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바이오미메틱 플라스틱 재료 시장 보고서 : 동향, 예측, 경쟁 분석(-2031년)

Biomimetic Plastic Material Market Report: Trends, Forecast and Competitive Analysis to 2031

발행일: | 리서치사: Lucintel | 페이지 정보: 영문 150 Pages | 배송안내 : 3일 (영업일 기준)

    
    
    




■ 보고서에 따라 최신 정보로 업데이트하여 보내드립니다. 배송일정은 문의해 주시기 바랍니다.

세계 바이오미메틱 플라스틱 재료 시장의 미래는 연구기관, 운송기관, 소비자 전자제품 시장에서 기회가 있는 유망한 시장으로 평가받고 있습니다. 바이오미메틱 플라스틱 재료 세계 시장은 2025년부터 2031년까지 5.8%의 CAGR로 2031년까지 약 112억 달러에 달할 것으로 예상됩니다. 이 시장의 주요 촉진요인은 크게 성장하고 있는 자동차 부문과 전자 산업의 수요 증가입니다.

  • Lucintel의 예측에 따르면, 유형별로는 환경에 대한 관심이 높아짐에 따라 생분해성 플라스틱이 예측 기간 동안 높은 성장세를 보일 것으로 예상됩니다.
  • 용도별로는 소비자용 전자제품이 가장 큰 부문을 차지할 것으로 보입니다.
  • 지역별로는 북미가 헬스케어 산업의 성장세 상승과 자동차 산업의 첨단 기술 채택 급증으로 인해 예측 기간 동안 가장 큰 지역으로 남을 것으로 보입니다.

바이오미메틱 플라스틱 재료 시장의 전략적 성장 기회

바이오미메틱 플라스틱의 새로운 용도는 빠르게 성장하는 두 시장에서 환경적 이점과 성능 효율성에 대한 요구에 따라 등장하고 있습니다. 이러한 추세 중 일부는 시장 기회일 뿐만 아니라 환경 및 기능적 요구 사항을 충족시키려는 분야 전반에 걸쳐 바이오미메틱 플라스틱의 적용 가능성이 확대되고 있음을 보여줍니다. 이 개요는 이 분야의 중요한 발전 전망과 잠재력을 밝힐 것입니다.

  • 문제 파악 현재 포장에는 재사용할 수 없는 재료로 만들어진 장치와 용기가 점점 더 많아지고 있습니다. 재활용, 생분해성, 생물학적 구조를 모방한 포장의 통합과 같은 새로운 특징을 도입함으로써 더 많은 변화가 예상됩니다. 특히 과잉 소비가 만연하고 지속가능성을 촉진하는 것이 중요한 기회로 떠오르고 있는 상황에서는 더욱 그렇습니다.
  • 건설 및 건축자재 : 현재 진행 중인 연구는 바이오플라스틱을 건설 및 건축자재에 통합하여 내구성, 단열성, 지속가능성에 기여하는 것을 목표로 하고 있습니다. 이러한 플라스틱은 현대 건축 요소에 적합한 지속가능한 건축 방식을 가능하게 하고, 건축 산업에서 큰 성장 가능성을 열어줄 것입니다.
  • 소비재 및 전자제품 소비재 및 전자제품 분야에서 바이오플라스틱은 생체 모방 설계를 통해 제품 가치를 높이고 기능성과 성능을 향상시킵니다. 생체 모방 기술을 디자인에 적용하면 내구성, 시각적 매력, 인체공학을 향상시킬 수 있습니다. 이는 점점 더 많은 첨단 소재가 시장 제품에 통합되어 성장의 기회가 될 것입니다.

이미지 및 표시되는 텍스트 셀과 같은 구성요소가 생체 모방 성장의 대상이 되고 있으며, 그 결과 포장, 자동차, 헬스케어, 구조물, 가정용 제품 산업에서 참신한 개발이 이루어지고 있습니다. 이러한 재료가 진화하고 다양한 분야에서 활용될수록 효율적이고 친환경적인 자원 활용이 촉진될 것입니다.

바이오미메틱 플라스틱 재료 시장 촉진요인 및 과제

바이오미메틱 플라스틱 재료 시장에는 기술 전환, 경제 상황, 정책적 특징 등 여러 가지 시장 촉진요인과 시장 억제요인이 존재합니다. 이러한 요인들은 모두 서로 영향을 주고받으며 바이오미메틱 플라스틱의 발명, 보급, 시장 잠재력에 영향을 미칩니다. 이러한 촉진요인과 시장 억제요인을 이해하는 것은 업계의 제약을 완화하고 도전에 대응하면서 성장 기회를 개발하는 데 중요합니다.

