Structure, Degradation Behavior, and Applications of Poly(trimethylene carbonate) (PTMC) in Flexible Absorbable Materials
Structure, Degradation Behavior, and Applications of Poly(trimethylene carbonate) (PTMC) in Flexible Absorbable Materials
1 Key Considerations for Degradable Materials
In biomedical materials, “degradable” does not necessarily mean “suitable for implantation.” The fact that a material can degrade in vivo only indicates that it can be gradually broken down or absorbed. What truly determines its application value is how it degrades, what degradation products are generated, how its mechanical properties change during degradation, and whether it affects the local tissue environment.
Many common aliphatic polyesters, such as poly(lactic acid) (PLA), poly(glycolic acid) (PGA), and poly(lactic-co-glycolic acid) (PLGA), can gradually degrade in vivo through hydrolysis. However, their degradation may generate carboxylic acid-containing products. If these acidic products accumulate locally, they may cause a decrease in pH, further affecting tissue response, cell activity, and the degradation rate of the material itself.
Poly(trimethylene carbonate) (PTMC) is an aliphatic polycarbonate. It is characterized by a flexible backbone, a relatively low glass transition temperature, a generally amorphous structure, non-acidic degradation products, and relatively pronounced surface erosion behavior under in vivo and enzyme-assisted conditions.
2 Structural Origin of PTMC: Carbonate Bonds and Flexible Trimethylene Segments
2.1 Basic Structure of PTMC
PTMC is typically prepared by ring-opening polymerization (ROP) of trimethylene carbonate (TMC).
The repeating structure of PTMC can be represented as:
–[O–CH2–CH2–CH2–O–C(=O)]n–
It can also be abbreviated as:
–[O–(CH2)3–O–C(=O)]n–
This repeating unit contains two key structural features that determine material performance:
Structural Unit | Structural Role | Effect on Material Properties |
–CH2–CH2–CH2– | Flexible aliphatic segment | Enhances segmental mobility, making the material softer and more elastic |
–O–C(=O)–O– | Carbonate bond | Distinguishes PTMC from aliphatic polyesters and affects its degradation products and degradation mode |
An important difference between PTMC and PLA, PGA, or PLGA is that PTMC contains carbonate bonds in its main chain, whereas PLA, PGA, and PLGA mainly contain ester bonds. This structural difference is an important source of the differences in degradation behavior and local tissue response between these materials.
2.2 Formation of PTMC by Ring-Opening Polymerization of TMC
TMC is a six-membered cyclic carbonate monomer. During ring-opening polymerization, the cyclic monomer is opened and continuously polymerized to form linear PTMC molecular chains. The significance of this reaction is not only to obtain the polymer, but also to regulate the molecular weight, molecular weight distribution, end-group structure, and copolymer composition of PTMC. For practical applications, these factors influence the viscoelasticity, film-forming ability, mechanical strength, processability, material morphology, and degradation period of the material.
3 How Structure Determines Performance: Low Tg, Flexibility, and Amorphous Characteristics
3.1 Flexible Backbone Makes PTMC More Similar to an Elastic Material at Body Temperature
The –CH2–CH2–CH2– aliphatic segments in the PTMC backbone have strong segmental mobility. Compared with polymers that are more rigid or more highly crystalline, PTMC generally exhibits better flexibility and elasticity.
Literature reports that PTMC is typically a hydrophobic, amorphous polymer, with a glass transition temperature, Tg, commonly around −15 to −20 °C. Because its Tg is below room temperature and body temperature, PTMC does not readily behave as a hard and brittle glassy material under common use conditions. Instead, it is closer to a soft, rubber-like, or elastic material.
3.2 Matching Flexibility with Applications: PTMC Is More Suitable for Low-Load Soft-Tissue Scenarios
For high-load bone fixation devices, hard-tissue support materials, and similar applications, pure PTMC usually lacks sufficient strength and stiffness. It often needs to be reinforced through copolymerization, crosslinking, or composite design to meet application requirements. In contrast, for soft-tissue scaffolds, absorbable barrier membranes, nerve conduits, flexible coatings, and drug delivery carriers, material flexibility, elasticity, and low mechanical irritation are more important.
