Yue Feng, Georgios Polizos, Sergiy Kalnaus, Runming Tao, Sabine Neumayer, Wheatley Steenman, Jaswinder Sharma, Drew J. Pereira, Brian Morin, Jianlin Li
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This study introduces metalized polythylene terephthalate (mPET) polymer films by depositing an Al or Cu thin layer onto two sides of a polyethylene terephthalate film—named mPET/Al and mPET/Cu, as lightweight, cost-effective alternatives to traditional metal current collectors in lithium-ion batteries. We have fabricated current collectors that significantly reduce weight (by 73%), thickness (by 33%), and cost (by 85%) compared with traditional metal foil counterparts. These advancements have the potential to enhance energy density to 280 Wh kg<sup>−1</sup> at the electrode level under 10-min charging at 6 C. Through testing, including a novel extremely fast charging protocol across various C-rates and long-term cycling (up to 1000 cycles) in different cell configurations, the superior performance of these metalized polymer films has been demonstrated. Notably, mPET/Cu and mPET/Al films exhibited comparable capacities to conventional cells under extremely fast charging, with the mPET cells showing a 27% improvement in energy density at 6 C and maintaining significant energy density after 1000 cycles. 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引用次数: 0
摘要
电动汽车是全球道路运输向脱碳转变的关键,锂离子电池是这一技术发展的核心。然而,追求能够极快充电的电池,同时满足高能量和安全标准,对当前的锂离子电池技术提出了重大挑战。此外,电气化、太阳能技术和汽车轻量化领域对铝(Al)和铜(Cu)的需求不断增加,将这些金属推向中期接近关键的地位。本研究介绍了金属化聚对苯二甲酸乙二醇酯(mPET)聚合物薄膜,通过在聚乙烯对苯二甲酸乙二醇酯薄膜的两侧沉积Al或Cu薄层,称为mPET/Al和mPET/Cu,作为锂离子电池中传统金属集流器的轻质,经济高效的替代品。与传统的金属箔相比,我们制造的集热器显着减轻了重量(73%),厚度(33%)和成本(85%)。这些进展有可能在6℃下充电10分钟,将电极水平的能量密度提高到280 Wh kg - 1。通过测试,包括在不同电池配置下的各种c -倍率和长期循环(高达1000次循环)的新型极快充电协议,这些金属化聚合物薄膜的优越性能已经得到了证明。值得注意的是,mPET/Cu和mPET/Al薄膜在极快充电条件下表现出与传统电池相当的容量,mPET电池在6℃时的能量密度提高了27%,并且在1000次循环后仍能保持显著的能量密度。这项研究强调了mPET薄膜的潜力,它将彻底改变卷对卷电池的制造工艺,并显著提高电动汽车中锂离子电池的性能指标。
Metalized Polymer Current Collector for High-Energy Lithium-Ion Batteries with Extreme Fast-Charging Capability
Electric vehicles are pivotal in the global shift toward decarbonizing road transport, with lithium-ion batteries at the heart of this technological evolution. However, the pursuit of batteries capable of extremely fast charging that also satisfy high energy and safety criteria, poses a significant challenge to current lithium-ion batteries technologies. Additionally, the increasing demand for aluminum (Al) and copper (Cu) in electrification, solar energy technologies, and vehicle light-eighting is driving these metals toward near-critical status in the medium term. This study introduces metalized polythylene terephthalate (mPET) polymer films by depositing an Al or Cu thin layer onto two sides of a polyethylene terephthalate film—named mPET/Al and mPET/Cu, as lightweight, cost-effective alternatives to traditional metal current collectors in lithium-ion batteries. We have fabricated current collectors that significantly reduce weight (by 73%), thickness (by 33%), and cost (by 85%) compared with traditional metal foil counterparts. These advancements have the potential to enhance energy density to 280 Wh kg−1 at the electrode level under 10-min charging at 6 C. Through testing, including a novel extremely fast charging protocol across various C-rates and long-term cycling (up to 1000 cycles) in different cell configurations, the superior performance of these metalized polymer films has been demonstrated. Notably, mPET/Cu and mPET/Al films exhibited comparable capacities to conventional cells under extremely fast charging, with the mPET cells showing a 27% improvement in energy density at 6 C and maintaining significant energy density after 1000 cycles. This study underscores the potential of mPET films to revolutionize the roll-to-roll battery manufacturing process and significantly advance the performance metrics of lithium-ion batteries in electric vehicles applications.
期刊介绍:
Energy & Environmental Materials (EEM) is an international journal published by Zhengzhou University in collaboration with John Wiley & Sons, Inc. The journal aims to publish high quality research related to materials for energy harvesting, conversion, storage, and transport, as well as for creating a cleaner environment. EEM welcomes research work of significant general interest that has a high impact on society-relevant technological advances. The scope of the journal is intentionally broad, recognizing the complexity of issues and challenges related to energy and environmental materials. Therefore, interdisciplinary work across basic science and engineering disciplines is particularly encouraged. The areas covered by the journal include, but are not limited to, materials and composites for photovoltaics and photoelectrochemistry, bioprocessing, batteries, fuel cells, supercapacitors, clean air, and devices with multifunctionality. The readership of the journal includes chemical, physical, biological, materials, and environmental scientists and engineers from academia, industry, and policy-making.