바이오미메틱 플라스틱 재료 시장을 이끄는 요인은 다음과 같습니다:

  • 기술 발전 : 기술 발전은 보다 효율적인 재료를 제공하기 때문에 생체 모방 플라스틱의 주요 촉진요인 중 하나입니다. 고분자 화학, 재료 과학, 제조 기술의 발전으로 생물학적 시스템을 재현하고 용도를 다양화할 수 있는 성능 향상 플라스틱이 개발되고 있습니다. 이러한 기술 혁신은 더 우수하고 친환경적인 소재에 대한 수요 증가에 대한 해결책을 제공합니다.
  • 환경 문제 : 바이오미메틱 플라스틱의 개발은 플라스틱 사용의 지속가능한 대안 모색에 영향을 받고 있습니다. 플라스틱 폐기물과 화석연료의 과도한 사용에 대한 우려가 커지면서 재생 가능한 자원에서 추출한 원료와 재활용 가능한 원료에 대한 요구가 증가하고 있습니다. 자연 분해를 염두에 두고 제조된 생체 모방 플라스틱은 규제 요건을 충족하면서 이러한 우려를 해소하는 것을 목표로 하고 있습니다.
  • 경제적 인센티브 : 바이오미메틱 플라스틱의 개발을 촉진하는 것은 정부의 자금 지원과 연구 기관에 대한 지원과 같은 경제적 인센티브입니다. 자금 지원은 신소재의 기술 혁신 속도를 가속화하고, 경쟁력을 강화하며, 기회로서 매력적일 수 있도록 합니다. 이러한 인센티브는 바이오미메틱 기술의 개발 및 보급을 통해 환자와 국민에게 혜택을 주고 시장 성장을 촉진할 수 있습니다.
  • 규제 지원 : 바이오미메틱 플라스틱의 발전에는 규제적 지원이 필수적입니다. 플라스틱 폐기물 오염을 관리하고 친환경 소재 사용을 장려하는 노력은 기술 혁신의 길을 열어줍니다. 성능과 지속가능성을 규정하는 규제와 정책은 이러한 플라스틱 사용에 대한 추가적인 동기를 부여하고, 환경 보호 정책을 실현하면서 시장 성장에 기여합니다.
  • 지속가능성에 대한 소비자 수요 : 친환경 제품에 대한 소비자의 지속적인 수요는 바이오미메틱 플라스틱 시장에 영향을 미칠 것입니다. 사회가 폐기물과 지속가능성에 대한 관심이 높아짐에 따라 소비자들은 친환경 소재에 투자하게 될 것입니다. 이러한 추세는 바이오미메틱 플라스틱에 대한 기술 혁신과 시장의 관심을 촉진하고 환경 친화적인 선호도로의 전환을 의미하며, 향후 시장의 향방을 좌우할 것으로 보입니다.

바이오미메틱 플라스틱 재료 시장의 과제는 다음과 같습니다:

  • 높은 생산비용 : 바이오미메틱 플라스틱의 발전은 꾸준히 진행되고 있지만, 높은 생산비용은 여전히 과제로 남아있습니다. 독자적인 플라스틱을 설계하고 대량 생산으로 전환하는 데는 많은 비용과 시간이 소요됩니다. 이러한 문제를 극복하면 바이오미메틱 플라스틱의 비용을 낮출 수 있는 기회가 생기고, 궁극적으로 시장에서의 경쟁이 치열해질 것입니다.
  • 제한된 재활용 인프라 : 바이오미메틱 플라스틱의 재활용 인프라가 제한적이라는 점은 바이오미메틱 플라스틱의 광범위한 보급에 대한 도전이 되고 있습니다. 이러한 재료의 소비 후 폐기물은 적절한 처리 기술과 공정이 필요합니다. 이러한 시스템의 신속한 개발과 도입은 바이오미메틱 플라스틱의 환경적 이점을 높이고 시장성에 긍정적인 영향을 미칠 수 있습니다.
  • 시장 수용성 : 바이오미메틱 플라스틱의 성능을 기존 소재와 비교하여 입증해야 하므로, 시장 수용이 과제입니다. 또한, 소비자들은 이러한 신소재가 기존 소재보다 우수하다는 증거를 볼 수 있어야 합니다. 이러한 장애물이 바이오미메틱 플라스틱 재료 시장의 성장 속도를 결정하게 될 것입니다.

