市场调查报告书
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到 2030 年电池电解市场预测:按电池类型、电解类型、应用和地区进行的全球分析Battery Electrolyte Market Forecasts to 2030 - Global Analysis by Battery Type Electrolyte Type, Application and By Geography |
根据Stratistics MRC预测,2024年全球电池电解市场规模将达106亿美元,预计2030年将达到304.3亿美元,预测期内复合年增长率为19.2%。
电池电解是一种化学介质,可促进电池正极和负极之间的离子流动,从而储存和释放电能。电解可以是液体、凝胶或固体,对于维持电池性能、效率和安全性至关重要。电解在充电和放电循环期间在电极之间传导离子,影响电池的能量密度、稳定性和寿命。先进的电解旨在增强电池性能,透过防止过热和洩漏来提高安全性,并支援电动车和可再生能源储存等应用的高性能电池的开发。
根据EV-Volumes预测,2023年全球电动车销量将达675万辆,较2023年成长108%。
电动车 (EV) 需求
电动车 (EV) 需求的不断增长将对市场产生重大影响,推动对可提高电池性能、安全性和寿命的先进电解的需求。随着电动车采用的增加,对高性能电解以提高能量密度、充电速度和整体电池效率的需求不断增加。这一趋势正在刺激电解液技术的创新和投资,支持市场成长。对电动车的关注也加速了新电解配方的开发,推动了市场成长。
昂贵的原料
昂贵的原材料可透过增加生产成本以及电池系统的价格来影响市场。这可能会限制市场成长,因为尤其是新兴企业和小型製造商可能难以购买高品质的电解质。成本上升也将影响先进电池的承受能力和采用率,包括电动车和可再生能源储存中使用的电池,从而阻碍市场成长。
政府法规和奖励
政府法规和奖励在塑造市场方面发挥着重要作用。电动车(EV)和可再生能源储存补贴等支持性政策将使这些技术在经济上更加可行,从而推动对先进电解的需求。强制执行更高性能和安全标准的法规也刺激了电解配方的创新。然而,严格的监管可能会增加合规成本并限制一些公司的市场准入。因此,它是市场成长的驱动力。
环境问题
某些电解的生产和处置可能会导致污染和危险废弃物,从而引发更严格的法规和合规成本。这些问题增加了电池製造的环境足迹,并可能限制某些材料的使用。随着法规变得更加严格,公司在开发环保替代品和管理废弃物面临更高的成本。因此,它阻碍了市场的成长。
COVID-19 大流行透过供应链中断、製造延误和原材料成本增加对电池电解液市场产生了影响。这些中断影响了电解的生产和可用性,导致电池製造暂时短缺和延误。然而,疫情也加速了电动车(EV)和可再生能源解决方案的采用,推动了对先进电池技术的需求。
预计固体电解质领域在预测期内将是最大的。
固体电解质预计在预测期内增长最快,因为它们提高了电池能量密度并实现更快的充电,同时降低了液体电解质的常见问题洩漏和热失控的风险。固体电解质的开发和采用将推动电池技术的创新,特别是电动车和先进能源储存系统的创新。
汽车业在预测期内的复合年增长率最高。
预计汽车产业在预测期内将呈现最高的复合年增长率,因为高性能电解质对于提高电池效率、安全性和寿命至关重要,而这对于电动车的性能和续航里程至关重要。电解质技术的进步有助于提高能量密度和充电速度。随着汽车产业不断扩张并优先考虑电气化,对专用电解的需求将会增加,从而刺激市场开拓和创新。
预计北美在预测期内将占据最大的市场占有率。这是因为电解配方的创新提高了电池的性能、安全性和耐用性,满足了对高效能、高性能电池不断增长的需求。这个市场直接影响电池成本,影响电动车和其他依赖电池的技术的可负担性和采用。此外,电解液的开发有助于满足严格的监管要求并提高消费者满意度。
由于亚太地区在提高电池性能和安全性方面的作用,预计在预测期内复合年增长率最高。随着电动车、消费性电子产品和可再生能源储存的快速成长,对高品质电解液的需求迅速增加。这种需求正在推动电解配方的创新,影响电池效率、寿命和整体性能。此外,中国、日本和韩国等国家製造能力的扩大正在支持地区成长。
According to Stratistics MRC, the Global Battery Electrolyte Market is accounted for $10.6 billion in 2024 and is expected to reach $30.43 billion by 2030 growing at a CAGR of 19.2% during the forecast period. Battery electrolyte is a chemical medium that facilitates the flow of ions between the positive and negative electrodes of a battery, enabling the storage and release of electrical energy. It can be in liquid, gel, or solid form and is essential for maintaining the battery's performance, efficiency, and safety. The electrolyte conducts ions between the electrodes during charge and discharge cycles, influencing the battery's energy density, stability, and longevity. Advanced electrolytes are designed to enhance battery performance, improve safety by preventing overheating or leakage, and support the development of high-performance batteries for applications such as electric vehicles and renewable energy storage.
According to EV-Volumes, global EV sales will reach 6.75 million units in 2023, up 108% from 2023.
