Product Code: CH 9282
The LIB cathode conductive auxiliary agents market is projected to reach USD 4.32 billion by 2029, at a CAGR of 19.1% from USD 1.80 billion in 2024.
Scope of the Report |
Years Considered for the Study | 2018-2029 |
Base Year | 2023 |
Forecast Period | 2024-2029 |
Units Considered | Value (USD Million/USD Billion), Volume (Tons) |
Segments | Product Type, Chemistry, Application and Region |
Regions covered | North America, Europe, Asia Pacific, Rest of the World |
Key drivers in the LIB cathode conductive auxiliary agents market include growing demands for advanced cathode materials and improvements in technological levels regarding cathode material development. Cathode materials will be among the decisive elements of the energy density, cycle life, and general performance of the LIB, hence are among the focus areas for innovations. With the growth of EVs, renewable energy storage, and consumer electronics, the requirement for high-capacity and high-efficiency LIBS has grown significantly, thereby driving the demand for advanced cathode materials. Improved cathode technologies, including high-nickel chemistries such as NMC (Nickel-Manganese-Cobalt) and NCA (Nickel- Cobalt-Aluminum), are providing batteries with greater energy density and longer life cycles. Such advancements require additional conducting agents, carbon tubes and carbon black, to augment the electrical conductivity of the cathode and to ensure a uniform charge distribution in high- energy applications such as electric vehicles (EVs). Besides, the development of lithium iron phosphate (LFP) cell electrodes, which are considered relatively safe and economically beneficial, is also creating demand for such conductive agents to improve their performance.
"Carbon Black, by product type, accounts for the largest market share in terms of volume in 2024."
The most significant product type in terms of volume is likely to be carbon black, because it is an established conducting agent that is both cost-effective and widely available. Carbon black, as a conductive additive, plays a crucial role in the enhancement of electrical conductivity of cathode materials by allowing efficient electron transport and thereby improving overall battery performance. Its high surface area and superior conductivity make it indispensable for achieving uniform charge distribution and reducing resistance in LIB cathodes. Its further advantage is the compatibility of carbon black with several cathode chemistries, NMC (Nickel-Manganese-Cobalt), NCA (Nickel-Cobalt-Aluminum), and LFP (Lithium Iron Phosphate). These are cathode materials widely applied in electric vehicles (EVs), in consumer electronics, as well as energy storage systems, who significantly receive conductivity enhancements from carbon black.
"Lithium Nickel Manganese Cobalt Oxide (NMC) by chemistry will be the fastest growing chemistry type in terms of value in 2024."
The fastest growth is expected to be NMC. The NMC is known for its balanced performance characteristics, featuring high energy density, thermal stability, and long cycle life, making it an attractive choice for an array of applications. Growth is mostly fostered by NMC that drives the greater utility in a comprehensive manner from electric vehicles to energy storage systems, including consumer electronics. Essential components needed are in the form of conductive auxiliary agents such as carbon black, carbon nanotubes (CNTs) used to increase the electrical conductivity in NMC cathodes to provide good charge transfer and better function. Advances in high power EV batteries and renewable energy storage solutions would, in turn, enhance and increase the utilization of advanced conductive agents compatible with the NMC chemistries.
"Automotive application will be the fastest growing in terms of volume in 2024."
The automotive sector is set to become the fastest-growing application for lithium-ion battery cathode conductive auxiliary agents, spurred by the global shift toward EVs. The global automakers are rapidly investing in EV production to meet the growing demand from consumers for emission-free mobility solutions, thus raising the demand for high-performance batteries. LIBs, characterized by greater energy density, efficiency, and longevity, are the favorite source for the storage of energy in an EV, and cathode conductive auxiliary agents find a crucial role in bringing the required performance level. Conductive agents such as carbon black, CNTs, and graphene are used in improving the electrical conductivity of the cathode materials, thus improving electron transfer, reducing resistance, and showing greater charge-discharge efficiency. These properties are necessary for EV batteries, which would need high energy output, rapid charging capabilities, and extended lifecycles for modern transportation requirements. As adoption of EV increases globally, the automotive application for LIB cathode conductive auxiliary agents is set to grow exponentially in regions like Asia-Pacific, Europe, and North America and will be cemented as an important driver for the battery material market.
"Based on region, North America will be the second largest market in 2024."
