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Product Code BW091100648EKT
Published Date 2024/1/4
English200 PagesGlobal

Global Lithium-ion Battery Binders Market Size study & Forecast, by Type (Anode Binders, Cathode Binders), By Material (Polyvinylidene fluoride, Carboxymethyl cellulose, Polymethyl Methacrylate, Styrene Butadiene Copolymer, Others), By Battery Chemistry (Lithium iron phosphate, Lithium nickel manganese cobalt, Lithium titanate oxide, Others), By End-use (Automotive, Consumer Electronics, Industrial, Energy Storage, Others) and Regional Analysis, 2022-2029Materials_Chemicals Market


Report Thumbnail
Product Code BW091100648EKT◆The Jan 2026 edition is also likely available. We will check with the publisher immediately.
Published Date 2024/1/4
English 200 PagesGlobal

Global Lithium-ion Battery Binders Market Size study & Forecast, by Type (Anode Binders, Cathode Binders), By Material (Polyvinylidene fluoride, Carboxymethyl cellulose, Polymethyl Methacrylate, Styrene Butadiene Copolymer, Others), By Battery Chemistry (Lithium iron phosphate, Lithium nickel manganese cobalt, Lithium titanate oxide, Others), By End-use (Automotive, Consumer Electronics, Industrial, Energy Storage, Others) and Regional Analysis, 2022-2029Materials_Chemicals Market



Abstract


Summary

Global Lithium-ion Battery Binders Market is valued at approximately USD 1.3 Billion in 2021 and is anticipated to grow with a healthy growth rate of more than 18.7% over the forecast period 2022-2029. Lithium-ion battery binders are materials used in the production of lithium-ion batteries to hold the active materials in place and provide structural stability to the battery. They are typically polymers that are added to the electrode mixture to bind the active materials, such as lithium cobalt oxide or lithium iron phosphate, together. Lithium-ion battery binders play a critical role in the production of high-performance and reliable lithium-ion batteries, which are used in a wide range of applications. The market demand is primarily driven by the factors such as the increasing demand and production of electric vehicles, the growing consumer electronics industry, and the rising development of energy storage systems. In addition, the increasing emergence of the usage of electric vehicles and the rapidly growing consumer electronics market are acting as major driving factors for market growth. According to the International Energy Agency, electric vehicle (EV) sales more than quadrupled from the previous year in 2021, reaching a new record of 6.6 million. This brings the global total of electric vehicles on the road to almost 16.5 million. Similarly, according to Statista, the consumer electronics market reached USD 1,112 Billion in 2022 from USD 1,035 Billion in 2021. Hence, the potentially emerging electric vehicles industry and consumer electronics are expected to escalate the demand for lithium-ion battery binders in the global market. Furthermore, the rising developments to the increased energy density of lithium-ion batteries and increasing adoption of electric vehicle transportation due to pollution are presenting lucrative opportunities for market growth over the forthcoming years. However, concerns over the safety of lithium-ion battery’s usage in different climatic conditions are restricting the market growth over the forecast period of 2022-2029. The key regions considered for the Global Lithium-ion Battery Binders Market study include Asia Pacific, North America, Europe, Latin America, and Rest of the World. Asia Pacific dominated the market in terms of revenue due to the enormous demand for electric vehicles due to rising liquid fuel and gas prices. Whereas, Europe is also expected to grow at the highest growth rate over the forecasting period due to growing developments in the EV industry. Factors such as the rising developments of electric public transport vehicles by governments, growing incorporation of lithium-ion batteries in data centers, and increasing demand for electric vehicles among the mass and growing usage in various end-use industries are burgeoning the market growth in the forecasting years. Major market players included in this report are: Arkema Zeon Corporation ENEOS Corporation Solvay LG Chem Ashland Global Holdings Inc. DuPont de Nemours, Inc. Kureha Corporation JSR Corporation BASF SE Recent Developments in the Market:  In June 2022, BASF SE, a European multinational chemical producer company, announced the launch its new Anode binder Licity 2698 X F extending its series of Licity anode binders for Li-ion battery manufacturing. The new Anode binder comes equipped with second-generation styrene-butadiene rubber (SBR) binder with outstanding stress-strain capabilities and elasticity and is highly suitable for SiOx and Si-rich anodes. The new Licity 2698 X F Anode Binder has a higher energy density, a greater number of charge/discharge cycles and quicker charging times.  In June 2021, Arkema, a multinational specialty chemicals and advanced materials company, announced the launch of its new breakthrough variety of sustainable PVDF grades for lithium-ion batteries. With the launch of the new Kynar PVDF range, according to a mass balance technique, new grades will claim 100% renewable attributable carbon obtained from crude tall oil bio-feedstock. The innovative technology reduces the climate change effect of the Kynar PVDF binder by nearly 20% while lowering reliance on upstream crude oil use. The crude tall oil used in upstream feedstock production is a byproduct of the Kraft process of producing wood pulp. Global Lithium-ion Battery Binders Market Report Scope: Historical Data 2019-2020-2021 Base Year for Estimation 2021 Forecast period 2022-2029 Report Coverage Revenue forecast, Company Ranking, Competitive Landscape, Growth factors, and Trends Segments Covered Type, Material, Battery Chemistry, End-use, Region Regional Scope North America; Europe; Asia Pacific; Latin America; Rest of the World Customization Scope Free report customization (equivalent up to 8 analyst’s working hours) with purchase. Addition or alteration to country, regional & segment scope* The objective of the study is to define market sizes of different segments & countries in recent years and to forecast the values to the coming years. The report is designed to incorporate both qualitative and quantitative aspects of the industry within countries involved in the study. The report also caters detailed information about the crucial aspects such as driving factors & challenges which will define the future growth of the market. Additionally, it also incorporates potential opportunities in micro markets for stakeholders to invest along with the detailed analysis of competitive landscape and product offerings of key players. The detailed segments and sub-segment of the market are explained below: By Type: Anode Binders Cathode Binders By Material: Polyvinylidene fluoride Carboxymethyl cellulose Polymethyl Methacrylate Styrene Butadiene Copolymer Others By Battery Chemistry: Lithium iron phosphate Lithium nickel manganese cobalt Lithium titanate oxide Others By End-use: Automotive Consumer electronics Industrial Energy Storage Others By Region: North America U.S. Canada Europe UK Germany France Spain Italy ROE Asia Pacific China India Japan Australia South Korea RoAPAC Latin America Brazil Mexico ROLA Rest of the World

