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Global Biomaterials in Healthcare Market Analysis
- Published Date: December, 2022 | Report ID: CLS-1864 | No of pages: 225 | Format:
Global Biomaterials in Healthcare Market Executive Summary
In today's healthcare, biomaterials are crucial. They are utilized in medical applications to improve, replace, or support damaged tissue or a biological function. They can be natural or synthetic. A biomaterial can be made from materials such as metals, ceramics, plastic, polymers, and even biological cells and tissues. They have a wide range of uses, including in drug delivery systems, medical implants (such as heart valves, stents, grafts, artificial joints, ligaments, and tendons), and ways to assist the healing of human tissues (such as sutures and clips). The prevalence of cardiovascular disorders is on the rise, implantable device demand is increasing, and governmental and non-governmental organizations are providing more funding for the development of innovative biomaterials, all of which are contributing factors to the market growth for these materials.
Market Size and Key Findings
The Global Biomaterials in Healthcare Market size is around US $ xx Bn in 2021 and is projected to reach US $ xx Bn in 2030, exhibiting a CAGR of xx% during the forecast period.
Global Biomaterials in Healthcare Market Size (In $Bn)
(2021-2030F)
Market Dynamic
Market Growth Drivers Analysis
Over the past few years, biomaterials have become more in demand and used in a variety of medical applications. The development of innovative biomaterials is being supported by investments, funding, and grants from a number of government agencies and academic institutions. For instance, Drexel University awarded the National Science Foundation $200,000 in March 2018 to support research on the impact of macrophage behaviour control by biomaterials on biomaterial vascularization. Such research and funding initiatives should encourage the creation of novel biomaterials, opening up a wide range of potential for the market's expansion.
Market Restraints
Before any new biomaterials can be approved for marketing, it must be shown that it is both safe and effective. The FDA has established tight criteria and restrictions for the approval procedure in the US. Implantable pacemakers, stents, and heart valves are examples of biomaterial-based goods that are categorized by the FDA as Class III devices, which are those that carry the greatest risk of sickness or harm. As a result, the premarket approval application procedure is used for these products (the most stringent type of device marketing application).
Competitive Landscape
Key Players
Key players in the biomaterials market include BASF SE, Covestro AG, Celanese Corporation, Corbion, Royal DSM, Evonik Industries, Carpenter Technology Corporation, Berkeley Advanced Biomaterials, Cam Bioceramics B.V., CoorsTek Inc., CeramTec, and Gelita AG
TABLE OF CONTENT
1. Report Description of the Global Biomaterials in Healthcare Market
1.1 Research Scope and Assumption
1.2 Objective of the study
1.3 Research Methodology
1.4 Reason to buy the report
2. Global Biomaterials in Healthcare Market Executive Summary
2.1 Global Biomaterials in Healthcare Market – Industry Snapshot & key buying criteria, 2021-2030
2.2 Market Size, Growth Prospects, and Key findings
3. Market Dynamics of Global Biomaterials in Healthcare Market
3.1 Market Growth Drivers Analysis
3.2 Market Restrains Analysis
4. Global Biomaterials in Healthcare Market Segmentation
4.1 By Type
4.1.1 Metallic Biomaterials
4.1.1.1 Stainless Steel
4.1.1.2 Titanium & Titanium Alloys
4.1.1.3 Cobalt-Chrome Alloys
4.1.1.4 Gold
4.1.1.5 Silver
4.1.1.6 Magnesium
4.1.2 Polymeric Biomaterials
4.1.2.1 Polymethylmethacrylate
4.1.2.2 Polyethylene
4.1.2.3 Polyester
4.1.2.4 Silicone Rubber
4.1.2.5 Nylon
4.1.2.6 Polyetheretherketone
