国精产品一区一区三区有限在线-久久午夜私人影院-手机福利视频-88国产精品欧美一区二区三区-亚洲一卡二卡三卡四卡无卡麻豆

CATL Achieves Breakthrough in Lithium Metal Battery Research, Published in Nature Nanotechnology

2025-05-28

CATL has announced a breakthrough in lithium metal battery (LMB) technology through quantitative mapping, venturing into previously uncharted territory in electrolyte strategy. This pioneering research, published in Nature Nanotechnology, enables LMBs with both high energy density and extended cycle life, solving a long-standing challenge in the field. The optimised prototype has reached a cycle life of 483 cycles and can be incorporated into state-of-the-art designs to achieve an energy density of over 500 Wh/kg, marking a significant step toward commercial viability for applications like electric vehicles and electric aviation.


LMBs are widely regarded as the next-generation battery system thanks to their intrinsically high energy density, especially for high-end power applications such as long-range electric vehicles and electric aviation. However, these batteries have long faced a trade-off between energy density and cycle life. Previous research has focused on enhancing cell performance by optimising solvation structures and solid-electrolyte interphases. And these approaches often compromised lifespan, falling short of delivering commercially viable solutions. Limited progress has been made to understand the failure mode of LMBs, due to the challenges involved in accurately quantifying the consumption of active lithium and electrolyte components during cycling.


To overcome this barrier, CATL's R&D team developed and refined a suite of analytical techniques to track the evolution of active lithium and each electrolyte component throughout the battery's life cycle. This approach transformed a "black box" into a "white box", unveiling the critical depletion pathways driving cell failure. The team discovered that, contrary to previous assumptions, the dominant cause of cell failure is not solvent breakdown, dead lithium accumulation, or solvation environment disruption, but the continuous consumption of the electrolyte salt LiFSI, with 71% of it consumed by end of life. These results highlight the need to broaden industry focus beyond Coulombic efficiency (CE), long considered the key metric for LMBs, to also include electrolyte durability as a critical factor for sustained performance.


Building on these insights, CATL optimised the electrolyte formulation by introducing a lower molecular weight diluent. This adjustment increased the LiFSI salt's mass fraction, improved ionic conductivity, and reduced viscosity, all without increasing the total mass of electrolyte used. The resulting LMB prototype, while exhibiting the same CE as the previous iteration, doubles the cycle life to 483 cycles, and can be adopted in new designs with an energy density over 500 Wh/kg. This breakthrough initiates a paradigm shift for developing batteries that are both energy-dense and built to last.


"We saw a valuable opportunity to bridge the gap between academic research and its practical application in commercial battery cells," said Ouyang Chuying, Co-president of Research & Development at CATL and Executive Deputy Director of the 21C Lab. "Our findings underscore that LiFSI salt consumption and, importantly, overall salt concentration is a fundamental determinant of battery longevity."


The research was conducted at CATL's 21C Lab, which focuses on advancing next-generation battery technologies. CATL invested about RMB 18.6 billion (USD 2.59 billion) in R&D in 2024. The company holds more than 43,000 patents that have been issued and are pending globally. These efforts strengthen CATL's leadership in battery technology innovation, turning scientific research into practical clean energy solutions.


Read the full paper here: https://www.nature.com/articles/s41565-025-01935-y



By clicking on the button “I accept” or by further usage of this website you express consent with usage of cookies as well as you grant us the permission to collect and process personal data about your activity on this website. Such information are used to determine personalised content and display of the relevant advertisement on social networks and other websites. More information about personal data processing can be found on this link. Read More

主站蜘蛛池模板: 亚洲免费观看在线视频| 日日噜噜夜夜狠狠久久蜜桃| 午夜亚洲精品久久一区二区 | 日本熟日本熟妇中文在线观看| 久久天天躁狠狠躁夜夜av不卡| 亚洲国产精品悠悠久久琪琪| 色综合中文字幕久久88| 国产香蕉视频在线播放| 天天久久| 青春草在线视频免费观看| 人妻av无码系列一区二区三区| 久久成人麻豆午夜电影| 国产午夜人做人免费视频中文| 伊人久久精品无码麻豆一区| 新婚人妻不戴套国产精品| 人妻少妇无码中文幕久久| 狠狠躁18三区二区一区| 国产又色又爽又黄又免费| 久久99亚洲含羞草影院| 少妇被多人c夜夜爽爽av| 丰满人妻熟妇乱又伦精品app| 免费特级黄毛片| 日本无码欧美一区精品久久| 国产香蕉尹人在线观看视频| 国产成人精品午夜福利在线播放| 国产精品亚洲专区无码第一页 | 亚洲国产成人av国产自| 国模小黎大尺度精品(02)[82p]| 18禁黄无码免费网站高潮| 一本大道大臿蕉无码视频| 午夜精品久久久久久久99热 | 国产高清av久久久久久久| 国产免费无码一区二区| 免费无码毛片一区二区三区a片| 黑人巨大av在线播放无码| 精品国际久久久久999波多野| 亚洲午夜无码毛片av久久| 日本护士xxxxhd少妇| 亚洲国产精久久久久久久| 男女性杂交内射女bbwxz| 久久久噜噜噜www成人网|