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2085191

건설용 바이오 고분자 시장 : 폴리머 유형별, 형태별, 용도별, 최종 용도별, 유통 채널별 - 시장 예측(2026-2032년)

Bio-based Construction Polymers Market by Polymer Type, Form Type, Application, End Use, Distribution Channel - Global Forecast 2026-2032

발행일: | 리서치사: 구분자 360iResearch | 페이지 정보: 영문 193 Pages | 배송안내 : 1-2일 (영업일 기준)

    
    
    




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한글목차
영문목차

건설용 바이오 고분자 시장은 2032년까지 연평균 복합 성장률(CAGR) 10.64%로 321억 5,000만 달러에 달할 것으로 예측됩니다.

주요 시장 통계
기준 연도 : 2025년 158억 3,000만 달러
추정 연도 : 2026년 172억 4,000만 달러
예측 연도 : 2032년 321억 5,000만 달러
CAGR(%) 10.64%

바이오 건설용 고분자 시장 개요

바이오 건설용 고분자는 틈새 시장인 친환경 건축자재에서 저탄소 건설, 순환형 건축 시스템, 그리고 회복탄력성 있는 인프라를 위한 전략적 소재로 점차 전환되고 있습니다. 이러한 폴리머는 셀룰로오스, 리그닌, 전분, 식물성 기름, 당류 및 바이오 단량체와 같은 재생 가능한 바이오매스에서 전부 또는 일부가 유래하며, 단열 폼, 접착제, 실란트, 코팅, 바닥재, 복합재료, 막 및 적층 가공용 재료 등 폭넓은 분야에서 사용되고 있습니다.

바이오 건설용 고분자 시장의 획기적인 변화

내재 탄소 규제, 친환경 공공 조달, 그리고 검증 가능한 지속가능성 주장에 대한 수요가 증가함에 따라 경쟁 구도가 재편되고 있습니다. LEED, BREEAM, DGNB 및 각국의 저탄소 건축 이니셔티브와 같은 프로그램은 생애주기 평가(LCA), 환경 제품 선언(EPD), 제품 범주 규정을 통해 자재의 투명성을 촉진하고 있습니다. 이러한 변화로 인해, 건축물의 전체 수명 주기에 걸쳐 바이오 함유율, 탄소 발자국, 재활용 가능성, 실내 공기질 성능 및 내구성을 문서화할 수 있는 공급업체가 유리한 입장에 서게 되었습니다.

시장 개발에 대한 인공지능의 누적 영향

인공지능(AI)은 바이오 건설용 고분자에 실질적인 원동력이 되고 있습니다. 이는 배합 개발이 바이오매스 화학, 중합 거동, 첨가제와의 호환성, 기계적 특성, 경화 조건, 내습성, 규제상의 제약 등 수많은 변수의 균형에 좌우되기 때문입니다. AI를 활용한 재료 정보학은 재생 가능한 단량체의 선정, 고분자 성능 예측, 실험실에서의 반복 주기 단축에 도움이 되며, 상업적으로 실현 가능한 배합을 얻을 확률을 높여줍니다.

바이오 건설용 고분자 시장의 주요 지역별 분석

아시아태평양은 급속한 도시화, 인프라 확충, 대규모 건설 프로젝트가 바이오경제 개발에 대한 정부의 관심과 맞물려 높은 잠재력을 지닌 지역으로 평가받고 있습니다. 중국, 인도, 일본, 한국, 호주에서는 저탄소 건축, 재생 가능 자재, 산업의 탈탄소화에 대한 관심이 높아지고 있는 반면, 동남아시아 국가들에서는 농업 잔여물, 임업 자원, 바이오 정제소의 원료로부터 바이오매스를 확보할 수 있습니다. 각 지역의 우선 과제로는 에너지 효율이 높은 건축 외피, 저탄소 건축자재, 그리고 끊임없이 발전하는 지속가능성 기준을 충족할 수 있는 자재가 점점 더 중요시되고 있습니다.

바이오 건설용 고분자에 관한 주요 그룹 인사이트

아세안(ASEAN)은 건설 업계의 급속한 성장과 팜유, 설탕, 쌀, 임업 잔여물 등을 포함한 풍부한 농업 바이오매스가 결합되어, 바이오 건설용 고분자의 전략적 원료 및 생산 거점으로 부상하고 있습니다. 그린 빌딩 프로그램이 성숙해지고, 산업 정책이 고적층 가공를 지원하며, 지역 생산자들이 범용 소재에서 단열재, 도료, 접착제, 복합 소재 및 조립식 건축자재용 성능 중심 폴리머 시스템으로 전환함에 따라, 이러한 시스템의 채택이 확대되고 있습니다.

