시장보고서
상품코드
1967351

자기 치유 의료재료 : 시장과 기술(2026-2046년)

Medical Materials that Heal Themselves: Markets, Technology: 2026-2046

발행일: | 리서치사: Zhar Research | 페이지 정보: 영문 382 Pages | 배송안내 : 1-2일 (영업일 기준)

    
    
    



※ 본 상품은 영문 자료로 한글과 영문 목차에 불일치하는 내용이 있을 경우 영문을 우선합니다. 정확한 검토를 위해 영문 목차를 참고해주시기 바랍니다.

요약

자기 치유 재료는 의료 분야에서 매우 높은 수요와 폭넓은 응용 가능성으로 인해 가장 큰 잠재력을 가지고 있습니다. 그 적용 범위는 임플란트, 인공피부, 조직공학, 약물전달물질, 의료기기, 의료용 차량, 의료시설에 이르기까지 광범위합니다. 이들 소재는 20년 내에 200억 달러 이상 시장 규모에 도달할 것으로 예측됩니다.

다양한 손상 복구

대상 손상 유형에는 미생물 침해, 화학적 손상, 기계적 손상, 전기적 손상, 노화 등이 포함되며, 피트니스, 웰니스, 수의학, 웨어러블과 같은 인접 분야와도 관련이 있습니다.

자기 치유 소재의 메가트렌드

Zhar Research의 CEO인 Peter Harrop(Dr. Peter Harrop)은 다음과 같이 말했습니다. "자기 치유 재료의 활용은 임상적 효과와 비용 효율성을 모두 실현할 수 있습니다. 초기 단계에서는 독성 중간체를 대체하는 경우 등 프리미엄 가격 책정 기회를 제공합니다. 이후 많은 분야에서 표준 기술이 될 것이기 때문에 의료진과 공급업체는 이러한 추세를 적절히 반영해야 합니다. 또한 미래에는 환자의 수명과 삶의 질을 향상시킬 수 있는 자기복원형 바이오소재(ELM, Engineered Living Material)의 큰 잠재력도 존재합니다. "

캡션: 의료 분야 자가 치유 연구 재료의 우선순위 분석, 출처: Zhar Research 보고서 "Medical Materials that Heal Themselves: Markets, Technology: 2026-2046"

이 보고서는 자기 치유 의료재료 시장과 기술을 조사하여 SWOT 분석, 로드맵, 시장 예측, 기업 개요, 연구 파이프라인, 기업 구상 등을 정리했습니다.

목차

제1장 개요와 결론

  • 이 리포트의 목적·조사 방법·배경
  • 정의와 분석 대상(368개의 의료용 자기 치유 재료)
  • 34결론
  • 의료용 자기 치유 재료 기술의 성숙 곡선
  • 의료용 자기 치유 재료의 로드맵
  • 2026-2046년 시장 예측
    • 전체 용도의 자기 치유 재료 : 시장 규모
    • 의료용 자기 치유 재료 : 시장 규모
    • 의료용 자기 치유 재료 시장의 지역별 점유율(4 지역)
    • 하이드로겔 시장의 지역별 점유율(4 지역)
    • 세계의 하이드로겔 시장(4 분야)

제2장 서론

  • 정의·선택사항
  • 시장 성장 촉진요인·옵션
    • 자기 치유 스마트 재료에 대한 동향
    • 장수명·고신뢰성·정비 불요·회춘에 대한 동향
    • 생체 모방(바이오미메틱스) : 새로운 발전의 가능성
    • 유연 재료의 과제 극복
    • 생체 모방을 넘은 재료 설계
    • 시장 규모의 평가의 어려움
    • 치료 후 추가 시술을 최소화하는 방향으로의 확장
  • 자기 치유 재료에 관한 연구 사례의 분석