Demand for Electric Vehicles (EVs)
The growing demand for electric vehicles (EVs) significantly impacts the market by driving the need for advanced electrolytes that enhance battery performance, safety, and longevity. As EV adoption rises, the demand for high-performance electrolytes increases to improve energy density, charging speed, and overall battery efficiency. This trend spurs innovation and investment in electrolyte technology, supporting market growth. The focus on EVs also accelerates the development of new electrolyte formulations, thus it boosts the growth of the market.
Expensive raw materials
Expensive raw materials impact the market by increasing production costs and, consequently, the prices of battery systems. This can limit market growth, especially for emerging companies and smaller manufacturers who may struggle to afford high-quality electrolytes. Higher costs can also affect the affordability and adoption rates of advanced batteries, including those used in electric vehicles and renewable energy storage, thus it hampers the growth of the market.
Government Regulations and Incentives
Government regulations and incentives play a significant role in shaping the market. Supportive policies, such as subsidies for electric vehicles (EVs) and renewable energy storage, drive demand for advanced electrolytes by making these technologies more financially viable. Regulations that enforce higher performance and safety standards also spur innovation in electrolyte formulations. However, stringent regulations can increase compliance costs and restrict market entry for some companies. Thus, it drives the growth of the market.
Environmental Concerns
The production and disposal of certain electrolytes can lead to pollution and hazardous waste, prompting stricter regulations and compliance costs. These concerns may increase the environmental footprint of battery manufacturing and limit the use of certain materials. As regulations become more stringent, companies face higher costs for developing eco-friendly alternatives and managing waste. Thus, it hinders the growth of the market.
The COVID-19 pandemic impacted the battery electrolyte market through supply chain disruptions, manufacturing delays, and increased costs of raw materials. These disruptions affected the production and availability of electrolytes, leading to temporary shortages and delays in battery manufacturing. However, the pandemic also accelerated the adoption of electric vehicles (EVs) and renewable energy solutions, driving demand for advanced battery technologies.
The solid electrolyte segment is expected to be the largest during the forecast period
The solid electrolyte segment is expected to be the largest during the forecast period because they enhance battery energy density and enable faster charging while reducing the risk of leaks and thermal runaway, which are common issues with liquid electrolytes. The development and adoption of solid electrolytes drive innovation in battery technology, particularly for electric vehicles and advanced energy storage systems.
The automotive segment is expected to have the highest CAGR during the forecast period
The automotive segment is expected to have the highest CAGR during the forecast period because high-performance electrolytes are crucial for enhancing battery efficiency, safety, and longevity, which are vital for EV performance and range. Advances in electrolyte technology drive improvements in energy density and charging speed. As the automotive sector continues to expand and prioritize electrification, the demand for specialized electrolytes grows, spurring market development and innovation.
North America is projected to hold the largest market share during the forecast period because innovations in electrolyte formulations enhance battery performance, safety, and durability, aligning with the increasing demand for efficient and high-performing batteries. This market directly impacts battery costs, affecting the affordability and adoption of EVs and other battery-dependent technologies. Moreover, developments in electrolytes help meet stringent regulatory requirements and improve consumer satisfaction.
Asia Pacific is projected to witness the highest CAGR over the forecast period due to its role in enhancing battery performance and safety. With rapid growth in electric vehicles, consumer electronics, and renewable energy storage, the demand for high-quality electrolytes has surged. This demand drives innovation in electrolyte formulations, impacting battery efficiency, longevity, and overall performance. Additionally, the expansion of manufacturing capabilities in countries like China, Japan, and South Korea supports regional growth.
Key players in the market
Some of the key players in Battery Electrolyte Market include 3M Company, American Elements, BASF SE, Central Glass Co., Ltd., CeramTec GmbH, Dongwha Electrolyte Co., Ltd., Fujifilm Wako Pure Chemical Corporation, Gelest, Inc., Gotion High-Tech Co., Ltd., GS Yuasa Corporation, Guangzhou Tinci Materials Technology Co., Ltd., Hitachi Chemical Co., Ltd., Johnson Matthey, LG Chem Ltd. , Mitsubishi Chemical Corporation, Ohara Corporation, Panax-Etec, Shanshan Energy Technology Co., Ltd., Shenzhen Capchem Technology Co., Ltd., Soulbrain Co., Ltd., Stella Chemifa Corporation, Targray Technology International Inc., Tosoh Corporation and Ube Industries, Ltd.
In August 2024, Hitachi and Gencurix, have entered a strategic partnership in the field of cancer molecular diagnostics. The Partnership aims to develop a testing service for the cancer molecular diagnostics by combining Hitachi High-Tech's core expertise in R&D and manufacturing of in vitro diagnostic products and digital technology.
In August 2024, Hitachi and Singtel Expanded Collaboration to Next-Generation Data Centers and GPU Cloud to Accelerate Enterprise Digital Transformation by AI Adoption.
In June 2024, Mitsubishi Chemical Group expands production of its Lithomax photosensitive polymers for semiconductor photoresists new facility at Kyushu-Fukuoka Plant to produce Lithomax for ArF and EUV photoresists.