市场调查报告书
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2030年薄膜二次电池市场预测:按技术、应用、最终用户和地区进行全球分析Rechargeable Thin Film Battery Market Forecasts to 2030 - Global Analysis By Technology (Ceramic Batteries, Printed Batteries, Lithium Polymer Batteries and Other Technologies), Application, End User and By Geography |
根据Stratistics MRC预测,2024年全球薄膜二次电池市场规模将达到1.543亿美元,预计2030年将达到12.87亿美元,预测期内复合年增长率为42.4%。薄膜二次电池是一种小型、轻质的能源储存装置,利用薄层活性材料来储存和释放电能。这些电池通常使用先进的薄膜沉淀技术(例如溅镀或化学气相沉淀)来製造,以在基板上形成电极、电解质和集电器层。薄膜设计具有灵活性,适合整合到穿戴式装置、物联网感测器和其他小型电子设备。薄膜二次电池具有充电快、能量密度高、循环寿命长等优点。
根据国际数据公司(IDC)的数据,全球智慧型手机出货量比 2009 年成长了 5.7 倍。
电子设备的小型化
小型化为各种行业的电子产品开拓了新的应用,包括穿戴式技术、物联网感测器和医疗植入。薄膜充电电池在为这些设备供电、实现外形规格发挥关键作用。此外,将电池安装到越来越小的空间的需求正在推动电池技术的创新。薄膜二次电池製造商面临着提高能量密度、充电速度和耐用性的压力,以满足小型化设备的需求,从而带来惠及整个市场的进步。
与传统电池相比能量密度较低
较低的能量密度意味着薄膜二次电池每单位体积或重量能源储存。结果,电池寿命可能会缩短,电子设备的性能可能会下降,导致消费者不满意并不愿采用采用薄膜电池的产品。例如,电动车和大型能源储存系统可能更喜欢具有更高能量密度的传统电池,以有效满足其电力需求。
穿戴式科技蓬勃发展
智慧型手錶、健身追踪器和医疗监控设备等穿戴式装置严重依赖小型、轻量电源。薄膜充电电池由于其灵活的设计和小巧的外形规格非常适合整合到这些可穿戴设备中。穿戴式科技的日益普及直接推动了对薄膜电池的需求。
缺乏标准化的製造流程
製造过程中的不一致可能会导致相容性和互通性问题,特别是在多个部件需要无缝协作的应用中。因此,缺乏标准化可能会阻碍可充电薄膜电池整合到各种电子设备和系统中,从而限制其市场范围和易用性。
COVID-19 的影响
儘管最初供应链和製造业的中断导致生产放缓,但封锁期间对电子产品和医疗设备的需求增加推动了随后的市场成长。远端工作和数数位化的趋势进一步推动了对配备薄膜电池的行动装置的需求。然而,经济不确定性和供应链挑战仍然存在,影响着市场动态。
陶瓷电池领域预计将在预测期内成为最大的领域
陶瓷电池领域预计将出现良好成长。陶瓷电池和薄膜电池根据其特性和性能指标,可能会满足二次电池市场的不同细分市场。例如,薄膜电池在需要灵活性和轻量化设计的应用中可能更优越,而陶瓷电池在高能量密度应用中可能是首选。
家用电子电器领域预计在预测期内复合年增长率最高
由于家用电子电器市场的竞争推动了持续的技术创新,预计家用电子电器领域在预测期内将出现最高的复合年增长率。製造商一直在寻找提高设备效能的方法,包括电池寿命和充电速度。薄膜二次电池具有快速充电能力和高能量密度等优势,使其成为整合到下一代消费性电子产品中的有吸引力的选择。
由于产品需求不断增长、物联网设备的采用不断增加以及该地区电子製造业的快速扩张,预计亚太地区将在预测期内占据最大的市场占有率。中国、韩国、日本、印度等新兴国家引领区域市场。这些国家生产设施数量的增加和应用范围的扩大预计将在预测期内进一步推动市场成长。
预计北美在预测期内的复合年增长率最高。该地区在电子和半导体行业拥有强大的影响力,再加上对小型和轻型电源不断增长的需求,正在推动市场扩张。该地区的主要企业正在投资研发,以提高电池性能、提高能量密度并改善製造工艺,进一步推动市场成长。
According to Stratistics MRC, the Global Rechargeable Thin Film Battery Market is accounted for $154.3 million in 2024 and is expected to reach $1287.0 million by 2030 growing at a CAGR of 42.4% during the forecast period. A rechargeable thin-film battery is a compact, lightweight energy storage device that utilizes thin layers of active materials to store and release electrical energy. These batteries are typically fabricated using advanced thin-film deposition techniques, such as sputtering or chemical vapor deposition, to create layers of electrodes, electrolytes, and current collectors on a substrate material. The thin-film design allows for flexibility, making them suitable for integration into wearable devices, IoT sensors, and other compact electronics. Rechargeable thin-film batteries offer advantages such as fast charging, high energy density, and long cycle life.