North America is expected to be the second biggest growth area for lithium-ion battery (LIB) cathode conductive auxiliary agents. Fast developments in both automotive and energy storage are going on there. Electric vehicle demand in North America has dramatically increased as of late due to government support and tight regulations against emission levels while providing incentives toward a greener source of transportation. Increased investment by major automobile producers in the US and Canada into production of EV and battery technologies supports the increased need for high-performance cathode materials as well as high-performance conductive auxiliary agents. Innovative research in new advanced battery material is strengthened across the region as a result of collaborations among academics, the industrial sector, and government bodies. Companies continue investing in improvement in battery performance as well as enhancing safety levels while promoting use of high-performance conducting agents. Furthermore, growing renewable energy projects in North America have increased the necessity for energy storage systems to maintain the balance of a grid. Optimized cathode conductive auxiliary agents in Lithium-ion batteries, such as carbon black, carbon nanotubes (CNTs), and graphene, are key components that meet these needs due to the superior energy density and long lifespan of Lithium-ion batteries.
In the process of determining and verifying the market size for several segments and subsegments identified through secondary research, extensive primary interviews were conducted. A breakdown of the profiles of the primary interviewees is as follows:
- By Company Type: Tier 1 - 50%, Tier 2 - 20%, and Tier 3 - 30%
- By Designation: Manger-Level - 30%, Director Level - 20%, and Others - 50%
- By Region: North America - 20%, Europe -20%, Asia Pacific - 40%, Middle East & Africa - 10%, and South America-10%
The key players in this market are Birla Carbon (India), Orion S.A. (Luxembourg), Cabot Corporation (US), Imerys (France), Denka Company Limited (Japan), LG Chem (South Korea), Resonac Holdings Corporation (Japan), BTR New Material Group Co., Ltd (China), ZEON CORPORATION (Japan), ADEKA CORPORATION (Japan), TORAY INDUSTRIES, INC. (Japan), Shenzhen Dynanonic Co., Ltd (China), LION SPECIALTY CHEMICALS CO., LTD. (Japan), TPR CO.,LTD. (Japan), among others.
Research Coverage
This report segments the market for the LIB cathode conductive auxiliary agents market on the basis of product type, chemistry, application and region. It provides estimations for the overall value of the market across various regions. A detailed analysis of key industry players has been conducted to provide insights into their business overviews, products & services, key strategies, new product launches, expansions, and deals associated with the market for the LIB cathode conductive auxiliar agents market.
Key benefits of buying this report
This research report is focused on various levels of analysis - industry analysis (industry trends), market ranking analysis of top players, and company profiles, which together provide an overall view of the competitive landscape, emerging and high-growth segments of the LIB cathode conductive auxiliar agents market; high-growth regions; and market drivers, restraints, opportunities, and challenges.
The report provides insights on the following pointers:
- Analysis of key drivers: The growing demand for cathodes is primarily driven by the rising adoption of lithium-ion batteries and continuous advancements in cathode materials drives the LIB cathode conductive auxiliary agents market
- Market Penetration: Comprehensive information on the LIB cathode conductive auxiliar agents market offered by top players in the global LIB cathode conductive auxiliar agents market.
- Product Development/Innovation: Detailed insights on upcoming technologies, research & development activities, and new product launches in the LIB cathode conductive auxiliary agents market.
- Market Development: Comprehensive information about lucrative emerging markets - the report analyzes the markets for the LIB cathode conductive auxiliar agents across regions.
- Market Diversification: Exhaustive information about new products, untapped regions, and recent developments in the global LIB cathode conductive auxiliary agents market.
- Competitive Assessment: In-depth assessment of market shares, strategies, products, and manufacturing capabilities of leading players in the LIB cathode conductive auxiliary agents market.