본 보고서에서는 바이오미메틱 플라스틱 재료 시장에 영향을 미치는 시장 촉진요인 및 과제를 철저히 분석하여 다양한 요인들이 복잡하게 얽혀있음을 밝힙니다. 기술 개발, 환경 문제, 경제적 동기가 시장 발전의 원동력이 되는 반면, 높은 생산 비용, 불충분한 재활용 인프라, 시장 수용성 문제 등이 큰 걸림돌로 작용하고 있습니다. 바이오미메틱 플라스틱의 잠재력을 끌어내고 다양한 분야에서의 활용을 촉진하기 위해서는 이러한 요소들의 균형을 맞추는 것이 중요합니다.

목차

제1장 주요 요약

제2장 세계의 바이오미메틱 플라스틱 재료 시장 : 시장 역학

  • 소개, 배경, 분류
  • 공급망
  • 업계 성장 촉진요인과 과제

제3장 2019년부터 2031년까지 시장 동향과 예측 분석

  • 거시경제 동향(2019-2024년)과 예측(2025-2031년)
  • 세계의 바이오미메틱 플라스틱 재료 시장 동향(2019-2024년)과 예측(2025-2031년)
  • 유형별
    • 생분해성 플라스틱
    • 자가 치유 플라스틱
    • 기타
  • 용도별
    • 조사기관
    • 운송
    • 가전
    • 기타

제4장 2019년부터 2031년까지 지역별 시장 동향과 예측 분석

  • 지역별 : 세계의 바이오미메틱 플라스틱 재료 시장
  • 북미의 바이오미메틱 플라스틱 재료 시장
  • 유럽의 바이오미메틱 플라스틱 재료 시장
  • 아시아태평양의 바이오미메틱 플라스틱 재료 시장
  • 기타 지역의 바이오미메틱 플라스틱 재료 시장

제5장 경쟁 분석

  • 제품 포트폴리오 분석
  • 운영 통합
  • Porter's Five Forces 분석

제6장 성장 기회와 전략 분석

  • 성장 기회 분석
    • 유형별
    • 용도별
    • 지역별
  • 세계의 바이오미메틱 플라스틱 재료 시장 최신 동향
  • 전략 분석
    • 신제품 개발
    • 세계의 바이오미메틱 플라스틱 재료 시장 생산능력 확대
    • 세계의 바이오미메틱 플라스틱 재료 시장 합병, 인수, 합작투자
    • 인증과 라이선싱

제7장 주요 기업 개요

  • Parx Plastics
  • The University of Tokyo
  • The University of Southern Mississippi
  • University of Illinois
  • ESPCI
ksm 25.04.30

The future of the global biomimetic plastic material market looks promising with opportunities in the research institution, transportation, and consumer electronic markets. The global biomimetic plastic material market is expected to reach an estimated $11.2 billion by 2031 with a CAGR of 5.8% from 2025 to 2031. The major drivers for this market are the significantly growing automotive sector and rising demand from the electronic industry.

  • Lucintel forecasts that, within the type category, biodegradable plastic is expected to witness higher growth over the forecast period due to growing environmental concerns.
  • Within the application category, consumer electronics will remain the largest segment.
  • In terms of regions, North America will remain the largest region over the forecast period due to rising growth in the healthcare industry and surging adoption of advanced technology in the automotive industry.

Gain valuable insight for your business decision with our comprehensive 150+ page report.

Emerging Trends in the Biomimetic Plastic Material Market

The introduction of new biomimetic plastics signals a shift towards using materials that are more efficient, technologically proactive, and sustainable by drawing inspiration from nature. These trends are transforming the industry and changing approaches to designing, fabricating, and using materials. Understanding such trends allows us to explore how biomimetic plastics can address global challenges.