제3장 자기 치유 기술 툴키트 : 개요

  • 개요
  • 톱다운 기술 옵션 - 내재형 메커니즘과 외재형 메커니즘
  • 자기 치유 옵션 : 조작, 물리적, 화학적, 처방, 형식
  • 자기 치유와 자율적 자기 치유의 진보 : 폴리머와 세라믹
  • 자기 치유 재료를 위한 원자·분자 툴키트
  • 상업화가 전망되는 중요한 자기 치유 재료 : 용도별
  • 자기 치유 효과 지표의 딜레마
  • 자기 치유 폴리머 툴키트
  • 본질적 자기 치유 재료 툴키트
  • 마이크로캡슐에 의한 외재형 자기 치유
  • 혈관형 시스템에 의한 외재형 자기 치유
  • 혈관 유사 자기 치유
  • 자기 치유 엘라스토머(내재형 및 외재형)
  • 형상 기억 지원형 자기 치유(SMASH)

제4장 자기 치유 기술 툴키트 : 인공 생체 재료(ELM)

  • 개요
  • 자기 치유형 인공 생체 재료(ELM)의 SWOT 분석
  • 과제와 향후 방향성
  • 생체 재료를 이용한 자기 치유 어프로치
  • 바이오 ELM과 하이브리드 ELM의 비교
  • 자기 치유 ELM 하이드로겔
  • 관련 ELM 연구

제5장 의료용 자기 치유 재료의 응용

  • 개요 : 자기 치유형 의료재료의 토픽, 생체 재료, 비전
  • 의료용 자기 치유 재료의 응용에 관한 SWOT 평가·실제로 사용되고 있는 의료용 자기 치유 재료 예
  • 자기 치유 재료와 인체 자기 치유를 돕는 재료
    • 개요 : 기술의 진전과 동향(감각 기능, 전자 기능, 생체 적합성, 항균성, 오염 방지 등)
    • 하이드로겔 어프로치
    • 폴리이민 어프로치
    • 플루오로폴리머에 의한 감각 로봇
    • 실리콘 어프로치(e-skin, 실록산)
    • PVA, 유기 금속 폴리머 등 기타 어프로치
  • 조직공학, 세포공배양, 장기 이식
    • 조직공학 접착제
    • 조직공학 필름
    • 하이드로겔 어프로치
  • 인공근육, 연골, 의지, 소프트 로보틱스
    • PDMS 어프로치
    • 하이드로겔 방식(인공 생체 재료로서의 이용 및 SWOT 분석 포함)
    • 자기 치유 소프트 로보틱스(미국 육군·기타)
  • 뼈 수복과 치환
  • 티타늄 및 기타 임플란트
  • 마이크로캡슐과 하이드로겔에 의한 약물전달
  • 일렉트로닉스
    • 개요·건강 모니터링
    • 도체
    • 트랜지스터
    • 센서
    • 광학·포토닉스 재료
    • 자기 치유 전원 기술
    • 자기 치유 이식형 배터리 및 스마트 패치용 배터리 부품
    • 근육운동 모니터링 및 광열 요법으로 이용하는 자기 치유형 마찰대전 발전기

제6장 자기 치유 : 기업 개요

  • 개요·밸류체인
  • 자기 치유 재료 제조업체 62사 : 8항목에서의 비교
  • 관련 14사의 개요
KSA

Summary

Self-healing materials have the greatest potential in healthcare due to exceptionally strong needs and broad applicability. That spans implants, artificial skin, tissue engineering, drug delivery materials and much more, from instruments to healthcare vehicles and buildings. The new commercially-oriented Zhar Research report, "Medical Materials that Heal Themselves: Markets, Technology: 2026-2046" comprehensively covers all your opportunities. Self-healing materials and devices and their medical impact are the focus. Such materials will be a market of over $20 billion within 20 years.

Healing many types of damage

Types of damage to people and things that are addressed include microbial attack, chemical, mechanical, electrical and ageing. There is relevance to adjacent subjects such as fitness, wellness, veterinary and wearables. Uniquely comprehensive and up-to-date (continuous updating from 2026 onwards) it has 382 pages, six chapters, nine SWOT appraisals, roadmap and 17 forecast lines 2026-2046. Over 64 companies are covered. In particular, the strong research pipeline and company initiatives in 2025-6 are closely analysed to reveal winning materials, applications, issues and initiatives.

