From Structure to Rheology: Thickening, Stabilization, and Selection Logic of Cellulose Ethers for Personal Care Applications
From Structure to Rheology: Thickening, Stabilization, and Selection Logic of Cellulose Ethers for Personal Care Applications
1 What Is Cellulose for Personal Care Applications?
1.1 Native Cellulose and Modified Cellulose for Personal Care Use
Cellulose is a natural linear polysaccharide composed of glucose units linked by β-1,4-glycosidic bonds. It is an important structural component of plant cell walls. Native cellulose contains a large number of hydroxyl groups along its molecular chains. These chains readily form hydrogen bonds with one another, resulting in tightly packed molecular arrangements and relatively high crystallinity. As a result, native cellulose generally does not dissolve directly in water.
In personal care formulations, the term “cellulose” usually does not refer to the direct use of native cellulose. Instead, it more often refers to modified cellulose ethers and related cellulose derivatives. Common types include hydroxyethylcellulose (HEC), hydroxypropyl methylcellulose (HPMC), hydroxypropylcellulose (HPC), methylcellulose (MC), and carboxymethyl cellulose (CMC; commonly listed as Cellulose Gum in cosmetic ingredient nomenclature).
These materials retain the polymeric backbone of cellulose while introducing substituent groups such as hydroxyethyl, hydroxypropyl, methyl, and carboxymethyl groups. These substitutions weaken the strong hydrogen-bonding interactions between native cellulose chains, allowing the materials to wet, hydrate, dissolve, or disperse in the aqueous phase. It is this structural modification that enables cellulose-based materials to provide thickening, rheology modification, suspension stabilization, syneresis control, and sensory improvement in personal care formulations such as hair care, skin care, and oral care products.
1.2 Core Functional Positioning of Cellulose in Personal Care
The most intuitive role of cellulose in personal care products is thickening, but cellulose is not simply responsible for “increasing viscosity.” In personal care formulations, cellulose functions as a class of aqueous-phase rheology modifiers. Its functional pathway can be summarized as follows:
① Structural modification improves hydration capability;
② After hydration, the molecular chains expand and extend in the aqueous phase;
③ The expanded polymer chains create flow resistance and chain entanglement;
④ The resulting rheological structure further influences viscosity, suspension, syneresis resistance, clarity, and in-use sensory properties.
Different cellulose derivatives have different areas of emphasis in formulations.
Type | Ionic Character | Common Personal Care Applications | Main Points of Focus |
HEC | Nonionic | Shampoos, shower gels, facial cleansers, clear gels, aqueous phase of emulsions | Clarity, thickening efficiency, surfactant compatibility, salt tolerance |
HPMC | Nonionic | Hair and body care products, gels, film-forming and sensory modification systems | Rheology modification, film-forming properties, spreadability, formulation compatibility |
CMC / Cellulose Gum | Anionic | Toothpastes, pastes, suspension systems, anti-syneresis systems | Paste structure, shear-thinning behavior, syneresis resistance, adaptability to ionic environments |
HPC | Nonionic | Film-forming, binding, and specialty sensory systems | Film-forming properties, solvent compatibility, sensory modification |
MC | Nonionic | Thickening, film-forming, and specialty rheological systems | Thermal response, thickening performance, and film-forming behavior |
Note: The water solubility and rheological behavior of different cellulose ethers are related to the type of substituent, degree of substitution, molecular weight, temperature, and specific commercial grade. MC, HPMC, HPC, and related materials also exhibit a certain degree of temperature dependence. In practical selection, the preparation temperature, application temperature, and stability test results of the target formulation should be considered.
2 Structure Determines Performance: Four Key Variables of Cellulose Ethers
2.1 Cellulose Backbone: Providing the Polymeric Framework
The foundation of cellulose ethers is the cellulose backbone. The longer the backbone, the higher the molecular weight generally is. After hydration, longer chains can occupy a larger volume in the aqueous phase and are more likely to entangle with other molecular chains. This is why high-viscosity grades of cellulose can significantly increase system viscosity even at relatively low use levels. The mechanism is not simply “water absorption and swelling”; rather, hydrated long-chain molecules increase the internal resistance to flow within the system.
However, longer molecular chains do not necessarily mean better formulation performance. Excessively high molecular weight may lead to slow dissolution, obvious stringiness, reduced spreadability, and difficulty in pumping. For products such as shampoos, shower gels, and serum gels, consumers perceive not only viscosity but also whether the product dispenses smoothly, spreads naturally, rinses cleanly, and avoids tackiness or stringiness.
2.2 Substituent Groups: Determining Hydration, Dissolution, and Compatibility
Native cellulose is difficult to dissolve in water mainly because of strong hydrogen bonding and the compact structure between molecular chains. Cellulose ethers introduce substituent groups at the hydroxyl positions of the cellulose molecule, weakening interchain interactions and allowing water molecules to more easily penetrate between the chains. This improves hydration and dissolution capability.