  • Sustainable Materials Development: Another trend identified in the study is the development of sustainable biomimetic materials. Specifically, this focuses on producing plastic materials that are home-compostable or made from bio-derived resins. This subfield creates new ways to integrate sustainable practices by mimicking nature's decomposition processes and using biocomposites. This trend aligns with growing awareness of environmental issues and the push for greener alternatives to conventional plastics.
  • Integration of Advanced Manufacturing Technologies: Emerging technologies like 3D printing and nanotechnology are transforming biomimetic plastics. These technologies enable the fabrication of complex shapes that mimic biological structures, enhancing material performance and utility. In addition, 3D printing allows for the creation of delicate, complex biomimetic designs, while nanotechnology enhances biomaterials, driving focused advancements across various fields.
  • Focus on High-Performance Materials: There is an increased focus on producing high-performance biomimetic plastics with desirable mechanical properties, such as flexibility and strength. Materials inspired by spider silk and bone are being synthesized to surpass traditional polymers. This focus is particularly relevant in applications such as aerospace, automotive, and sports, where superior materials contribute to technological advancements.
  • Biomimetic Plastics in Healthcare: The use of biomimetic plastics in healthcare continues to expand into areas like prosthetics, implants, and tissue engineering. Materials that mimic biological tissues improve compatibility and effectiveness, leading to better patient outcomes. This trend highlights how biomimetic plastics can address complex medical issues and the potential for further development in medical technology.
  • Circular Economy and Recycling: Biomimetic plastics align with circular economy principles, another notable trend. This approach involves developing materials that, at the end of their lifecycle, help reduce waste by eliminating the need for new materials and promoting recycling. Innovations like self-repairing components and easily disassembled parts make plastic materials more environmentally friendly and lessen the impact of mass production on nature.

Recent developments in biomimetic plastics demonstrate increased attention to sustainability, as well as advancements in material capability and manufacturing sophistication. With these trends, the biomimetic plastics industry is positively reengineering itself, addressing environmental challenges, enhancing material performance, and expanding their applications across various industries.

Recent Developments in the Biomimetic Plastic Material Market

There are impressive achievements in molecular biology related to the mentioned biomimetic plastic material. Innovations of this type influence and serve various applications and technologies in response to increasing concerns about functionalization and controllable plastic waste. Important developments and trends in this area are presented in five subsections, some of which have great potential importance.

  • Development of Biodegradable Plastics: This process is primarily based on apple-derived biomimetic biodegradable plastics that rely on biodegradation. Innovations include using biocomposite chitosan and polylactic acid, both of which mimic natural degradation processes. These improvements promote alternatives to conventional plastics in a bid to curb the problem of plastic waste.
  • Enhanced Mechanical Properties: Technological advancements have enabled biomimetic plastics with better mechanical properties than those currently available, such as those made from bone or spider silk. Very high strength, high flexibility, and high resiliency make these plastics suitable for tough applications in industries such as aerospace, automotive, and sports. The enhancement of mechanical properties through biomimetic design is a significant improvement in the field of materials.
  • Integration with 3D Printing: The development of biomimetic plastics alongside 3D printing technologies has made it possible to fabricate structures with unique and intricate geometries. This enables the manufacture of artificial materials controlled at the nanoscale to replicate body tissues, making them efficient in function. 3D printing also facilitates the manufacturing of complex shapes from biomimetic materials, thereby enhancing potential performance in various areas.
  • Bio-Inspired Coatings and Films: Progress in bio-inspired coatings and films has led to the construction of materials such as self-cleaning and anti-fogging surfaces. These coatings, based on lotus leaves, butterfly wings, and other phenomena, can be found on various products, including electronics and auto parts. They protect while also contributing to sustainability.
  • Development of Functional Biomimetic Composites: Their development involves mixing different materials to achieve desired characteristics. The emphasis is on enhancing the composite's performance and sustainability for use in construction, transportation, and consumer goods.

Recent advancements in biomimetic plastic materials have successfully addressed the challenges of reducing weight while increasing the sustainability of the solutions obtained. It has been claimed that the development of biodegradable plastics, functional elasticity, and other technologies for modifying biomimetic plastics will define the new generation of biomimics, addressing both ecological and functional aspects.

Strategic Growth Opportunities for Biomimetic Plastic Material Market

New applications for biomimetic plastics are emerging in response to the need for their environmental benefits and performance efficiency in two rapidly growing markets. Several of these trends represent not only market opportunities but also a case for the broader applicability of biomimetic plastics across sectors seeking to meet environmental and functional requirements. This overview highlights important developmental prospects and possibilities for the field.