4.1.2.7 Other Polymeric Biomaterials
4.1.3 Ceramics
4.1.3.1 Calcium Phosphate
4.1.3.2 Zirconia
4.1.3.3 Aluminum Oxide
4.1.3.4 Calcium Sulfate
4.1.3.5 Carbon
4.1.3.6 Glass
4.1.4 Natural Biomaterials
4.1.4.1 Hyaluronic Acid
4.1.4.2 Collagen
4.1.4.3 Gelatin
4.1.4.4 Fibrin
4.1.4.5 Cellulose
4.1.4.6 Chitin
4.1.4.7 Alginates
4.1.4.8 Silk
4.2 By Application
4.2.1 Cardiovascular
4.2.1.1 Catheters
4.2.1.2 Stents
4.2.1.3 Implantable Cardiac Defibrillators
4.2.1.4 Pacemakers
4.2.1.5 Sensors
4.2.1.6 Heart Valves
4.2.1.7 Vascular Grafts
4.2.1.8 Guidewires
4.2.1.9 Others
4.2.2 Orthopedic
4.2.2.1 Orthopedic
4.2.2.1.1 Joint Replacement
4.2.2.1.2 Knee Replacement
4.2.2.1.3 Hip Replacement
4.2.2.1.4 Shoulder Replacement
4.2.2.1.5 Others
4.2.2.2 Viscosupplementation
4.2.2.3 Bioresorbable Tissue Fixation
4.2.2.3.1 Suture Anchors
4.2.2.3.2 Interference Screws
4.2.2.3.3 Meniscal Repair Tacks
4.2.2.3.4 Meshes
4.2.2.4 Spine
4.2.2.4.1 Spinal Fusion Surgeries
4.2.2.4.2 Minimally Invasive Fusion Surgeries
4.2.2.4.3 Motion Preservation & Dynamic Stabilization Surgeries
4.2.2.4.3.1 Pedicle-Based Rod Systems
4.2.2.4.3.2 Interspinous Spacers
4.2.2.4.3.3 Artificial Discs
4.2.2.4.4 Fracture Fixation Devices
4.2.2.4.4.1 Bone Plates
4.2.2.4.4.2 Screws
4.2.2.4.4.3 Pins
4.2.2.4.4.4 Rods
4.2.2.4.4.5 Wires
4.2.2.4.5 Synthetics Bone Grafts
4.2.3 Ophthalmology
4.2.3.1 Contact Lenses
4.2.3.2 Intraocular Lenses
4.2.3.3 Functional Replacement of Ocular Tissues
4.2.3.4 Synthetic Corneas
4.2.3.5 Others
4.2.4 Dental
4.2.4.1 Dental Implants
4.2.4.2 Dental Bone Grafts & Substitutes
4.2.4.3 Dental Membranes
4.2.4.4 Tissue Regeneration
4.2.5 Plastic Surgery
4.2.5.1 Soft-Tissue Fillers
4.2.5.2 Craniofacial Surgery
4.2.6 Wound Healing
4.2.6.1 Wound Closure Devices
4.2.6.1.1 Sutures
4.2.6.1.2 Staples
4.2.6.2 Surgical Hemostats
4.2.6.3 Internal Tissue Sealants
4.2.6.4 Adhesion Barriers
4.2.6.5 Hernia Meshes
4.2.7 Tissue Engineering
4.2.7.1 Scaffolds for Regenerative Medicine
4.2.7.2 Nanomaterials for Biosensing
4.2.7.3 Tailoring of Inorganic Nanoparticles
4.2.8 Neurological/Central Nervous System Applications
4.2.8.1 Shunting Systems
4.2.8.2 Cortical Neural Prosthetics
4.2.8.3 Hydrogel Scaffolds for CNS Repair
4.2.8.4 Neural Stem Cell Encapsulation
4.2.9 Other Applications
4.2.9.1 Drug Delivery Systems
4.2.9.2 Gastrointestinal Applications
4.2.9.3 Bariatric Surgery
4.2.9.4 Urinary Applications
5. Global Biomaterials in Healthcare Market Share
5.1 Market Analysis, Insights, and Forecast – By Revenue
6. Competitive Landscape
6.1 Major Top Market Players
7. Key Company Profiles
7.1 Company 1
7.1.1 Overview
7.1.2 Financial Performance
7.1.3 Product & Services
7.1.4 Strategic initiatives
7.2 Company 2
7.2.1 Overview
7.2.2 Financial Performance
7.2.3 Product & Services
7.2.4 Strategic initiatives
7.3 Company 3
7.3.1 Overview
7.3.2 Financial Performance
7.3.3 Product & Services
7.3.4 Strategic initiatives
7.4 Company 4
7.4.1 Overview
7.4.2 Financial Performance
7.4.3 Product & Services
7.4.4 Strategic initiatives
7.5 Company 5
7.5.1 Overview
7.5.2 Financial Performance
7.5.3 Product & Services
7.5.4 Strategic initiatives
8. Healthcare Policies and Regulatory Landscape
8.1 Healthcare Policies in Global
8.2 Regulatory Framework in Global
8.3 Pricing & Reimbursement Scenario in Global Biomaterials in Healthcare Market
9. Factors Driving Future Growth
9.1 New Trends and Development Global Biomaterials in Healthcare Market
9.2 Future Opportunities
10. Strategic Recommendations
Segmentation
Biomaterials in Healthcare Market Segmentation
By Type (Revenue, USD Billion):
Based on type, the market is segmented into Metallic Biomaterials, Polymeric Biomaterials, Ceramic Biomaterials, and Natural Biomaterials. The Metallic Biomaterials segment accounted for the largest share of the global market in 2019. The growing geriatric population globally is expected to drive growth for this segment.