The low Tg and flexible chain segments of PTMC allow it to better adapt to the soft-tissue environment at body temperature. However, in practical design, strength, degradation period, shape stability, and tissue response must still be considered simultaneously.
4 Core Degradation Characteristics of PTMC: Non-Acidic Products and Surface Erosion
4.1 Key Differences Between PTMC and PLA/PLGA
PTMC, PLA, and PLGA are all common degradable biomedical polymers, but their main-chain structures, degradation modes, and suitable application directions are different. PTMC is an aliphatic polycarbonate, whereas PLA and PLGA are aliphatic polyesters. This structural difference determines their different degradation behavior in vivo.
Comparison Dimension | PTMC | PLA/PLGA |
Material type | Aliphatic polycarbonate | Aliphatic polyester |
Key linkage in the main chain | Carbonate bond | Ester bond |
General hydrolysis behavior | Hydrolysis is relatively slow under non-enzymatic conditions, and the material is relatively stable | Ester bonds can undergo hydrolysis, which is an important degradation pathway |
Main degradation mode | Relatively stable under non-enzymatic hydrolysis; under in vivo or enzyme-assisted conditions, it often gradually erodes from the material surface | Often undergoes bulk hydrolysis after water enters the interior of the material |
Degradation product characteristics | Does not accumulate carboxylic acid products such as lactic acid or glycolic acid; the risk of local acidification is lower | Can generate acidic products such as lactic acid and glycolic acid; local accumulation may reduce pH |
Mechanical characteristics | Low Tg, soft, and relatively elastic; more suitable for flexible material design | PLA is usually relatively stiff; PLGA performance is strongly affected by the lactic acid/glycolic acid ratio and molecular weight |
Suitable application directions | Soft-tissue materials, flexible absorbable membranes, drug delivery systems, injectable microspheres, etc. | Sutures, bone fixation materials, drug delivery microspheres, absorbable scaffolds, etc. |
The advantage of PTMC is that it provides an alternative material option. When an application places greater emphasis on softness, non-acidic degradation, and relatively mild surface erosion, PTMC has advantages. When an application requires higher initial strength, a more mature drug delivery platform, or hard-tissue-related support, PLA and PLGA still have important value.
4.2 Surface Erosion Supports Shape Retention and Release Control
The degradation modes of degradable polymers are usually divided into bulk degradation and surface erosion. These two modes have significantly different effects on material performance.
Bulk degradation:
Water enters the interior of the material → Chain scission occurs both internally and at the surface → Molecular weight decreases → The material may crack, become brittle, or rapidly lose mechanical performance
Surface erosion:
Degradation mainly occurs at the material surface → Surface chain segments gradually break and detach → The material loses mass layer by layer from the outside inward → The internal structure is relatively maintained
Under in vivo and enzyme-assisted conditions, PTMC often shows degradation characteristics dominated by surface erosion. This degradation mode is important for biomedical materials:
Surface Erosion Feature | Effect on Applications |
The material loses mass layer by layer | Helps reduce the risk of sudden structural instability caused by bulk degradation, although shape retention still depends on molecular weight, crosslinking, thickness, and pore structure |
The internal structure is relatively maintained | Helps delay abrupt loss of mechanical performance |
Degradation is related to surface area | Allows degradation rate to be adjusted through morphology and size |
The surface layer is gradually eroded | Helps support the design of drug release processes |
4.3 Non-Acidic Degradation Products Reduce the Risk of Local Acidification
When aliphatic polyesters such as PLA, PGA, and PLGA degrade, they can form small molecules or oligomers containing carboxylic acid groups. If these acidic products accumulate in local tissues, they may reduce pH and accelerate degradation of the material itself, producing an autocatalytic effect.
The degradation process of PTMC is not characterized by the accumulation of acidic carboxylic acids. Literature studies indicate that PTMC degradation is not mainly associated with the accumulation of carboxylic acid products such as lactic acid or glycolic acid. After carbonate bond cleavage, PTMC can form low-molecular-weight carbonate fragments, 1,3-propanediol, and carbonate/carbon dioxide-related products, which are then further metabolized or eliminated.