The self-healing megatrend

Dr Peter Harrop, CEO of analysts Zhar Research says, "Using self-healing materials enables both clinically-effective and cost-effective outcomes. Initially, they present opportunities for premium pricing, including where toxigen intermediaries are substituted. Then many will be a given, so practitioners and suppliers must correctly reflect these trends. Later, there is even wide potential for self-healing Engineered Living Materials extending patient longevity and quality of life."

Stand-alone summary and conclusions

The Executive Summary and Conclusions (54 pages) is sufficient in itself because it has the 34 key conclusions, SWOT appraisals, forecasts and roadmap 2026-2046 and many new graphics. The Introduction (31 pages) explains the definitions, choices, market drivers and options. See how components-in-a-box trend to self-healing, multifunctional materials, even structural electronics. Why the trend to long life, reliability, fit-and-forget and rejuvenation? Why has biomimetics got much further to go but we must overcome the soft material dilemma? In this chapter and the others, all is brought alive with analysed examples of research on self-healing materials in 2025-6.

Self-healing toolkit presents many opportunities

Chapter 3. "The Self-healing Technology Toolkit: General" is the longest chapter at 118 pages. It looks closely and intrinsic and extrinsic self-healing material mechanisms. Then it reveals your inanimate self-healing material opportunities - inorganic, organic and composite - explaining the flood of new research. What is winning and why? What problems are your opportunities? For example, it finds that self-healing in wet environments is very relevant but self-healing metals and building materials are more peripheral to the healthcare sector.

Chapter 4. "Self-healing Technology Toolkit: Engineered Living Materials ELM" is 36 pages. While nature-inspired non-living materials exhibit exceptional properties, they typically lack the dynamic functionalities of living systems, such as self-healing and environmental responsiveness. Here we see bacteria, algae and particularly funghi showing promise but the practical and regulatory challenges for healthcare application are formidable. First come novel structures and functionalities where the growth is killed before use. However, self-healing, living biobandages for wound healing are already a target.

Medical outcomes and paybacks

The report then swings from primarily discussing the self-healing toolkit to detailed examination of the applications emerging, with lessons from success and failure. Chapter 5. "Self-healing Material Applications in Healthcare 2026-2046" takes 102 pages to comprehensively appraise the dreams, prioritisation of applications and achievements including relevant research advances even into 2026. That includes your applications for self-healing subsystems such as membranes, e-skin and smart sensors, taking into consideration biocompatibility, sensory, electronic, anti-bacterial, anti-fouling and other aspects. Topics include tissue engineering, cell co-culture, organ replacement, artificial muscle, cartilage, prosthetics, soft robotics and drug delivery by self-healing microcapsules, hydrogels and other routes. To maximise your opportunities, the chapter ends with self-healing electronic and electrical components in healthcare including patches and even self-healing triboelectric nanogenerators for muscle motion monitoring and photothermal treatment.

Room for more suppliers

The report closes with 23 pages of Chapter 6 assessing actual and putative suppliers under, "Self-healing Company Profiles" with overview and value chain, comparison of 62 self-healing material manufacturers in eight columns and profiles of 14 companies involved. The report, "Medical Materials that Heal Themselves: Markets, Technology: 2026-2046" is your essential guide to this rapidly emerging market opportunity.

CAPTION: Healthcare self-healing research material priority analysis. Source Zhar Research report, "Medical Materials that Heal Themselves: Markets, Technology: 2026-2046".