TABLE OF CONTENTS
1 INTRODUCTION
- 1.1 STUDY OBJECTIVES
- 1.2 MARKET DEFINITION
- 1.3 STUDY SCOPE
- 1.3.1 MARKETS COVERED AND REGIONAL SCOPE
- 1.3.2 YEARS CONSIDERED
- 1.3.3 INCLUSIONS AND EXCLUSIONS
- 1.3.4 CURRENCY CONSIDERED
- 1.3.5 UNITS CONSIDERED
- 1.4 LIMITATIONS
- 1.5 STAKEHOLDERS
2 RESEARCH METHODOLOGY
- 2.1 RESEARCH DATA
- 2.1.1 SECONDARY DATA
- 2.1.1.1 Key secondary sources
- 2.1.1.2 Key data from secondary sources
- 2.1.2 PRIMARY DATA
- 2.1.2.1 Key data from primary sources
- 2.1.2.2 Key primary sources
- 2.1.2.3 Key participants for primary interviews
- 2.1.2.4 Breakdown of primaries
- 2.1.2.5 Key industry insights
- 2.2 BASE NUMBER CALCULATION
- 2.2.1 SUPPLY-SIDE ANALYSIS
- 2.2.2 DEMAND-SIDE ANALYSIS
- 2.3 GROWTH FORECAST
- 2.3.1 SUPPLY SIDE
- 2.3.2 DEMAND SIDE
- 2.4 MARKET SIZE ESTIMATION
- 2.4.1 BOTTOM-UP APPROACH
- 2.4.2 TOP-DOWN APPROACH
- 2.5 DATA TRIANGULATION
- 2.6 RESEARCH ASSUMPTIONS
- 2.7 GROWTH FORECAST
- 2.8 RISK ASSESSMENT
- 2.9 FACTOR ANALYSIS
3 EXECUTIVE SUMMARY
4 PREMIUM INSIGHTS
- 4.1 ATTRACTIVE OPPORTUNITIES FOR PLAYERS IN LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET
- 4.2 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY PRODUCT TYPE
- 4.3 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY APPLICATION
- 4.4 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY COUNTRY
5 MARKET OVERVIEW
- 5.1 INTRODUCTION
- 5.2 MARKET DYNAMICS
- 5.2.1 DRIVERS
- 5.2.1.1 Increasing demand for lithium-ion batteries in end-use industries to fuel need for cathode conductive auxiliary agents
- 5.2.1.2 Improved electrical conductivity and safety
- 5.2.1.3 Advancements in cathode material technologies
- 5.2.2 RESTRAINTS
- 5.2.2.1 Regulatory requirements for managing toxic waste to increase cost of coatings
- 5.2.2.2 High prices of conductive agents such as CNT and graphene
- 5.2.3 OPPORTUNITIES
- 5.2.3.1 Government incentives and funding for green energy projects and EV adoption
- 5.2.3.2 Surge in cathode production capacity
- 5.2.4 CHALLENGES
- 5.2.4.1 Large concentration in Asian countries restricting global demand
- 5.3 GENERATIVE AI
- 5.3.1 INTRODUCTION
- 5.3.2 CHEMICAL COMPANIES EMBRACING AI ACROSS VARIOUS BUSINESS AREAS
- 5.3.3 USE OF GENERATIVE AI IN LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET
- 5.3.4 IMPACT OF GENERATIVE AI ON LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET
6 INDUSTRY TRENDS
- 6.1 INTRODUCTION
- 6.2 TRENDS/DISRUPTIONS IMPACTING CUSTOMER BUSINESS
- 6.3 SUPPLY CHAIN ANALYSIS
- 6.3.1 RAW MATERIAL SOURCING
- 6.3.2 PRODUCTION OF CATHODE CONDUCTIVE AGENTS
- 6.3.3 QUALITY CONTROL AND TESTING
- 6.3.4 SUPPLY & DISTRIBUTION
- 6.3.5 END USE
- 6.4 INVESTMENT AND FUNDING SCENARIO
- 6.5 PRICING ANALYSIS
- 6.5.1 AVERAGE SELLING PRICE TREND OF LIB CATHODE CONDUCTIVE AUXILIARY AGENTS, BY REGION, 2020-2023