PTMC surface carbonate bond cleavage → Low-molecular-weight carbonate fragments, 1,3-propanediol, and carbonate/carbon dioxide-related products → Further metabolism or elimination
The fact that PTMC degradation is not characterized by acidic carboxylic acid accumulation is highly important for implantable materials. The local tissue environment is sensitive to pH, inflammatory responses, and cell activity. PTMC helps avoid the risks associated with acidic product accumulation seen in many polyester materials, giving it application value in soft-tissue repair, long-term drug release, and absorbable implants.
5 How Enzymes and Cells Participate in PTMC Degradation
5.1 PTMC Is Relatively Stable Under Ordinary Hydrolysis
Compared with some aliphatic polyesters, PTMC is relatively stable under non-enzymatic hydrolysis. Its in vivo degradation depends more on biological processes occurring at the material surface, including enzymatic action, cell-mediated foreign body reactions, and the influence of the local tissue environment.
This means that judging the in vivo degradation rate of PTMC solely through in vitro hydrolysis experiments in buffer solution is not sufficient. In a real in vivo environment, protein adsorption, macrophage adhesion, enzyme secretion, tissue fluid exchange, local oxidative conditions, and mechanical stress may all affect the surface erosion process of PTMC.
5.2 Macrophages and Lipases Participate in Surface Erosion
Recent studies suggest that in vivo surface erosion of PTMC may be related to macrophage behavior during the foreign body response and to lipases secreted by these cells. This is one of the important mechanisms of PTMC degradation in vivo. After a material is implanted, protein adsorption occurs on its surface. Subsequently, immune cells such as macrophages may adhere to, accumulate on, or fuse at the material surface, and they may release lipases and other degradation-related factors that can promote carbonate bond cleavage in the PTMC surface layer.
This process can be simplified as follows:
PTMC material surface → Protein adsorption → Macrophage adhesion, accumulation, or fusion → Release of lipases and other degradation-related factors → Carbonate bond cleavage in the surface layer → Gradual surface erosion of the material
The in vivo degradation of PTMC is closely related to the surface properties of the material and local biological responses. For the same PTMC material, if it is fabricated into bulk materials, films, microspheres, or porous scaffolds, its degradation rate and tissue response may differ because of differences in surface area, surface roughness, cell contact mode, and extent of enzymatic action.
6 How to Regulate PTMC Performance: Molecular Weight, Crosslinking, Copolymerization, and Morphological Design
6.1 Molecular Weight Affects Mechanical Properties, Processability, and Degradation Period
The molecular weight of PTMC has a significant influence on material performance. Low-molecular-weight PTMC may be tacky and soft, insufficient in strength, or poor in shape stability. Higher-molecular-weight PTMC generally has better film-forming ability, elasticity, and mechanical integrity. However, higher molecular weight is not always better. An increase in molecular weight affects melt processing, solution processing, segmental mobility, surface erosion rate, and drug release behavior. In practical applications, an appropriate molecular weight should be selected according to the target use.
Application Direction | Main Requirements for PTMC |
Flexible films and barrier materials | Good film-forming ability, certain elasticity, and shape-retention capability |
Drug delivery carriers | Adjustable degradation rate and drug diffusion process |
Injectable microspheres | Stable particle size, controllable surface morphology, and gradual absorption in vivo |
Soft-tissue scaffolds | Softness and elasticity that match the mechanical characteristics of soft tissue |
6.2 Crosslinking Improves Elastic Recovery and Shape Stability
In some applications, pure linear PTMC lacks sufficient strength and shape stability. Crosslinking can form a three-dimensional network structure by creating connection points between molecular chains, thereby improving elastic recovery and resistance to deformation.