Table of Contents

1. Executive summary and conclusions

  • 1.1 Purpose, methodology and background of this report
  • 1.2 Definitions and focus with analysis of 368 healthcare self-healing materials researched
  • 1.3 34 conclusions
    • 1.3.1 Addressable markets: 10 general conclusions, 3 infograms and 2 SWOT appraisals
    • 1.3.2 Emerging technologies and capabilities: 24 key conclusions, 6 infograms, compound prioritisation chart, 6 SWOT appraisals
    • 1.3.3 Self-healing Engineered Living Materials ELM with infograms and SWOT
    • 1.3.4 Market fundamentals in infograms, pie charts and commentary
  • 1.4 Maturity curves of self-healing material technologies in healthcare 2026, 2036, 2046
  • 1.5 Roadmap for self-healing materials in healthcare 2026-2046
  • 1.6 Market forecasts 2026-2046 in 17 lines
    • 1.6.1 Self-healing materials for all applications: value market 2026-2046
    • 1.6.2 Self-healing materials for healthcare value market $ billion 2026-2046
    • 1.6.3 Percentage share of self-healing healthcare value market by four regions 2026-2046
    • 1.6.4 Percentage share of hydrogel value market by four regions 2026-2046
    • 1.6.5 Global hydrogel value market by four business sectors 2026-2046

2. Introduction

  • 2.1 Definition and choices
  • 2.2 Market drivers and options
    • 2.2.1 Trend to self-healing smart materials
    • 2.2.2 Trend to long life, reliability, fit-and-forget, rejuvenation
    • 2.2.3 Biomimetics - much further to go
    • 2.2.4 Overcoming the soft material dilemma
    • 2.2.5 Beyond biomimetics
    • 2.2.6 Challenges of putting a value on the market
    • 2.2.7 Stretching the logic to include minimal post treatment
  • 2.3 Analysed examples of research on self-healing materials in 2025-6

3. The self-healing technology toolkit: general

  • 3.1 Overview
  • 3.2 Technology options top down - intrinsic and extrinsic mechanisms
  • 3.3 Self-healing options: operational, physical, chemical, formulation, format
  • 3.4 Autogeneous and autonomic self-healing advances in 2025-6: polymers and ceramics
  • 3.5 Atomic and molecular toolkit for self-healing materials
  • 3.6 Some of the important self-healing materials by application likely to be commercialised 2025-2045
  • 3.7 The dilemma of metrics for self-healing efficacy
    • 3.7.1 Quantifying healing time, maximum number of healing cycles enabled, degree of recovery
    • 3.7.2 Efficiency and mobility over time
  • 3.8 Self-healing polymer toolkit
    • 3.8.1 Types of polymer damage to be healed
    • 3.8.2 Healing options for polymers
    • 3.8.3 Difficulty levels for self-healing commercialisation in polymer sectors
  • 3.9 Toolkit for intrinsic self-healing materials
    • 3.9.1 Overview, importance of nanomaterials
    • 3.9.2 Hydrogels with SWOT appraisal, options for repairing structural damage, recovering original functions, mimicking natural healing, improvement 2025-2045
    • 3.9.3 Wound healing, tissue engineering, and nerve regeneration with biocompatible self-healing hydrogels: surge in research advances in 2025-6
    • 3.9.4 Sustained hydrogel delivery of decorin to prevent corneal scarring
    • 3.9.5 Wound-healing and injectable self-healing hydrogels: tissue engineering and regenerative medicine in 2025-6
    • 3.9.6 Ionogel self healing including 2025-6 research advances
    • 3.9.7 Silica gel
    • 3.9.8 Supramolecular gels and elastomers for implantable and smart patch energy storage in 2025-6
    • 3.9.9 Diels Alder self-healing adhesives, coatings including SWOT and latest research appraisal
    • 3.9.10 Self-healing ionomers for healthcare packaging and biomedical sensors
    • 3.9.11 Vitrimers with examples researched in 2026
    • 3.9.12 Self-healing proteins such as polypeptides
    • 3.9.13 Self-healing metals
    • 3.9.14 Self-healing under water
  • 3.10 Extrinsic self-healing by microcapsules
    • 3.10.1 SWOT appraisal
    • 3.10.2 Design issues and examples
    • 3.10.3 Self-healing microcapsule manufacturing options
  • 3.11 Extrinsic self-healing by vascular systems
    • 3.11.1 Vascular self-healing SWOT appraisal
    • 3.11.2 Geometrical design and challenges
  • 3.12 Vascular-like self-healing
  • 3.13 Self-healing elastomers intrinsic and extrinsic
  • 3.14 Shape memory assisted self-healing SMASH
    • 3.14.1 Shape memory alloys and polymers and SMASH potential markets
    • 3.14.2 Stress-Induced shape-shifting materials possessing autonomous self-healing and scratch-resistant ability
    • 3.14.3 Hydrogel versions
    • 3.14.4 Polyolefin and polyurethane versions
    • 3.14.5 Close-then-heal and fiber dispersion options