- 6.5.2 AVERAGE SELLING PRICE TREND, BY PRODUCT TYPE, 2020-2023
- 6.5.3 AVERAGE SELLING PRICE TREND OF PRODUCT TYPE, BY KEY PLAYER, 2020-2023
- 6.6 ECOSYSTEM ANALYSIS
- 6.7 TECHNOLOGY ANALYSIS
- 6.7.1 KEY TECHNOLOGIES
- 6.7.2 COMPLEMENTARY TECHNOLOGIES
- 6.7.3 ADJACENT TECHNOLOGIES
- 6.8 PATENT ANALYSIS
- 6.8.1 METHODOLOGY
- 6.8.2 PATENTS GRANTED WORLDWIDE
- 6.8.3 PATENT PUBLICATION TRENDS
- 6.8.4 INSIGHTS
- 6.8.5 LEGAL STATUS OF PATENTS
- 6.8.6 JURISDICTION ANALYSIS
- 6.8.7 TOP COMPANIES/APPLICANTS
- 6.8.8 LIST OF MAJOR PATENTS
- 6.9 TRADE ANALYSIS
- 6.9.1 IMPORT SCENARIO (HS CODE 854519)
- 6.9.2 EXPORT SCENARIO (HS CODE 854519)
- 6.10 KEY CONFERENCES AND EVENTS, 2025
- 6.11 TARIFF AND REGULATORY LANDSCAPE
- 6.11.1 TARIFF AND REGULATIONS RELATED TO LIB CATHODE CONDUCTIVE AUXILIARY AGENTS
- 6.11.2 REGULATORY BODIES, GOVERNMENT AGENCIES, AND OTHER ORGANIZATIONS
- 6.11.3 REGULATIONS RELATED TO LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET
- 6.12 PORTER'S FIVE FORCES ANALYSIS
- 6.12.1 THREAT OF NEW ENTRANTS
- 6.12.2 THREAT OF SUBSTITUTES
- 6.12.3 BARGAINING POWER OF BUYERS
- 6.12.4 BARGAINING POWER OF SUPPLIERS
- 6.12.5 INTENSITY OF COMPETITIVE RIVALRY
- 6.13 KEY STAKEHOLDERS AND BUYING CRITERIA
- 6.13.1 KEY STAKEHOLDERS IN BUYING PROCESS
- 6.13.2 BUYING CRITERIA
- 6.14 MACROECONOMIC OUTLOOK
- 6.14.1 GDP TRENDS AND FORECASTS OF MAJOR ECONOMIES
- 6.15 CASE STUDY ANALYSIS
- 6.15.1 SN-DOPED CARBON BLACK AS AN ACTIVE CONDUCTIVE ADDITIVE FOR LITHIUM-ION BATTERIES
- 6.15.2 DIRECT RECYCLING FROM LITHIUM-ION BATTERY RECALL
- 6.15.3 INSIGHT INTO IMPACT OF CARBON NANOTUBES ON LI-ION CATHODE MATERIALS
7 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY PRODUCT TYPE
- 7.1 INTRODUCTION
- 7.2 CARBON BLACK
- 7.2.1 CAPABILITY TO FACILITATE ELECTRON TRANSFER AND REDUCE CONTACT RESISTANCE IN LITHIUM-ION BATTERIES TO DRIVE DEMAND
- 7.3 CARBON NANOTUBES
- 7.3.1 EXCEPTIONAL ELECTRICAL, THERMAL, AND MECHANICAL PROPERTIES TO FUEL DEMAND
- 7.4 OTHER PRODUCT TYPES
- 7.4.1 GRAPHENE
- 7.4.2 POROUS CARBON
- 7.4.3 CARBON NANOFIBERS
8 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY CHEMISTRY
- 8.1 INTRODUCTION
- 8.2 LITHIUM NICKEL MANGANESE COBALT OXIDE
- 8.2.1 EXCELLENT ENERGY DENSITY, STABILITY, AND VERSATILITY IN LITHIUM-ION BATTERIES TO PROPEL DEMAND
- 8.3 LITHIUM NICKEL COBALT ALUMINUM OXIDE
- 8.3.1 HIGH USE IN LITHIUM-ION BATTERIES OF EVS AND ENERGY STORAGE SYSTEMS TO DRIVE MARKET
- 8.4 LITHIUM IRON PHOSPHATE
- 8.4.1 HIGH SAFETY, DURABILITY, THERMAL STABILITY, AND LONG CYCLE LIFE TO FUEL DEMAND
- 8.5 LITHIUM MANGANESE OXIDE
- 8.5.1 EXCELLENT THERMAL STABILITY, SAFETY, AND HIGH-POWER PERFORMANCE TO DRIVE DEMAND
- 8.6 LITHIUM COBALT OXIDE
- 8.6.1 HIGH ENERGY DENSITY AND STABILITY, IDEAL FOR PORTABLE ELECTRONICS, TO BOOST DEMAND
- 8.7 APPLICATIONS AND TRENDS ASSOCIATED WITH CATHODE CONDUCTIVE AUXILIARY AGENTS