  • Problem Identification: In present-day packaging, the number of devices and containers made from materials that cannot be reused is increasing. There is hope for further changes with the incorporation of new features like recycling, biodegradability, and integration of packaging that mimics biological structures. In essence, there is no self-sustaining culture or design until the first examples appear, especially in a context where overconsumption is prevalent and promoting sustainability is a significant opportunity.
  • Construction and Building Materials: Ongoing research aims to integrate bioplastics into construction and building materials, contributing to durability, insulation, and sustainability. These plastics enable more sustainable construction practices suited to modern building elements, opening great potential for growth in the building industry.
  • Consumer Goods and Electronics: In consumer goods and electronics, bioplastics enhance product value through biomimetic design, improving functionality and performance. The use of biomimicking techniques in designs shows promising improvements in durability, visual appeal, and ergonomics. This presents a growth opportunity as an increasing number of advanced materials are incorporated into market products.

Components such as images and displayed text cells are being targeted for biomimetic growth, resulting in novel developments in the packaging, automotive, healthcare, structural, and household product industries. As these materials evolve and are utilized in different sectors, they promote efficient and environmentally friendly use of resources.

Biomimetic Plastic Material Market Driver and Challenges

In the market for biomimetic plastic materials, several driving and market-inhibiting factors, such as technological transformation, economic conditions, and policy features, exist. These factors all interact with each other to affect the invention, diffusion, and market potential of biomimetic plastics. Understanding these driving and market inhibiting factors is important for relaxing constraints in the industry and exploiting growth opportunities while countering challenges.

The factors responsible for driving the biomimetic plastic material market include:

  • Technological Advancements: Technological advancements are among the main drivers of biomimetic plastics since they offer more efficient materials. Advances in polymer chemistry, materials science, and fabrication technologies result in the development of performance-enhancing plastics that can reproduce biological systems and diversify their use. Such innovations provide solutions to the increased demand for better and more eco-friendly materials.
  • Environmental Concerns: The development of biomimetic plastics is influenced by the quest for sustainable options in plastic usage. Growing concern regarding plastic waste and the overuse of fossil fuels has led to a search for raw materials that are either derived from renewable sources or can be recycled. Biomimetic plastics manufactured with natural degradation in mind aim to address these concerns while also meeting regulatory requirements.
  • Economic Incentives: Economic incentives, such as government funding and institutional research assistance, encourage the development of biomimetic plastics. Funding helps accelerate the pace of innovation in new materials, making them competitive and attractive for business opportunities. These incentives ensure that patients and the public will benefit from the development and uptake of biomimetic technologies, thus fostering market growth.
  • Regulatory Support: Regulatory support is critical in the advancement of biomimetic plastics. Efforts to manage plastic waste pollution and encourage the use of environmentally friendly materials create avenues for innovation. Regulations that dictate performance and sustainability provide further motivation for the use of these plastics, contributing to market growth while fulfilling conservation policies.
  • Consumer Demand for Sustainability: Sustained consumer demand for products with green claims affects the market for biomimetic plastics. As society becomes more concerned about waste and sustainability, consumers are incentivized to invest in environmentally friendly materials. This trend drives innovation and market interest in biomimetic plastics, indicating a shift towards greener preferences that will influence the future course of the market.

Challenges in the biomimetic plastic material market are:

  • High Production Costs: While progress in biomimetic plastics is steady, high production costs remain a challenge. Designing and moving to mass production of unique plastics can be costly and time-consuming. Overcoming these challenges would create opportunities to lower costs for biomimetic plastics, ultimately making them more competitive in the market, which is crucial for mass market adoption since price is a significant deciding factor.
  • Limited Recycling Infrastructure: Limited recycling infrastructure for biomimetic plastics poses a challenge to their broader adoption. Post-consumer waste sources of such materials require adequate treatment technologies and processes. Quickly developing and implementing these systems would enhance the environmental benefits of biomimetic plastics, positively impacting their marketability.
  • Market Acceptance: Market acceptance is a challenge, as biomimetic plastics must demonstrate their performance compared to existing materials. Public attitudes must evolve, and consumers need to see evidence that these new materials outperform traditional options. This hurdle will determine the pace at which the market for biomimetic plastics embraces growth.

The drivers and challenges affecting the biomimetic plastic materials market are thoroughly analyzed, revealing an intricate web of factors at play. Growth is driven by technological development, environmental issues, and economic motives, while high production costs, inadequate recycling infrastructure, and challenges in market acceptance represent significant bottlenecks. It is important to create a balance among these factors to harness the potential of biomimetic plastics and promote their use across different sectors.