4. Self-healing technology toolkit: Engineered Living Materials ELM

  • 4.1 Overview
    • 4.1.1 Definition and choice of hosts
    • 4.1.2 Learning from nature
    • 4.1.3 Allied topic: assisting human healing by application of biological materials that may or may not be self-healing themselves
    • 4.1.4 Features of engineered living materials
    • 4.1.5 Four stages of ELM creation and deployment
  • 4.2 Self-healing Engineered Living Material SWOT appraisal
  • 4.3 Obstacles and the way forward
  • 4.4 Self-healing approaches with biological materials
  • 4.5 Bio ELM vs hybrid ELM
  • 4.6 Self-healing ELM hydrogels
  • 4.7 Relevant ELM research in 2025-6

5. Self-healing material applications in healthcare 2026-2046

  • 5.1 Overview: topics, biomaterials and vision of self-healing healthcare materials
  • 5.2 SWOT appraisal of self-healing material applications in healthcare and examples of medical self-healing materials in action in 2026
  • 5.3 Artificial human skin and muscle: self-healing materials and material that helps you to "self-heal"
    • 5.3.1 Overview: progress 2025-6, technology trends including sensory, electronic, biocompatibility, anti-bacterial, anti-fouling aspects
    • 5.3.2 Hydrogel approach
    • 5.3.3 Polyimine approach
    • 5.3.4 Fluoropolymer sensory robots
    • 5.3.5 Silicone approach: e-skin, siloxanes
    • 5.3.6 PVA, organometallic polymer and other approaches
  • 5.4 Tissue engineering, cell co-culture, organ replacement
    • 5.4.1 Objectives and progress in 2025-6
    • 5.4.2 Tissue engineering adhesives
    • 5.4.3 Tissue engineering films
    • 5.4.4 Hydrogel approaches
  • 5.5 Artificial muscle, cartilage, prosthetics and soft robotics
    • 5.5.1 Overview
    • 5.5.2 PDMS approach
    • 5.5.3 Hydrogel approaches including as engineered living materials and SWOT appraisal
    • 5.5.4 Self-healing soft robotics: US Army and others
  • 5.6 Bone repair and replacement
  • 5.7 Titanium and other implants
  • 5.8 Membranes
    • 5.8.1 Definitions
    • 5.8.2 Fabricated membranes
    • 5.8.3 Difficulty levels for self-healing membrane
  • 5.9 Drug delivery by microcapsules and hydrogels
  • 5.10 Electronics
    • 5.10.1 Overview and health monitoring
    • 5.10.2 Conductors
    • 5.10.3 Transistors
    • 5.10.4 Sensors
    • 5.10.5 Optical and photonic materials
    • 5.10.6 Self-healing implantable and smart patch batteries and battery parts including 2025-6 research advances
    • 5.10.7 Self-healing triboelectric nanogenerators for muscle motion monitoring and photothermal treatment

6. Self-healing company profiles

  • 6.1 Overview and value chain
  • 6.2 Comparison of 62 self-healing material manufacturers in eight columns
  • 6.3 Profiles of 14 companies involved
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