9 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY APPLICATION
- 9.1 INTRODUCTION
- 9.2 AUTOMOTIVE
- 9.2.1 ENHANCING EV BATTERY PERFORMANCE BY IMPROVING ELECTRON FLOW FOR FASTER CHARGING AND EXTENDED BATTERY LIFE
- 9.3 CONSUMER ELECTRONICS
- 9.3.1 ENHANCING BATTERY EFFICIENCY IN CONSUMER ELECTRONICS BY IMPROVING CONDUCTIVITY TO DRIVE MARKET
- 9.4 ENERGY STORAGE SYSTEMS
- 9.4.1 IMPROVING ELECTRON FLOW ENABLING FASTER CHARGE/DISCHARGE CYCLES AND LONGER BATTERY LIFE TO DRIVE MARKET
- 9.5 INDUSTRIAL
- 9.5.1 GROWING ADOPTION TO IMPROVE ENERGY EFFICIENCY AND POWER OUTPUT IN INDUSTRIAL APPLICATIONS TO DRIVE MARKET
- 9.6 OTHER APPLICATIONS
- 9.6.1 AEROSPACE & DEFENSE
- 9.6.2 MEDICAL DEVICES
10 LIB CATHODE CONDUCTIVE AUXILIARY AGENTS MARKET, BY REGION
- 10.1 INTRODUCTION
- 10.2 ASIA PACIFIC
- 10.2.1 CHINA
- 10.2.1.1 High cathode production and expanding cathode materials market to fuel market growth
- 10.2.2 JAPAN
- 10.2.2.1 Rising investments in cathode materials and battery technologies to drive market
- 10.2.3 INDIA
- 10.2.3.1 Rapidly expanding lithium-ion battery manufacturing sector and increasing demand for cathode materials to boost market
- 10.2.4 SOUTH KOREA
- 10.2.4.1 Booming EV and cathode material industries to drive market
- 10.2.5 REST OF ASIA PACIFIC
- 10.3 NORTH AMERICA
- 10.3.1 US
- 10.3.1.1 Growing use in EV and energy storage system applications to drive market
- 10.3.2 CANADA
- 10.3.2.1 High zero-emission vehicle adoption targets and expanding energy storage capacity to drive market
- 10.3.3 MEXICO
- 10.3.3.1 Rapid growth in EV production and rising demand for lithium-ion batteries in electronic device manufacturing to fuel market growth
- 10.4 EUROPE
- 10.4.1 GERMANY
- 10.4.1.1 Leadership in EV adoption and significant investments in battery production to fuel market growth
- 10.4.2 HUNGARY
- 10.4.2.1 Significant investments by global battery material manufacturers and increasing government support to drive market
- 10.4.3 POLAND
- 10.4.3.1 High investments in cathode agent production and rising lithium-ion battery production and export to fuel market growth
- 10.4.4 UK
- 10.4.4.1 Government-led investments in battery supply chain and shift toward EV adoption to fuel market growth
- 10.4.5 SWEDEN
- 10.4.5.1 Strong government support and increasing adoption of electric vehicles to drive market
- 10.4.6 REST OF EUROPE
- 10.5 ROW
- 10.5.1 BRAZIL
- 10.5.1.1 Increasing investments in battery and related material production projects to drive market
- 10.5.2 CHILE
- 10.5.2.1 Abundant lithium reserves and strategic investments in cathode production to fuel market growth
- 10.5.3 REST OF ROW
11 COMPETITIVE LANDSCAPE
- 11.1 INTRODUCTION
- 11.2 KEY PLAYER STRATEGIES/RIGHT TO WIN, 2021-2024
- 11.3 MARKET SHARE ANALYSIS, 2023
- 11.4 REVENUE ANALYSIS, 2020-2023