The main effects of crosslinking on performance include:
Effect of Crosslinking | Specific Impact |
Improves elastic recovery | The material can more easily recover its shape after deformation |
Improves shape stability | Reduces the risk of material flow, deformation, or overly rapid collapse |
Regulates degradation rate | Crosslink density affects the action of water, enzymes, and cells on the material surface |
Improves scaffold performance | Facilitates the preparation of elastic films, porous scaffolds, and three-dimensional structural materials |
If the crosslink density is too low, the reinforcing effect is limited. If the crosslink density is too high, segmental mobility may be reduced, affecting degradation rate and cellular responses. The key point of crosslinking design is to achieve a reasonable balance among elasticity, strength, and degradation behavior.
6.3 Copolymerization and Composite Design Compensate for the Limitations of PTMC Alone
The advantages of PTMC include softness, non-acidic degradation, and surface erosion. However, pure PTMC cannot meet all application requirements. Its strength, hydrophilicity, cell-recognition ability, and degradation period may all need further adjustment. Common modification strategies include:
Modification Strategy | Main Purpose |
Copolymerization with PLA, PGA, PCL, etc. | Regulates strength, degradation period, and crystallization behavior |
Introduction of hydrophilic segments such as PEG | Improves hydrophilicity, drug release, and water contact |
Composite design with inorganic materials | Improves strength, osteoconductivity, or interfacial stability |
Fabrication into microspheres, nanoparticles, or porous scaffolds | Changes surface area, release behavior, and tissue contact mode |
Among these, polycaprolactone (PCL) is commonly used to regulate flexibility and degradation period, while polyethylene glycol (PEG) is commonly used to improve hydrophilicity and construct carrier systems.
It should be noted that copolymerization and composite design simultaneously alter multiple properties. For example, introducing polyester segments may improve strength or change the degradation period, but it may also introduce acidic degradation products. Introducing hydrophilic segments may improve water contact and drug release, but it may also change enzyme adsorption, cellular responses, and the surface erosion rate. Therefore, PTMC modification should be guided by specific application requirements.
7 Suitable Application Directions and Material Design Priorities for PTMC
7.1 Drug Delivery: Surface Erosion Helps Regulate the Release Process
Drug delivery materials need to control both the drug release rate and the degradation behavior of the carrier. The hydrophobicity, enzyme-assisted/in vivo surface erosion, and non-acidic degradation characteristics of PTMC make it suitable for the design of certain hydrophobic drug delivery systems or long-term release systems.
When PTMC is used as a drug delivery carrier, drug release is not determined by a single factor. Instead, it is jointly controlled by drug diffusion within the material and the gradual surface erosion of the PTMC carrier. Particle size, pore structure, surface area, membrane thickness, and enzyme and cellular responses at the implantation site can further affect the release rate and release duration.
Drug release from a PTMC carrier
↓
Main controlling factors:
1. Drug diffusion: migration of the drug from the PTMC matrix to the exterior
2. Surface erosion: gradual degradation of the PTMC surface layer, allowing the encapsulated drug to continue becoming exposed and released
Factors affecting release rate:
particle size / pore structure / surface area / membrane thickness / drug hydrophobicity / local enzyme and cellular responses
The design focus of PTMC-based drug delivery systems is to regulate both carrier structure and the drug release pathway. For example, smaller microspheres have a larger specific surface area, making drug diffusion and surface erosion generally easier to occur. Increased crosslink density or a thicker membrane layer may delay drug diffusion and carrier erosion.
7.2 Soft-Tissue Repair: Low Tg and Elasticity Support Mechanical Compliance Matching
Soft-tissue materials require greater attention to flexibility, elasticity, shape retention, and tissue compatibility. PTMC is generally in a flexible state at body temperature, making it suitable for soft-tissue-related material design. Suitable application directions for PTMC include:
Application Direction | Reason for Suitability |
Soft-tissue scaffolds | Soft and elastic, helping reduce mechanical irritation caused by rigid materials |
Nerve conduits | Flexibility helps reduce local compression and irritation |
Absorbable barrier membranes | Can be gradually absorbed while maintaining certain elasticity and shape stability |
Flexible coatings | Can improve the compliance and local contact condition of rigid substrate surfaces |
However, in soft-tissue repair, PTMC cannot rely solely on its “softness.” The material also needs sufficient structural stability, an appropriate degradation period, and controllable tissue responses. Crosslinking, copolymerization, and composite design are often important approaches for improving practical application performance.
