbon emissions. In order to solve the problem of carbon emissions, electric vehicles have recently attracted public attention. However, electric vehicles still have problems such as short driving time and slow charging speed. Looking back at previous studies, improving the energy density and power density of lithium-ion batteries is still an important direction for the development of electric vehicles. This article reviews the methods of improving battery energy density from the perspective of improving

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