- 11.5 BRAND/PRODUCT COMPARISON
- 11.6 COMPANY EVALUATION MATRIX: KEY PLAYERS, 2023
- 11.6.1 STARS
- 11.6.2 EMERGING LEADERS
- 11.6.3 PERVASIVE PLAYERS
- 11.6.4 PARTICIPANTS
- 11.6.5 COMPANY FOOTPRINT: KEY PLAYERS, 2023
- 11.6.5.1 Company footprint
- 11.6.5.2 Region footprint
- 11.6.5.3 Product type footprint
- 11.6.5.4 Application footprint
- 11.7 COMPANY EVALUATION MATRIX: START-UPS/SMES, 2023
- 11.7.1 PROGRESSIVE COMPANIES
- 11.7.2 RESPONSIVE COMPANIES
- 11.7.3 DYNAMIC COMPANIES
- 11.7.4 STARTING BLOCKS
- 11.7.5 COMPETITIVE BENCHMARKING: START-UPS/SMES, 2023
- 11.7.5.1 Detailed list of key start-ups/SMEs
- 11.7.5.2 Competitive benchmarking of key start-ups/SMEs
- 11.8 COMPANY VALUATION AND FINANCIAL METRICS
- 11.9 COMPETITIVE SCENARIO
- 11.9.1 PRODUCT LAUNCHES
- 11.9.2 DEALS
- 11.9.3 EXPANSIONS
- 11.9.4 OTHER DEVELOPMENTS
12 COMPANY PROFILES
- 12.1 KEY PLAYERS
- 12.1.1 BIRLA CARBON
- 12.1.1.1 Business overview
- 12.1.1.2 Products/Solutions/Services offered
- 12.1.1.3 Recent developments
- 12.1.1.3.1 Deals
- 12.1.1.3.2 Expansions
- 12.1.1.3.3 Other developments
- 12.1.1.4 MnM view
- 12.1.1.4.1 Right to win
- 12.1.1.4.2 Strategic choices
- 12.1.1.4.3 Weaknesses and competitive threats
- 12.1.2 ORION S.A.
- 12.1.2.1 Business overview
- 12.1.2.2 Products/Solutions/Services offered
- 12.1.2.3 Recent developments
- 12.1.2.3.1 Product launches
- 12.1.2.3.2 Deals
- 12.1.2.3.3 Expansions
- 12.1.2.3.4 Other developments
- 12.1.2.4 MnM view
- 12.1.2.4.1 Right to win
- 12.1.2.4.2 Strategic choices
- 12.1.2.4.3 Weaknesses and competitive threats
- 12.1.3 CABOT CORPORATION
- 12.1.3.1 Business overview
- 12.1.3.2 Products/Solutions/Services offered
- 12.1.3.3 Recent developments
- 12.1.3.3.1 Product launches
- 12.1.3.3.2 Deals
- 12.1.3.3.3 Expansions
- 12.1.3.3.4 Other developments
- 12.1.3.4 MnM view
- 12.1.3.4.1 Right to win
- 12.1.3.4.2 Strategic choices
- 12.1.3.4.3 Weaknesses and competitive threats
- 12.1.4 IMERYS
- 12.1.4.1 Business overview
- 12.1.4.2 Products/Solutions/Services offered
- 12.1.4.3 Recent developments
- 12.1.4.3.1 Deals
- 12.1.4.3.2 Expansions
- 12.1.4.4 MnM view
- 12.1.4.4.1 Right to win
- 12.1.4.4.2 Strategic choices
- 12.1.4.4.3 Weaknesses and competitive threats
- 12.1.5 LG CHEM
- 12.1.5.1 Business overview
- 12.1.5.2 Products/Solutions/Services offered
- 12.1.5.3 Recent developments
- 12.1.5.3.1 Deals
- 12.1.5.3.2 Expansions
- 12.1.5.4 MnM view
- 12.1.5.4.1 Right to win
- 12.1.5.4.2 Strategic choices
- 12.1.5.4.3 Weaknesses and competitive threats
- 12.1.6 RESONAC HOLDINGS CORPORATION
- 12.1.6.1 Business overview
- 12.1.6.2 Products/Solutions/Services offered
- 12.1.6.3 Recent developments
- 12.1.6.4 MnM view
- 12.1.6.4.1 Right to win
- 12.1.6.4.2 Strategic choices
- 12.1.6.4.3 Weaknesses and competitive threats
- 12.1.7 BTR NEW MATERIAL GROUP CO., LTD.