7.3 Injectable Microspheres: Material Properties Are Reflected in Particle Size and Surface Design
PTMC can be designed as microparticles or microspheres and combined with absorbable gel carriers for research or formulation exploration related to tissue filling, tissue augmentation, or local drug delivery systems. Related patents propose that PTMC can be used as a microparticle material in combination with an aqueous resorbable gel carrier, with emphasis on parameters such as microparticle size, sphericity, surface smoothness, and the rheological properties of the gel carrier.
These applications show that PTMC performance must be expressed through specific material forms. The design of injectable microspheres depends not only on polymer chemical structure, but also on particle size, surface morphology, molecular weight, and the carrier system.
Design Parameter | Impact |
Microsphere particle size | Affects injectability, tissue distribution, surface area, and degradation rate |
Surface smoothness | Affects cell adhesion, foreign body response, and tissue interaction |
Molecular weight | Affects microsphere stability, degradation period, and mechanical behavior |
Gel carrier | Affects the injection process, initial localization, and local morphology |
Surface erosion | Affects gradual in vivo absorption and changes in material volume |
7.4 Material Challenges to Be Addressed in PTMC Applications
Material Challenge to Be Addressed | Cause | Common Regulation Strategy |
Limited mechanical strength of pure PTMC | The backbone is flexible and Tg is low, so the material behaves more like an elastic material than a highly rigid one | Enhance the material through crosslinking, copolymerization, or composite design to improve shape stability and resistance to deformation |
Relatively strong surface hydrophobicity | The backbone lacks sufficient hydrophilic groups, which may affect protein adsorption, cell adhesion, and drug release | Introduce hydrophilic segments such as PEG or perform surface hydrophilic modification |
Environmental variation in in vivo degradation rate | Enzymes, macrophages, implantation site, and local tissue responses all affect surface erosion | Combine in vitro enzymatic degradation experiments with in vivo evaluation to determine the actual degradation period |
Material performance is strongly affected by morphology | Bulk materials, films, microspheres, and porous scaffolds differ in surface area, thickness, and pore structure | Design particle size, membrane thickness, pore structure, surface morphology, and crosslink density according to the intended application |
8 Classification Tables of Chemicals Related to the Study of PTMC Structure, Degradation, Modification, and Applications
Table 1. Products Related to PTMC Synthesis, Monomer Preparation, and Polymerization Control
Detailed Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Core cyclic carbonate monomer for PTMC | 2453-03-4 | 1,3-Dioxan-2-one (trimethylene carbonate, TMC) | ≥98% (GC) | Trimethylene carbonate monomer used for the preparation of poly(trimethylene carbonate) by ring-opening polymerization; directly related to the construction of flexible aliphatic polycarbonate backbones | |
Diol precursor for TMC synthesis | 504-63-2 | 1,3-Propanediol | ≥98% | Used in studies on trimethylene carbonate monomer synthesis; can also serve as a reference compound related to non-acidic PTMC degradation products | |
Relatively green carbonylation reagent | 616-38-6 | Dimethyl carbonate (DMC) | Anhydrous, ≥99% | Used in carbonylation and transesterification reaction studies; related to synthetic routes for trimethylene carbonate monomer preparation | |
Aliphatic carbonate reagent | 105-58-8 | Diethyl carbonate (DEC) | ≥99% | Used in aliphatic carbonate synthesis and transesterification reaction systems; supports research on cyclic carbonate monomer preparation | |
Aryl carbonate reagent | 102-09-0 | Diphenyl carbonate (DPC) | ≥99% | Used in carbonate exchange reactions, polycarbonate synthesis, and cyclic carbonate-related reaction studies | |