List of Biomimetic Plastic Material Companies

Companies in the market compete on the basis of product quality offered. Major players in this market focus on expanding their manufacturing facilities, R&D investments, infrastructural development, and leverage integration opportunities across the value chain. Through these strategies biomimetic plastic material companies cater increasing demand, ensure competitive effectiveness, develop innovative products & technologies, reduce production costs, and expand their customer base. Some of the biomimetic plastic material companies profiled in this report include-

  • Parx Plastics
  • The University of Tokyo
  • The University of Southern Mississippi
  • University of Illinois
  • ESPCI

Biomimetic Plastic Material by Segment

The study includes a forecast for the global biomimetic plastic material market by type, application, and region.

Biomimetic Plastic Material Market by Type [Analysis by Value from 2019 to 2031]:

  • Biodegradable Plastic
  • Self-Healing Plastic
  • Others

Biomimetic Plastic Material Market by Application [Analysis by Value from 2019 to 2031]:

  • Research Institutions
  • Transportation
  • Consumer Electronics
  • Others

Biomimetic Plastic Material Market by Region [Analysis by Value from 2019 to 2031]:

  • North America
  • Europe
  • Asia Pacific
  • The Rest of the World

Country Wise Outlook for the Biomimetic Plastic Material Market

Biomimetic plastic materials that replicate nature's systems and processes have rapidly evolved worldwide. These advancements signify improvements in sustainability and efficiency across various sectors. Developments include new biodegradable materials and enhanced mechanical properties driven by increasing environmental awareness and technological progress. This survey provides insights into the demographic and technological development of different countries regarding recent biomimetic plastics.

  • United States: In the United States, advancements in biomimetic plastics include significant progress in biodegradability. For example, MIT has developed plastics that naturally degrade, helping to address waste issues. Companies such as BioLogiQ have created bio-based plastics by incorporating biopolymers to improve biodegradability. Additionally, 3D printing technology enables the production of complex and functional biomimetic structures, marking a new phase in material sustainability.
  • China: China has begun mass production of biomimetic plastics with biocomposite structures inspired by natural exoskeletons, shells, and similar forms. They have developed lightweight yet durable composites made from chitin to address plastic waste challenges. Other innovations appear in the packaging and automotive industries, where biomimetic plastics enhance performance.
  • Germany: Germany leads in the industrial application of biomimetic plastics. Recent developments include materials with mechanical properties inspired by natural structures for use in the aerospace and automotive industries. Germany is also implementing closed-loop approaches for biomimetic materials to increase recyclability, aligning with the country's sustainability goals. These advancements establish Germany as a frontrunner in sustainable material science.
  • India: India's strategy for biomimetic plastics focuses on utilizing locally available agricultural residue, such as rice husk and coconut shells, to produce cost-effective and environmentally friendly biomaterials. Various stakeholders in the polymer industry support biodegradable plastic production that is closer to natural forms than synthetic polymers, reducing plastic waste and resource scarcity. The focus is primarily on upscaling manufacturing technologies to produce these materials commercially, promoting economic growth while supporting environmental conservation.
  • Japan: Japan is at the forefront of synthesizing polymers from biomimics and applying nanotechnology. Among its innovations are ultra-lightweight, high-strength materials with molecular-level transformations. Recent developments also include biocompatible coatings that protect electronic devices and automotive parts, enhancing functionality and durability. Japan's high-tech focus and political commitment to environmental preservation highlight its leadership in advanced material science.

Features of the Global Biomimetic Plastic Material Market

Market Size Estimates: Biomimetic plastic material market size estimation in terms of value ($B).

Trend and Forecast Analysis: Market trends (2019 to 2024) and forecast (2025 to 2031) by various segments and regions.

Segmentation Analysis: Biomimetic plastic material market size by type, application, and region in terms of value ($B).

Regional Analysis: Biomimetic plastic material market breakdown by North America, Europe, Asia Pacific, and Rest of the World.

Growth Opportunities: Analysis of growth opportunities in different types, applications, and regions for the biomimetic plastic material market.

Strategic Analysis: This includes M&A, new product development, and competitive landscape of the biomimetic plastic material market.

Analysis of competitive intensity of the industry based on Porter's Five Forces model.