Table of Contents

  • 1 Executive Summary

    • 1.1 Market Snapshot
    • 1.2 Global & Segmental Market Estimates & Forecasts, 2019-2029 (USD Billion)
      • 1.2.1 Lithium-ion Battery Binders Market, by Region, 2019-2029 (USD Billion)
      • 1.2.2 Lithium-ion Battery Binders Market, by Type, 2019-2029 (USD Billion)
      • 1.2.3 Lithium-ion Battery Binders Market, by Material, 2019-2029 (USD Billion)
      • 1.2.4 Lithium-ion Battery Binders Market, by Battery Chemistry, 2019-2029 (USD Billion)
      • 1.2.5 Lithium-ion Battery Binders Market, by End-use, 2019-2029 (USD Billion)
    • 1.3 Key Trends
    • 1.4 Estimation Methodology
    • 1.5 Research Assumption
  • 2 Global Lithium-ion Battery Binders Market Definition and Scope

    • 2.1 Objective of the Study
    • 2.2 Market Definition & Scope
      • 2.2.1 Scope of the Study
      • 2.2.2 Industry Evolution
    • 2.3 Years Considered for the Study
    • 2.4 Currency Conversion Rates
  • 3 Global Lithium-ion Battery Binders Market Dynamics

    • 3.1 Lithium-ion Battery Binders Market Impact Analysis (2019-2029)
      • 3.1.1 Market Drivers
        • 3.1.1.1 Increasing demand and production of electric vehicles
        • 3.1.1.2 Growing consumer electronics industry
        • 3.1.1.3 Rising development of energy storage systems
      • 3.1.2 Market Challenges
        • 3.1.2.1 Concerns over the safety of lithium-ion batteries
      • 3.1.3 Market Opportunities
        • 3.1.3.1 Developments to increase energy density of lithium-ion batteries
        • 3.1.3.2 Increasing adoption of electric transportation due to pollution
  • 4 Global Lithium-ion Battery Binders Market Industry Analysis

    • 4.1 Porter’s 5 Force Model
      • 4.1.1 Bargaining Power of Suppliers
      • 4.1.2 Bargaining Power of Buyers
      • 4.1.3 Threat of New Entrants
      • 4.1.4 Threat of Substitutes
      • 4.1.5 Competitive Rivalry
    • 4.2 Futuristic Approach to Porter’s 5 Force Model (2019-2029)
    • 4.3 PEST Analysis
      • 4.3.1 Political
      • 4.3.2 Economical
      • 4.3.3 Social
      • 4.3.4 Technological
    • 4.4 Top investment opportunity
    • 4.5 Top winning strategies
    • 4.6 Industry Experts Prospective
    • 4.7 Analyst Recommendation & Conclusion
  • 5 Risk Assessment: COVID-19 Impact

    • 5.1 Assessment of the overall impact of COVID-19 on the industry
    • 5.2 Pre COVID-19 and post COVID-19 Market scenario
  • 6 Global Lithium-ion Battery Binders Market, by Type

    • 6.1 Market Snapshot
    • 6.2 Global Lithium-ion Battery Binders Market by Type, Performance - Potential Analysis
    • 6.3 Global Lithium-ion Battery Binders Market Estimates & Forecasts by Type 2019-2029 (USD Billion)
    • 6.4 Lithium-ion Battery Binders Market, Sub Segment Analysis
      • 6.4.1 Anode Binders
      • 6.4.2 Cathode Binders
  • 7 Global Lithium-ion Battery Binders Market, by Material