시장 수요를 좌우하는 주요 국가의 동향

미국은 첨단 소재 연구, 친환경 건축에 대한 수요, 그리고 ‘내재 탄소(제품에 내재된 탄소)’를 고려한 조달 프로그램의 확대에 힘입어 혁신을 주도하는 주요 시장으로 자리매김하고 있습니다. 캐나다는 친환경 건설 정책, 임업 자원, 그리고 목재 하이브리드 건축 시스템에 대한 높은 관심을 강점으로 삼고 있습니다. 멕시코는 북미 건설 공급망과의 제조 통합을 통해 그 역할을 확대하고 있는 반면, 브라질은 바이오 원료 분야에서 큰 우위를 점하고 있을 뿐만 아니라, 사탕수수 및 임업 기반의 밸류체인을 포함한 재생 가능 화학 분야에서 확고한 산업 경험을 보유하고 있습니다.

업계 리더를 위한 실천적인 제안

업계의 리더는 단순히 ‘바이오’이라는 주장에만 의존하지 말고, 성능이 입증된 지속가능성을 우선시해야 합니다. 건설 분야의 구매 담당자들은 내구성, 화재 시 거동, 배출량, 내습성, 구조적 적합성, 시공 성능 및 사용 수명에 관한 증거를 요구하고 있습니다. 환경제품선언(EPD), 제3자 인증 및 건축 기준을 준수한 시험 데이터를 제공하는 공급업체는 상업시설, 주택, 인프라 및 공공 조달 프로젝트에서 사양서에 채택될 가능성이 높아집니다.

조사 방법

본 요약본은 널리 인정받는 시장 조사 실무에 부합하는 체계적인 2차 조사 방식을 통해 작성되었습니다. 본 분석에서는 정부 정책 문서, 국제기구, 건설 분야의 지속가능성 프레임워크, 표준화 기관, 기술 문헌, 기업의 지속가능성 공시 정보, 그리고 업계에서 널리 인정받는 정보 출처에서 입수 가능한 공개 정보를 종합하고 있습니다.

결론

바이오 건설용 고분자는 저탄소이며 자원 효율이 높은 건축물로 전환하는 과정에서 중요한 소재 범주로 자리 잡고 있습니다. 이 시장의 잠재력은 내장 탄소 배출량 감축, 자재 투명성 제고, 원자재 다각화, 그리고 지속 가능한 건축자재에 대한 높아지는 기대에 부응하려는 전 세계적인 수요에 힘입어 뒷받침되고 있습니다.

자주 묻는 질문

  • 바이오 건설용 고분자 시장 규모는 어떻게 예측되나요?
  • 바이오 건설용 고분자의 주요 원료는 무엇인가요?
  • 바이오 건설용 고분자 시장에서 인공지능의 역할은 무엇인가요?
  • 아시아태평양 지역의 바이오 건설용 고분자 시장의 잠재력은 어떤가요?
  • 미국의 바이오 건설용 고분자 시장에서의 주요 동향은 무엇인가요?
  • 업계 리더에게 어떤 실천적인 제안이 있나요?

목차

제1장 서문

제2장 조사 방법

제3장 주요 요약

제4장 시장 개요

제5장 시장 인사이트

제6장 AI의 누적 영향, 2026년

제7장 건설용 바이오 고분자 시장 : 폴리머 유형별

제8장 건설용 바이오 고분자 시장 : 형태별

제9장 건설용 바이오 고분자 시장 : 용도별

제10장 건설용 바이오 고분자 시장 : 최종 용도별

제11장 건설용 바이오 고분자 시장 : 유통 채널별

제12장 건설용 바이오 고분자 시장 : 지역별

제13장 건설용 바이오 고분자 시장 : 그룹별

제14장 건설용 바이오 고분자 시장 : 국가별

제15장 경쟁 구도

제16장 기업 개요

LSH 26.07.20

The Bio-based Construction Polymers Market is projected to grow by USD 32.15 billion at a CAGR of 10.64% by 2032.