- Metallic Biomaterials
- Stainless Steel
- Titanium & Titanium Alloys
- Cobalt-Chrome Alloys
- Gold
- Silver
- Magnesium
- Polymeric Biomaterials
- Polymethylmethacrylate
- Polyethylene
- Polyester
- Silicone Rubber
- Nylon
- Polyetheretherketone
- Other Polymeric Biomaterials
- Ceramics
- Calcium Phosphate
- Zirconia
- Aluminum Oxide
- Calcium Sulfate
- Carbon
- Glass
- Natural Biomaterials
- Hyaluronic Acid
- Collagen
- Gelatin
- Fibrin
- Cellulose
- Chitin
- Alginates
- Silk
By Application (Revenue, USD Billion):
The cardiovascular, orthopaedic, dental, plastic surgery, wound healing, tissue engineering, ophthalmology, neurological/CNS, and other applications segments are made up of the biomaterials market. The market category for wound healing is anticipated to have the highest CAGR in 2019. The market will increase as a result of factors including expanding healthcare infrastructure, a large population pool, a rising diabetic population, and rising healthcare spending. Surgical Guides
- Cardiovascular
- Catheters
- Stents
- Implantable Cardiac Defibrillators
- Pacemakers
- Sensors
- Heart Valves
- Vascular Grafts
- Guidewires
- Others
- Orthopedic
- Joint Replacement
- Knee Replacement
- Hip Replacement
- Shoulder Replacement
- Others
- Viscosupplementation
- Bioresorbable Tissue Fixation
- Spine
- Spinal Fusion Surgeries
- Minimally Invasive Fusion Surgeries
- Motion Preservation & Dynamic Stabilization Surgeries
- Pedicle-Based Rod Systems
- Interspinous Spacers
- Artificial Discs
- Fracture Fixation Devices
- Bone Plates
- Screws
- Pins
- Rods
- Wires
- Synthetics Bone Grafts
- Joint Replacement
- Ophthalmology
- Contact Lenses
- Intraocular Lenses
- Functional Replacement of Ocular Tissues
- Synthetic Corneas
- Others
- Contact Lenses
- Dental
- Dental Implants
- Dental Bone Grafts & Substitutes
- Dental Membranes
- Tissue Regeneration
- Plastic Surgery
- Soft-Tissue Fillers
- Craniofacial Surgery
- Wound Healing
- Wound Closure Devices
- Sutures
- Staples
- Surgical Hemostats
- Internal Tissue Sealants
- Adhesion Barriers
- Hernia Meshes
- Wound Closure Devices
- Tissue Engineering
- Scaffolds for Regenerative Medicine
- Nanomaterials for Biosensing
- Tailoring of Inorganic Nanoparticles
- Neurological/Central Nervous System Applications
- Shunting Systems
- Cortical Neural Prosthetics
- Hydrogel Scaffolds for CNS Repair
- Neural Stem Cell Encapsulation
- Other Applications
- Drug Delivery Systems
- Gastrointestinal Applications
- Bariatric Surgery
- Urinary Applications
Methodology
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