- 12.1.7.1 Business overview
- 12.1.7.2 Products/Solutions/Services offered
- 12.1.7.3 Recent developments
- 12.1.7.3.1 Deals
- 12.1.7.3.2 Expansions
- 12.1.7.4 MnM view
- 12.1.7.4.1 Right to win
- 12.1.7.4.2 Strategic choices
- 12.1.7.4.3 Weaknesses and competitive threats
- 12.1.8 ZEON CORPORATION
- 12.1.8.1 Business overview
- 12.1.8.2 Products/Solutions/Services offered
- 12.1.8.3 Recent developments
- 12.1.8.3.1 Deals
- 12.1.8.3.2 Other developments
- 12.1.8.4 MnM view
- 12.1.8.4.1 Right to win
- 12.1.8.4.2 Strategic choices
- 12.1.8.4.3 Weaknesses and competitive threats
- 12.1.9 ADEKA CORPORATION
- 12.1.9.1 Business overview
- 12.1.9.2 Products/Solutions/Services offered
- 12.1.9.3 Recent developments
- 12.1.9.4 MnM view
- 12.1.9.4.1 Right to win
- 12.1.9.4.2 Strategic choices
- 12.1.9.4.3 Weaknesses and competitive threats
- 12.1.10 TORAY INDUSTRIES, INC.
- 12.1.10.1 Business overview
- 12.1.10.2 Products/Solutions/Services offered
- 12.1.10.3 Recent developments
- 12.1.10.3.1 Product launches
- 12.1.10.4 MnM view
- 12.1.10.4.1 Right to win
- 12.1.10.4.2 Strategic choices
- 12.1.10.4.3 Weaknesses and competitive threats
- 12.1.11 SHENZHEN DYNANONIC CO., LTD.
- 12.1.11.1 Business overview
- 12.1.11.2 Products/Solutions/Services offered
- 12.1.11.3 Recent developments
- 12.1.11.4 MnM view
- 12.1.11.4.1 Right to win
- 12.1.11.4.2 Strategic choices
- 12.1.11.4.3 Weaknesses and competitive threats
- 12.1.12 LION SPECIALTY CHEMICALS CO., LTD.
- 12.1.12.1 Business overview
- 12.1.12.2 Products/Solutions/Services offered
- 12.1.12.3 Recent developments
- 12.1.12.4 MnM view
- 12.1.12.4.1 Right to win
- 12.1.12.4.2 Strategic choices
- 12.1.12.4.3 Weaknesses and competitive threats
- 12.1.13 TPR CO., LTD.
- 12.1.13.1 Business overview
- 12.1.13.2 Products/Solutions/Services offered
- 12.1.13.3 MnM view
- 12.1.13.3.1 Right to win
- 12.1.13.3.2 Strategic choices
- 12.1.13.3.3 Weaknesses and competitive threats
- 12.1.14 DENKA COMPANY LIMITED
- 12.1.14.1 Business overview
- 12.1.14.2 Products/Solutions/Services offered
- 12.1.14.3 Recent developments
- 12.1.14.3.1 Deals
- 12.1.14.3.2 Other developments
- 12.1.14.4 MnM view
- 12.1.14.4.1 Right to win
- 12.1.14.4.2 Strategic choices
- 12.1.14.4.3 Weaknesses and competitive threats
- 12.2 OTHER PLAYERS
- 12.2.1 JIANGSU CNANO TECHNOLOGY CO., LTD.
- 12.2.2 SHENZHEN NANOPORT CO., LTD.
- 12.2.3 NORTHERN GRAPHITE
- 12.2.4 NANJING XFNANO MATERIALS TECH CO., LTD.
- 12.2.5 NANORH
- 12.2.6 OCSIAL
- 12.2.7 US RESEARCH NANOMATERIALS, INC.
- 12.2.8 NANOGRAFI
- 12.2.9 BEILUM CARBON CHEMICAL LIMITED
- 12.2.10 JIAOZUO HEXING CHEMICAL INDUSTRY CO., LTD.
- 12.2.11 CHEAP TUBES
- 12.2.12 CHASM
- 12.2.13 WUXI DONGHENG NEW ENERGY TECHNOLOGY CO., LTD.
- 12.2.14 SOLTEX
- 12.2.15 NOURYON
13 APPENDIX
- 13.1 DISCUSSION GUIDE
- 13.2 KNOWLEDGESTORE: MARKETSANDMARKETS' SUBSCRIPTION PORTAL
- 13.3 CUSTOMIZATION OPTIONS
- 13.4 RELATED REPORTS
- 13.5 AUTHOR DETAILS