According to International Data Corporation (IDC), smartphone Shipments across the globe increased 5.7 times compared to 2009.
Miniaturization of electronic devices
Miniaturization opens up new applications for electronic devices in various industries, such as wearable technology, IoT sensors, and medical implants. Rechargeable thin film batteries play a crucial role in powering these devices, enabling innovation in form factors and functionalities. Moreover the need to fit batteries into increasingly smaller spaces drives innovation in battery technology. Manufacturers of rechargeable thin film batteries are pushed to improve energy density, charging speed, and durability to meet the demands of miniaturized devices, leading to advancements that benefit the entire market.
Lower energy density compared to conventional batteries
Lower energy density means that rechargeable thin film batteries may not store as much energy per unit volume or weight compared to conventional batteries. This can result in shorter battery life and reduced performance in electronic devices, which may lead to dissatisfaction among consumers and reluctance to adopt thin film battery-powered products. For example, electric vehicles or large-scale energy storage systems may prefer conventional batteries with higher energy density to meet their power requirements effectively.
Booming wearable technology
Wearable devices such as smartwatches, fitness trackers, and medical monitoring devices rely heavily on compact and lightweight power sources. Rechargeable thin film batteries, with their flexible design and small form factor, are ideal for integration into these wearable gadgets. The growing popularity of wearable technology directly drives the demand for thin film batteries.
Lack of standardized manufacturing processes
Inconsistencies in manufacturing processes can lead to compatibility and interoperability issues, particularly in applications where multiple components need to work together seamlessly. Thus lack of standardization may hinder the integration of rechargeable thin film batteries into diverse electronic devices and systems, limiting their market reach and usability.
Covid-19 Impact
While initial disruptions in supply chains and manufacturing slowed production, the increased demand for electronics and medical devices during lockdowns subsequently drove market growth. Remote work and digitalization trends further boosted demand for portable devices powered by thin film batteries. However, economic uncertainties and supply chain challenges persisted, affecting market dynamics.
The ceramic batteries segment is expected to be the largest during the forecast period
The ceramic batteries segment is estimated to have a lucrative growth, depending on their specific characteristics and performance metrics, ceramic batteries and thin film batteries may cater to different segments within the rechargeable battery market. For example, thin film batteries might excel in applications requiring flexibility and lightweight design, while ceramic batteries might be preferred for high-energy-density applications.
The consumer electronics segment is expected to have the highest CAGR during the forecast period
The consumer electronics segment is anticipated to witness the highest CAGR growth during the forecast period, owing to the competitive nature of the consumer electronics market drives continuous innovation. Manufacturers are constantly seeking ways to improve device performance, including battery life and charging speed. Rechargeable thin film batteries offer advantages such as fast charging capabilities and high energy density, making them attractive options for integration into next-generation consumer electronics.
Asia Pacific is projected to hold the largest market share during the forecast period owing to the rising product demand, increased adoption of IoT devices, and rapidly expanding electronics device manufacturing industry in the region. Emerging countries, such as China, South Korea, Japan, and India, lead the regional market. The rise in the number of production facilities in these countries and growing application scope are further expected to fuel the market growth over the forecast period.
North America is projected to have the highest CAGR over the forecast period, owing to the region's strong presence in the electronics and semiconductor industries, coupled with increasing demand for compact and lightweight power sources, is fueling market expansion. Key players in the region are investing in research and development to enhance battery performance, increase energy density, and improve manufacturing processes, further driving market growth.
Key players in the market
Some of the key players in the Rechargeable Thin Film Battery Market include Blue Spark Technologies, BrightVolt, Cymbet, Enfucell Flexible Electronics LTD, Excellatron, Ilika Ltd., Imprint Energy, Intrinsiq Materials:, Ion Storage Systems, ITEN, ITN Energy Systems, Jenax Inc., Johnson Energy Storage, Inc., Molex, LLC, Neah Power Systems, Panasonic, Prieto Battery Inc, ProLogium and STMicroelectronics
In November 2024, Johnson Energy Storage Unveils Solid-State Batteries with Industry-Leading 5 Micron Separator. This technological leap, achieved through a proprietary low-cost manufacturing process, is a significant step towards more reliable and efficient energy storage solutions.
In January 2024, Johnson STEM Center Launches Creator Zone, the Zone is part of a wider effort to inspire more kids to pursue careers in technology, gaming, AR/VR, and media while also addressing representation across STEM career paths.
In May 2024, STMicroelectronics reveals automotive-grade inertial modules for cost-effective functional-safety applications up to ASIL B. This IMU is pin-to-pin compatible and shares the same configuration of registers as ST's automotive IMUs with a lower operating temperature ranges, permitting a seamless upgrade.