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This report answers following 11 key questions:

  • Q.1. What are some of the most promising, high-growth opportunities for the biomimetic plastic material market by type (biodegradable plastic, self-healing plastic, and others), application (research institutions, transportation, consumer electronics, and others), and region (North America, Europe, Asia Pacific, and the Rest of the World)?
  • Q.2. Which segments will grow at a faster pace and why?
  • Q.3. Which region will grow at a faster pace and why?
  • Q.4. What are the key factors affecting market dynamics? What are the key challenges and business risks in this market?
  • Q.5. What are the business risks and competitive threats in this market?
  • Q.6. What are the emerging trends in this market and the reasons behind them?
  • Q.7. What are some of the changing demands of customers in the market?
  • Q.8. What are the new developments in the market? Which companies are leading these developments?
  • Q.9. Who are the major players in this market? What strategic initiatives are key players pursuing for business growth?
  • Q.10. What are some of the competing products in this market and how big of a threat do they pose for loss of market share by material or product substitution?
  • Q.11. What M&A activity has occurred in the last 5 years and what has its impact been on the industry?

Table of Contents

1. Executive Summary

2. Global Biomimetic Plastic Material Market : Market Dynamics

  • 2.1: Introduction, Background, and Classifications
  • 2.2: Supply Chain
  • 2.3: Industry Drivers and Challenges

3. Market Trends and Forecast Analysis from 2019 to 2031

  • 3.1. Macroeconomic Trends (2019-2024) and Forecast (2025-2031)
  • 3.2. Global Biomimetic Plastic Material Market Trends (2019-2024) and Forecast (2025-2031)
  • 3.3: Global Biomimetic Plastic Material Market by Type
    • 3.3.1: Biodegradable Plastic
    • 3.3.2: Self-Healing Plastic
    • 3.3.3: Others
  • 3.4: Global Biomimetic Plastic Material Market by Application
    • 3.4.1: Research Institutions
    • 3.4.2: Transportation
    • 3.4.3: Consumer Electronics
    • 3.4.4: Others

4. Market Trends and Forecast Analysis by Region from 2019 to 2031

  • 4.1: Global Biomimetic Plastic Material Market by Region
  • 4.2: North American Biomimetic Plastic Material Market
    • 4.2.1: North American Market by Type: Biodegradable Plastic, Self-Healing Plastic, and Others
    • 4.2.2: North American Market by Application: Research Institutions, Transportation, Consumer Electronics, and Others
  • 4.3: European Biomimetic Plastic Material Market
    • 4.3.1: European Market by Type: Biodegradable Plastic, Self-Healing Plastic, and Others
    • 4.3.2: European Market by Application: Research Institutions, Transportation, Consumer Electronics, and Others
  • 4.4: APAC Biomimetic Plastic Material Market
    • 4.4.1: APAC Market by Type: Biodegradable Plastic, Self-Healing Plastic, and Others
    • 4.4.2: APAC Market by Application: Research Institutions, Transportation, Consumer Electronics, and Others
  • 4.5: ROW Biomimetic Plastic Material Market
    • 4.5.1: ROW Market by Type: Biodegradable Plastic, Self-Healing Plastic, and Others
    • 4.5.2: ROW Market by Application: Research Institutions, Transportation, Consumer Electronics, and Others

5. Competitor Analysis

  • 5.1: Product Portfolio Analysis
  • 5.2: Operational Integration
  • 5.3: Porter's Five Forces Analysis

6. Growth Opportunities and Strategic Analysis

  • 6.1: Growth Opportunity Analysis
    • 6.1.1: Growth Opportunities for the Global Biomimetic Plastic Material Market by Type
    • 6.1.2: Growth Opportunities for the Global Biomimetic Plastic Material Market by Application
    • 6.1.3: Growth Opportunities for the Global Biomimetic Plastic Material Market by Region
  • 6.2: Emerging Trends in the Global Biomimetic Plastic Material Market
  • 6.3: Strategic Analysis
    • 6.3.1: New Product Development
    • 6.3.2: Capacity Expansion of the Global Biomimetic Plastic Material Market
    • 6.3.3: Mergers, Acquisitions, and Joint Ventures in the Global Biomimetic Plastic Material Market
    • 6.3.4: Certification and Licensing

7. Company Profiles of Leading Players

  • 7.1: Parx Plastics
  • 7.2: The University of Tokyo
  • 7.3: The University of Southern Mississippi
  • 7.4: University of Illinois
  • 7.5: ESPCI
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