KEY MARKET STATISTICS
Base Year [2025] USD 15.83 billion
Estimated Year [2026] USD 17.24 billion
Forecast Year [2032] USD 32.15 billion
CAGR (%) 10.64%

Bio-Based Construction Polymers Market Introduction

Bio-based construction polymers are moving from niche green building materials to strategic inputs for low-carbon construction, circular building systems, and resilient infrastructure. These polymers are derived wholly or partly from renewable biomass such as cellulose, lignin, starch, plant oils, sugars, and bio-based monomers, and they are used across insulation foams, adhesives, sealants, coatings, flooring, composites, membranes, and additive manufacturing materials.

Demand is being shaped by two verified market realities: buildings and construction remain one of the world's largest sources of energy-related carbon emissions, and regulators are increasingly shifting attention from operational energy to embodied carbon. The UN Environment Programme has consistently identified the buildings and construction sector as a major contributor to global energy-related carbon dioxide emissions, making material substitution, product transparency, and lower-carbon feedstocks practical decarbonization levers.

For manufacturers, developers, architects, and public procurement agencies, bio-based construction polymers offer a pathway to reduce fossil feedstock dependency, support environmental product declarations, improve green building certification outcomes, and align with circular economy strategies. The strongest commercial opportunities are emerging where bio-based content, durability, fire performance, moisture resistance, code compliance, and cost competitiveness converge.

Transformative Shifts in the Bio-Based Construction Polymers Landscape

The competitive landscape is being reshaped by embodied carbon regulation, green public procurement, and rising demand for verifiable sustainability claims. Programs such as LEED, BREEAM, DGNB, and national low-carbon building initiatives are encouraging material transparency through life cycle assessment, environmental product declarations, and product category rules. This shift favors suppliers that can document bio-based content, carbon footprint, recyclability, indoor air quality performance, and durability over the full building life cycle.

Technology is also transforming the market. Advances in bio-based polyols for polyurethane foams, lignin-based resins, cellulose-reinforced composites, bio-based epoxy systems, and renewable acrylics are narrowing the historical performance gap with petrochemical polymers. At the same time, hybrid formulations are gaining traction because they allow producers to increase renewable content while maintaining mechanical strength, adhesion, thermal insulation, weatherability, and fire safety.

Supply-chain strategy has become equally important. Companies are securing renewable feedstocks through partnerships with agriculture, forestry, pulp and paper, and biorefinery operators. This is driving regionalized production models, where local biomass availability and waste-stream valorization can reduce feedstock volatility and support credible low-carbon construction material claims.

Cumulative Impact of Artificial Intelligence on Market Development

Artificial intelligence is becoming a practical accelerator for bio-based construction polymers because formulation development depends on balancing many variables, including biomass chemistry, polymerization behavior, additive compatibility, mechanical properties, curing conditions, moisture resistance, and regulatory constraints. AI-enabled materials informatics can help screen renewable monomers, predict polymer performance, and shorten laboratory iteration cycles, improving the probability of commercially viable formulations.

AI is also strengthening quality control and manufacturing efficiency. Machine vision, predictive maintenance, and advanced process control can reduce batch variability in bio-based resins, foams, coatings, and composites, which is critical because natural feedstocks often vary by season, geography, and processing route. For construction buyers, consistent performance data is essential for specification, warranty confidence, and building-code acceptance.

The cumulative impact of AI extends into life cycle assessment and design. Digital tools can compare embodied carbon, service life, replacement frequency, and end-of-life scenarios across material options, helping architects and engineers specify bio-based construction polymers where they deliver the strongest environmental and economic value. As product databases, EPD repositories, and building information modeling platforms become more interoperable, AI can improve transparency and accelerate adoption.

Key Regional Insights Across Bio-Based Construction Polymer Markets

Asia-Pacific is positioned as a high-potential region because rapid urbanization, infrastructure expansion, and large construction pipelines are converging with government interest in bioeconomy development. China, India, Japan, South Korea, and Australia are increasing attention on low-carbon buildings, renewable materials, and industrial decarbonization, while Southeast Asian economies offer biomass availability from agricultural residues, forestry resources, and biorefinery feedstocks. Regional priorities increasingly include energy-efficient building envelopes, lower-emission construction products, and materials that can comply with evolving sustainability standards.

North America benefits from strong innovation capacity, green building adoption, and policy momentum around lower-carbon materials. The United States is advancing federal and state-level embodied carbon initiatives, while Canada's clean growth policies and mass timber ecosystem support broader interest in bio-based building products. Mexico is increasingly relevant as a manufacturing and nearshoring hub for construction materials serving integrated North American supply chains, particularly where localized production can reduce logistics complexity and improve supply resilience.