Metal-catalyzed ring-opening polymerization catalyst | 301-10-0 | Stannous 2-ethylhexanoate | ≥95% | Used for the ring-opening polymerization of cyclic monomers such as trimethylene carbonate, lactide, glycolide, and caprolactone; suitable for the preparation of PTMC and its copolymers | |
Organic base catalyst for ring-opening polymerization | 6674-22-2 | 1,8-Diazabicyclo[5.4.0]undec-7-ene (DBU) | ≥99% | Used in organocatalytic ring-opening polymerization, transesterification, and polymer end-group reaction studies; suitable for exploring metal-free catalytic systems | |
Strong organic base polymerization catalyst | 5807-14-7 | 1,5,7-Triazabicyclo[4.4.0]dec-5-ene (TBD) | ≥98% | Used in ring-opening polymerization studies of cyclic esters and cyclic carbonates; can support PTMC molecular weight control and copolymerization system design | |
Monohydroxyl polymerization initiator | 100-51-6 | Benzyl alcohol | Anhydrous, ≥99.8% | Used for ring-opening polymerization initiation and end-group control; suitable for studies on PTMC molecular weight, chain-end structure, and model polymerization reactions | |
Dihydroxyl polymerization initiator | 110-63-4 | 1,4-Butanediol (BDO) | Anhydrous, ≥99% | Used to prepare hydroxyl-terminated PTMC, block copolymers, and polymer precursors that can be further crosslinked | |
Long-chain alcohol end-group regulator | 112-53-8 | 1-Dodecanol | ACS, ≥98% | Used to regulate polymer chain-end hydrophobicity, chain length, and surface properties; related to studies on hydrophobic PTMC matrices and release behavior | |
Polyhydroxyl multi-arm polymerization initiator | 115-77-5 | P103696 | Pentaerythritol (regulated as an explosive precursor) | AR, ≥98% | Used for the design of multi-arm PTMC, star-shaped polymers, and crosslinkable precursors; related to elastic networks and shape-stability studies |
Table 2. Copolymer Modification Monomers and Reference Degradable Polymers
Detailed Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
L-lactic acid segment monomer | 4511-42-6 | L-(-)-Lactide | ≥98% | Used to introduce polylactic acid segments and regulate the strength, crystallization behavior, and degradation period of PTMC copolymers | |
D-lactic acid segment monomer | 13076-17-0 | D-Lactide | ≥99% | Used to regulate the stereochemical structure of polylactic acid segments and support performance studies of TMC-lactide copolymers | |
Racemic lactic acid segment monomer | 95-96-5 | DL-Lactide | ≥98% | Used to prepare random polylactic acid segments and TMC-lactide copolymers; related to the regulation of rigid-flexible balance and degradation behavior | |
Glycolic acid segment monomer | 502-97-6 | Glycolide | ≥98% | Used to introduce polyglycolic acid segments and regulate copolymer degradation rate, crystallization behavior, and mechanical strength | |
Flexible caprolactone segment monomer | 502-44-3 | ε-Caprolactone | ≥99% | Used to introduce polycaprolactone segments and regulate the flexibility, crystallinity, and degradation period of PTMC-based copolymer materials | |
Absorbable p-dioxanone monomer | 3041-16-5 | 1,4-Dioxan-2-one (p-dioxanone) | ≥98% | Used in studies on absorbable polymers and copolymers; related to the design of sutures, scaffolds, and flexible degradable materials | |
Reference polymer for acidic degradation | 26780-50-7 | Resomer® RG 505, poly(D,L-lactide-co-glycolide) (PLGA) | Ester-terminated, Mw 54,000–69,000 | Typical degradable polyester material used to compare PTMC surface erosion, non-acidic degradation, and drug release behavior | |
Reference flexible polyester material | 24980-41-4 | Resomer® C 209, polycaprolactone (PCL) | Ester-terminated | Flexible degradable polyester material used for comparison with PTMC in terms of flexibility, crystallinity, and degradation period | |
Reference rigid polyester material | 26100-51-6 | Polylactic acid | Mw ~60,000 | Used to compare PTMC in terms of low-Tg flexibility, non-acidic degradation characteristics, and suitability for soft-tissue materials | |
Hydrophilic polyether release-modulating material | 25322-68-3 | Polyethylene oxide | Viscosity 65–115 cps | Used to improve material hydrophilicity, water penetration, and drug diffusion behavior; suitable for studies on sustained-release carriers and composite materials |