    • 7.1 Market Snapshot
    • 7.2 Global Lithium-ion Battery Binders Market by Material, Performance - Potential Analysis
    • 7.3 Global Lithium-ion Battery Binders Market Estimates & Forecasts by Material 2019-2029 (USD Billion)
    • 7.4 Lithium-ion Battery Binders Market, Sub Segment Analysis
      • 7.4.1 Polyvinylidene fluoride
      • 7.4.2 Carboxymethyl cellulose
      • 7.4.3 Polymethyl Methacrylate
      • 7.4.4 Styrene Butadiene Copolymer
      • 7.4.5 Others
  • 8 Global Lithium-ion Battery Binders Market, by Battery Chemistry

    • 8.1 Market Snapshot
    • 8.2 Global Lithium-ion Battery Binders Market by Battery Chemistry, Performance - Potential Analysis
    • 8.3 Global Lithium-ion Battery Binders Market Estimates & Forecasts by Battery Chemistry 2019-2029 (USD Billion)
    • 8.4 Lithium-ion Battery Binders Market, Sub Segment Analysis
      • 8.4.1 Lithium iron phosphate
      • 8.4.2 Lithium nickel manganese cobalt
      • 8.4.3 Lithium titanate oxide
      • 8.4.4 Others
  • 9 Global Lithium-ion Battery Binders Market, by End-use

    • 9.1 Market Snapshot
    • 9.2 Global Lithium-ion Battery Binders Market by End-use, Performance - Potential Analysis
    • 9.3 Global Lithium-ion Battery Binders Market Estimates & Forecasts by End-use 2019-2029 (USD Billion)
    • 9.4 Lithium-ion Battery Binders Market, Sub Segment Analysis
      • 9.4.1 Automotive
      • 9.4.2 Consumer electronics
      • 9.4.3 Industrial
      • 9.4.4 Energy Storage
      • 9.4.5 Others
  • 10 Global Lithium-ion Battery Binders Market, Regional Analysis

    • 10.1 Lithium-ion Battery Binders Market, Regional Market Snapshot
    • 10.2 North America Lithium-ion Battery Binders Market
      • 10.2.1 U.S. Lithium-ion Battery Binders Market
        • 10.2.1.1 Type breakdown estimates & forecasts, 2019-2029
        • 10.2.1.2 Material breakdown estimates & forecasts, 2019-2029
        • 10.2.1.3 Battery Chemistry breakdown estimates & forecasts, 2019-2029
        • 10.2.1.4 End-use breakdown estimates & forecasts, 2019-2029
      • 10.2.2 Canada Lithium-ion Battery Binders Market
    • 10.3 Europe Lithium-ion Battery Binders Market Snapshot
      • 10.3.1 U.K. Lithium-ion Battery Binders Market
      • 10.3.2 Germany Lithium-ion Battery Binders Market
      • 10.3.3 France Lithium-ion Battery Binders Market
      • 10.3.4 Spain Lithium-ion Battery Binders Market
      • 10.3.5 Italy Lithium-ion Battery Binders Market
      • 10.3.6 Rest of Europe Lithium-ion Battery Binders Market
    • 10.4 Asia-Pacific Lithium-ion Battery Binders Market Snapshot
      • 10.4.1 China Lithium-ion Battery Binders Market
      • 10.4.2 India Lithium-ion Battery Binders Market
      • 10.4.3 Japan Lithium-ion Battery Binders Market
      • 10.4.4 Australia Lithium-ion Battery Binders Market
      • 10.4.5 South Korea Lithium-ion Battery Binders Market
      • 10.4.6 Rest of Asia Pacific Lithium-ion Battery Binders Market
    • 10.5 Latin America Lithium-ion Battery Binders Market Snapshot
      • 10.5.1 Brazil Lithium-ion Battery Binders Market
      • 10.5.2 Mexico Lithium-ion Battery Binders Market
      • 10.5.3 Rest of Latin America Lithium-ion Battery Binders Market
    • 10.6 Rest of The World Lithium-ion Battery Binders Market
  • 11 Competitive Intelligence

    • 11.1 Top Market Strategies
    • 11.2 Company Profiles
      • 11.2.1 Arkema
        • 11.2.1.1 Key Information
        • 11.2.1.2 Overview
        • 11.2.1.3 Financial (Subject to Data Availability)
        • 11.2.1.4 Product Summary
        • 11.2.1.5 Recent Developments
      • 11.2.2 Zeon Corporation
      • 11.2.3 ENEOS Corporation
      • 11.2.4 Solvay
      • 11.2.5 LG Chem
      • 11.2.6 Ashland Global Holdings Inc
      • 11.2.7 DuPont de Nemours, Inc
      • 11.2.8 Kureha Corporation
      • 11.2.9 JSR Corporation
      • 11.2.10 BASF SE
  • 12 Research Process

    • 12.1 Research Process
      • 12.1.1 Data Mining
      • 12.1.2 Analysis
      • 12.1.3 Market Estimation
      • 12.1.4 Validation
      • 12.1.5 Publishing
    • 12.2 Research Attributes
    • 12.3 Research Assumption
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