Europe remains one of the most advanced regions for bio-based construction polymers due to the European Green Deal, circular economy policies, renovation targets, and mature building certification frameworks. Latin America offers feedstock advantages through forestry, sugarcane, soybean, and other agricultural value chains, with Brazil standing out for its bioeconomy potential and renewable chemistry capabilities. The Middle East is selectively adopting sustainable construction materials through mega-projects, green building codes, and energy-efficiency mandates, while Africa's long-term opportunity is tied to urban growth, affordable housing needs, climate-resilient construction, and localized biomass-based material production.

Key Group Insights for Bio-Based Construction Polymers

ASEAN is emerging as a strategic feedstock and manufacturing base for bio-based construction polymers because the region combines fast construction growth with abundant agricultural biomass, including palm, sugar, rice, and forestry residues. Adoption is strengthening as green building programs mature, industrial policy supports higher-value manufacturing, and regional producers move from commodity materials toward performance-based polymer systems for insulation, coatings, adhesives, composites, and prefabricated building components.

The GCC is creating demand through large-scale real estate, hospitality, infrastructure, and smart city projects that increasingly reference energy efficiency and sustainability standards. While the region has limited biomass availability compared with agricultural economies, its purchasing power, project scale, and interest in advanced building envelopes create opportunities for imported or locally compounded bio-based polymer solutions. Durable materials that perform under heat, ultraviolet exposure, sand abrasion, and demanding maintenance conditions are especially relevant for GCC construction programs.

The European Union is a policy-led demand center, supported by circular economy regulation, sustainable product disclosure, climate neutrality objectives, and growing scrutiny of embodied carbon in buildings. BRICS markets represent a dual opportunity: China and India provide large-scale construction demand, Brazil and Russia offer feedstock and resource advantages, and South Africa provides a gateway to African construction markets. G7 economies are important for technology commercialization, standards development, and high-value applications, while NATO members' infrastructure modernization, energy security priorities, and resilience spending can support demand for durable, lower-carbon construction materials.

Key Country Insights Shaping Market Demand

The United States is a leading innovation market, supported by advanced materials research, green building demand, and growing embodied carbon procurement programs. Canada benefits from clean construction policies, forestry resources, and strong interest in timber-hybrid building systems. Mexico's role is expanding through manufacturing integration with North American construction supply chains, while Brazil offers major bio-based feedstock advantages and established industrial experience in renewable chemistry, including sugarcane-linked and forestry-based value chains.

In Europe, the United Kingdom is prioritizing net-zero buildings, product transparency, and material efficiency, while Germany leads in chemical innovation, construction quality standards, and building performance requirements. France is notable for embodied carbon regulation in buildings, which has increased attention on low-carbon material declarations. Italy and Spain provide renovation-driven opportunities for coatings, adhesives, insulation, sealants, and flooring, supported by energy-efficiency upgrades across the building stock. Russia's market is shaped by domestic resource availability and construction modernization needs, although geopolitical and trade conditions affect technology access, certification pathways, and investment flows.

China is central to global construction material demand and is investing in low-carbon industrial systems, green buildings, and advanced manufacturing. India's rapid urbanization, infrastructure development, affordable housing priorities, and bioeconomy resources support long-term demand for cost-effective bio-based construction polymers. Japan and South Korea offer advanced materials capabilities, strict quality expectations, and strong interest in high-performance applications such as specialty coatings, engineered composites, adhesives, and insulation systems. Australia's sustainable building standards, infrastructure investment, and interest in low-carbon materials create opportunities for certified bio-based polymer products that can demonstrate durability in varied climatic conditions.

Actionable Recommendations for Industry Leaders

Industry leaders should prioritize performance-verified sustainability rather than relying on bio-based claims alone. Construction buyers require evidence on durability, fire behavior, emissions, moisture resistance, structural compatibility, installation performance, and service life. Suppliers that provide environmental product declarations, third-party certifications, and code-compliant test data will be better positioned for specification in commercial, residential, infrastructure, and public procurement projects.

Companies should build resilient feedstock strategies by diversifying biomass sources, qualifying regional suppliers, and using waste or residue streams where technically feasible. Partnerships with biorefineries, agricultural processors, pulp and paper operators, standards organizations, and universities can reduce development risk and improve access to scalable renewable chemistry. Clear chain-of-custody documentation is also essential for avoiding greenwashing concerns and strengthening customer confidence.