Table 3. Products Related to End-Group Functionalization, Photocrosslinking, and Elastic Network Construction
Detailed Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Hydrophilic methacrylate functional monomer | 868-77-9 | 2-Hydroxyethyl methacrylate (HEMA) | Anhydrous, ≥99%, contains 200 ppm MEHQ stabilizer, water ≤0.1% | Used in hydrophilic modification, photocrosslinked polymers, and hydrogel composite system studies; related to the regulation of PTMC surface hydrophilicity | |
Hydrophilic diacrylate crosslinker | 26570-48-9 | Poly(ethylene glycol) diacrylate (PEGDA) | Average molecular weight ~200, contains MEHQ stabilizer | Used to construct photocrosslinked networks and regulate material hydrophilicity, elastic structure, and swelling behavior | |
Reagent for introducing acryloyl end groups | 814-68-6 | Acryloyl chloride | ≥96%, contains 200 ppm MEHQ stabilizer | Used to introduce acryloyl groups into hydroxyl-terminated polymers and prepare free-radical-crosslinkable PTMC derivatives | |
Reagent for introducing methacryloyl end groups | 920-46-7 | Methacryloyl chloride | ≥95%, contains MEHQ stabilizer | Used for methacryloylation of polymer end groups and construction of photocurable PTMC precursors and elastic network materials | |
Methacrylation reagent for end-group modification | 760-93-0 | Methacrylic anhydride | ≥94%, contains 0.2% Topanol CA as stabilizer | Used for end-group modification of hydroxyl-terminated PTMC to prepare crosslinkable macromonomers and photocurable materials | |
Photoinitiator for biomaterials | 106797-53-9 | 2-Hydroxy-4′-(2-hydroxyethoxy)-2-methylpropiophenone | ≥98% (HPLC) | Used for the preparation of photocrosslinked biomaterials, elastic networks, and hydrogel composite systems | |
UV free-radical initiator | 24650-42-8 | 2,2-Dimethoxy-2-phenylacetophenone | ≥99% | Used for free-radical photopolymerization and crosslinked network curing; supports studies on crosslinkable PTMC derivatives | |
Acylphosphine oxide photoinitiator | 75980-60-8 | Diphenyl(2,4,6-trimethylbenzoyl)phosphine oxide (TPO) | ≥97% | Used in photocurable resins, crosslinked polymers, and three-dimensional forming material preparation; related to PTMC elastic network processing studies |
Table 4. Products Related to Gel Carriers, Viscosity Regulation, and Degradation Evaluation
Detailed Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Enzyme for PTMC enzymatic degradation evaluation | 9001-62-1 | Lipase PS from Burkholderia cepacia | Recombinant, EnzymoPure™, ≥23,000 U/g, pH 7.0, 50 °C, expressed in Burkholderia cepacia | Used to study PTMC enzymatic surface erosion, degradation rate, and degradation mechanism | |
High-molecular-weight gel carrier material | 9067-32-7 | Sodium hyaluronate | ≥99.8%, molecular weight: 1.7–2.6 million | Used in studies on absorbable gel carriers, soft-tissue filling systems, and PTMC microsphere dispersion systems | |
Natural polysaccharide gel matrix | 9004-61-9 | Hyaluronic acid | Moligand™, from rooster comb | Used in studies on soft-tissue materials, gel carriers, and biocompatible composite systems | |
Thickening and dispersing material for injectable systems | 9004-32-4 | Sodium carboxymethyl cellulose (CMC) | Viscosity: 1000–1400 mPa·s, USP grade | Used to regulate the viscosity of dispersion systems, improve microsphere suspension stability, and support sustained-release carrier preparation processes |
Note: The products listed above are mainly intended for research, synthesis, formulation screening, or in vitro evaluation. Whether they can be used for medical devices, implantable materials, or biomedical-grade production should be determined according to the product COA, quality system, regulatory documents, and specific registration requirements. More product specifications, grades, and COA information can be searched on the Aladdin website using the product name, CAS number, or catalog number.
For more related articles, please see below:
Plant Cell Wall-Degrading Enzyme Systems and Their Research Applications
Experiments on nanogene vectors based on polylactic acid and polyethylene glycol