Executives should invest in AI-enabled formulation, digital life cycle assessment, and application-specific product development. The strongest near-term opportunities are likely to come from insulation, adhesives and sealants, coatings, composites, flooring, membranes, and prefabricated construction components where sustainability, performance, indoor air quality, and installation efficiency create measurable value for building owners and specifiers.

Research Methodology

This executive summary is developed using a structured secondary research approach aligned with recognized market intelligence practices. The analysis synthesizes publicly available information from government policy documents, international organizations, construction sustainability frameworks, standards bodies, technical literature, corporate sustainability disclosures, and recognized industry sources.

The research process emphasizes triangulation across policy signals, technology trends, regional construction activity, material innovation, and supply-chain developments. Particular attention is given to verified indicators such as building-sector decarbonization priorities, green procurement policies, life cycle assessment adoption, bioeconomy strategies, embodied carbon regulation, and the commercialization status of bio-based polymer technologies.

Insights are interpreted through an executive decision-making lens, focusing on demand drivers, regional competitiveness, technology readiness, regulatory momentum, and practical adoption barriers. The methodology avoids unsupported sizing or forecasting claims and prioritizes evidence-based conclusions relevant to manufacturers, investors, construction product specifiers, public agencies, and sustainability leaders.

Conclusion

Bio-based construction polymers are becoming an important material category in the transition to low-carbon, resource-efficient buildings. Their market potential is supported by the global need to reduce embodied carbon, improve material transparency, diversify feedstocks, and meet rising expectations for sustainable construction products.

The next phase of adoption will depend on proof of performance, scalable renewable feedstocks, competitive economics, and alignment with building codes, safety requirements, and procurement standards. Companies that combine material science, digital product validation, life cycle data, and regional supply-chain partnerships will be best positioned to address evolving demand.

As construction stakeholders move from voluntary sustainability commitments to measurable carbon reduction strategies, bio-based construction polymers are expected to play a larger role in insulation, coatings, adhesives, sealants, composites, membranes, flooring, and other high-impact building applications.

Table of Contents

1. Preface

  • 1.1. Objectives of the Study
  • 1.2. Market Definition
  • 1.3. Market Segmentation & Coverage
  • 1.4. Years Considered for the Study
  • 1.5. Currency Considered for the Study
  • 1.6. Language Considered for the Study
  • 1.7. Key Stakeholders

2. Research Methodology

  • 2.1. Introduction
  • 2.2. Research Design
    • 2.2.1. Primary Research
    • 2.2.2. Secondary Research
  • 2.3. Research Framework
    • 2.3.1. Qualitative Analysis
    • 2.3.2. Quantitative Analysis
  • 2.4. Market Size Estimation
    • 2.4.1. Top-Down Approach
    • 2.4.2. Bottom-Up Approach
  • 2.5. Data Triangulation
  • 2.6. Research Outcomes
  • 2.7. Research Assumptions
  • 2.8. Research Limitations

3. Executive Summary

  • 3.1. Introduction
  • 3.2. CXO Perspective
  • 3.3. Market Size & Growth Trends
  • 3.4. Market Share Analysis, 2025
  • 3.5. FPNV Positioning Matrix, 2025
  • 3.6. New Revenue Opportunities
  • 3.7. Next-Generation Business Models
  • 3.8. Industry Roadmap

4. Market Overview

  • 4.1. Introduction
  • 4.2. Industry Ecosystem & Value Chain Analysis
    • 4.2.1. Supply-Side Analysis
    • 4.2.2. Demand-Side Analysis
    • 4.2.3. Stakeholder Analysis
  • 4.3. Market Dynamics
    • 4.3.1. Key Drivers
    • 4.3.2. Key Restraints
    • 4.3.3. Key Opportunities
    • 4.3.4. Key Challenges
  • 4.4. Porter's Five Forces Analysis
  • 4.5. PESTLE Analysis
  • 4.6. Market Outlook
    • 4.6.1. Near-Term Market Outlook (0-2 Years)
    • 4.6.2. Medium-Term Market Outlook (3-5 Years)
    • 4.6.3. Long-Term Market Outlook (5-10 Years)
  • 4.7. Go-to-Market Strategy

5. Market Insights

  • 5.1. Consumer Insights & End-User Perspective
  • 5.2. Consumer Experience Benchmarking
  • 5.3. Opportunity Mapping
  • 5.4. Distribution Channel Analysis
  • 5.5. Pricing Trend Analysis
  • 5.6. Regulatory Compliance & Standards Framework
  • 5.7. ESG & Sustainability Analysis
  • 5.8. Disruption & Risk Scenarios
  • 5.9. Return on Investment & Cost-Benefit Analysis

6. Cumulative Impact of Artificial Intelligence 2026

7. Bio-based Construction Polymers Market, by Polymer Type

  • 7.1. Bio-Based Polyethylene (Bio-PE)
  • 7.2. Bio-Based Polypropylene
  • 7.3. Bio-Based Polyurethane
  • 7.4. Bio-Based Polyethylene Terephthalate

8. Bio-based Construction Polymers Market, by Form Type

  • 8.1. Granules
  • 8.2. Liquids
  • 8.3. Powders

9. Bio-based Construction Polymers Market, by Application

  • 9.1. Coatings & Adhesives
    • 9.1.1. Adhesives
    • 9.1.2. Coatings
    • 9.1.3. Sealants & Elastomers
  • 9.2. Composites
    • 9.2.1. Fiber Reinforced
    • 9.2.2. Laminates
    • 9.2.3. Particle Reinforced
  • 9.3. Films & Sheets
    • 9.3.1. Barrier Films
    • 9.3.2. Structural Sheets
  • 9.4. Insulation
    • 9.4.1. Boardstock
    • 9.4.2. Loose Fill
    • 9.4.3. Spray Foam

10. Bio-based Construction Polymers Market, by End Use

  • 10.1. Commercial
    • 10.1.1. Healthcare
    • 10.1.2. Office
    • 10.1.3. Retail
  • 10.2. Infrastructure
    • 10.2.1. Bridges
    • 10.2.2. Roadways
    • 10.2.3. Tunnels
  • 10.3. Residential
    • 10.3.1. New Construction
    • 10.3.2. Renovation

11. Bio-based Construction Polymers Market, by Distribution Channel

  • 11.1. Direct Sales
  • 11.2. Distributors
  • 11.3. E-commerce

12. Bio-based Construction Polymers Market, by Region

  • 12.1. Asia-Pacific
  • 12.2. North America
  • 12.3. Latin America
  • 12.4. Europe
  • 12.5. Middle East
  • 12.6. Africa

13. Bio-based Construction Polymers Market, by Group

  • 13.1. ASEAN
  • 13.2. GCC
  • 13.3. European Union
  • 13.4. BRICS
  • 13.5. G7
  • 13.6. NATO

14. Bio-based Construction Polymers Market, by Country

  • 14.1. United States
  • 14.2. Canada
  • 14.3. Mexico
  • 14.4. Brazil
  • 14.5. United Kingdom
  • 14.6. Germany
  • 14.7. France
  • 14.8. Russia
  • 14.9. Italy
  • 14.10. Spain
  • 14.11. China
  • 14.12. India
  • 14.13. Japan
  • 14.14. Australia
  • 14.15. South Korea

15. Competitive Landscape

  • 15.1. Market Concentration Analysis, 2025
    • 15.1.1. Concentration Ratio (CR)
    • 15.1.2. Herfindahl Hirschman Index (HHI)
  • 15.2. Recent Developments & Impact Analysis, 2025
  • 15.3. Product Portfolio Analysis, 2025
  • 15.4. Benchmarking Analysis, 2025

16. Company Profiles

  • 16.1. Arkema S.A.
  • 16.2. Ashland Global Holdings, Inc.
  • 16.3. Avient Corporation
  • 16.4. BASF SE
  • 16.5. BEWI ASA
  • 16.6. Bio-On S.p.A.
  • 16.7. Corbion N.V.
  • 16.8. Covestro AG
  • 16.9. DIC Corporation
  • 16.10. Dow Inc.
  • 16.11. DuPont de Nemours, Inc.
  • 16.12. Eastman Chemical Company
  • 16.13. Evonik Industries AG
  • 16.14. FKuR Kunststoff GmbH
  • 16.15. Green Dot Holding LLC
  • 16.16. Hiusan Biosciences Co., Ltd.
  • 16.17. Huntsman Corporation
  • 16.18. Kaneka Corporation
  • 16.19. Mitsubishi Chemical Group Corporation
  • 16.20. Novamont S.p.A.
  • 16.21. PolyOne Corporation
  • 16.22. Solvay S.A.
  • 16.23. Tate & Lyle PLC
  • 16.24. Trinseo PLC
  • 16.25. Wacker Chemie AG
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