Different types of substituent groups lead to different formulation behaviors in cellulose derivatives. Hydroxyethyl substitution usually helps improve water solubility and suitability for clear systems; therefore, hydroxyethylcellulose is commonly used in hair and body care products, clear gels, and aqueous-phase thickening systems for emulsions. Hydroxypropyl and methyl substituents influence the hydration, film formation, and rheological characteristics of cellulose molecules, so hydroxypropyl methylcellulose, hydroxypropylcellulose, and methylcellulose can be used in systems requiring different sensory profiles, film-forming properties, and rheology modification. Carboxymethyl substitution gives carboxymethyl cellulose and its sodium salt an anionic character, making them commonly used in toothpastes, pastes, suspension systems, and anti-syneresis systems. However, in high-electrolyte environments, especially formulations containing multivalent metal ions or cationic components, their compatibility, viscosity stability, clarity, and syneresis risk need to be carefully evaluated.
2.3 Molecular Weight: Determining Thickening Efficiency and Affecting Sensory Properties
Molecular weight is an important factor affecting the viscosity grade of cellulose. In general, the higher the molecular weight, the longer the molecular chains; after hydration, chain entanglement becomes more pronounced, and thickening efficiency increases. However, high molecular weight also increases formulation risks. Long-chain structures tend to produce stronger extensional responses, which may cause stringiness when a product is dispensed, applied, or poured. If a system shows high apparent viscosity but insufficient low-shear support, poor suspension, syneresis, or phase separation may still occur.
The selection of viscosity grade should be based on product form. Clear gels usually emphasize clarity and low stringiness; hair and body care products focus on dispensing, spreading, and rinsing feel; toothpastes require ribbon formation, shear-thinning behavior, and syneresis resistance; emulsions and creams focus on aqueous-phase structure, heat-storage stability, and application feel.
2.4 Substitution Uniformity and Purity: Determining Clarity, Stability, and Batch-to-Batch Consistency
Even when products are all labeled as hydroxyethylcellulose, hydroxypropyl methylcellulose, or carboxymethyl cellulose, their performance in formulations may vary significantly. These differences are often closely related to the uniformity of substituent distribution, purity level, insoluble matter content, particle size control, and batch-to-batch consistency.
When substitution is uneven, some molecular chains may not hydrate fully, which can easily lead to reduced clarity, localized gel particles, dissolution residues, or viscosity fluctuations. When insoluble matter, ash, or other impurities are relatively high, haze, fiber specks, black spots, precipitation, or a rough appearance may occur in clear hair and body care products, clear gels, and high-transparency aqueous products.
Cellulose products with higher levels of quality control usually have stricter specifications for viscosity range, substitution uniformity, insoluble matter, clarity, ash content, microorganisms, and batch-to-batch consistency. Their value lies in helping formulations achieve stable appearance, reproducible rheological performance, and reduced risk during production scale-up.
3 Hydration Process: The Prerequisite for Cellulose to Perform Its Rheological Function
3.1 Hydration Is the Prerequisite for Cellulose Function
After cellulose ether is added to the aqueous phase, it does not immediately form stable viscosity. It must go through wetting, dispersion, water uptake, hydration, and molecular-chain expansion. Only when the molecular chains are fully hydrated and expanded can they form effective flow resistance and chain-entanglement structures.
3.2 The Nature of Lumping and “Fish Eyes” Is Uneven Hydration
Lumps and “fish eyes” commonly seen in production are usually caused by rapid water absorption on the outer surface of the powder particles, which forms a gel layer and prevents water from continuing to enter the interior of the particles. As a result, the outer layer is hydrated while the inside remains dry powder.
This problem may arise from the method of addition, but it may also be related to the particle size, surface treatment, wetting rate, and dispersibility of the cellulose itself. For cold-process systems, clear gels, continuous production, or large-scale powder addition, whether cellulose can disperse easily and hydrate uniformly is often more important than the viscosity value alone. When evaluating cellulose, it is not advisable to observe only the viscosity immediately after addition. The viscosity after 24 hours, clarity, particle residues, and overall system state should also be observed.
Phenomenon | Main Cause | Impact on Formulation |
Lumping, fish eyes | Outer layer gels rapidly while the interior remains unhydrated | Affects appearance, production efficiency, and viscosity stability |
Slow viscosity build-up | Incomplete molecular-chain expansion | Leads to inaccurate initial viscosity assessment |
Reduced clarity | Incomplete dissolution or high insoluble matter | Not suitable for high-clarity systems |
Localized grainy feel | Uneven dispersion or insufficient hydration | Affects skin feel and appearance |
Viscosity changes after standing | Hydration process is still continuing | Affects batch evaluation and shelf stability |
4 From Molecular Chains to Rheology: Why Cellulose Can Thicken and Show Shear-Thinning Behavior
4.1 The Essence of Thickening Is Changing the Flow State of the Aqueous Phase
The essence of cellulose ether thickening is that hydrated polymer chains create flow resistance in the aqueous phase. When cellulose molecular chains are fully expanded, they occupy a certain volume in the aqueous phase. When the system flows, water molecules, surfactant micelles, oil droplets, powders, or other dispersed phases must move between the polymer chains. The longer the molecular chains, the higher the concentration, and the more complete the hydration, the greater the resistance to internal movement within the system. Macroscopically, this appears as an increase in viscosity.
When the cellulose concentration reaches a certain level, molecular chains also begin to entangle with one another. During flow, the system must overcome friction, entanglement, and steric obstruction between chain segments, so viscosity increases further. This is why the same type of cellulose can meet different product requirements through different viscosity grades: low-viscosity grades are suitable for lightweight systems, while high-viscosity grades are suitable for high-consistency or strongly supportive systems. However, high-viscosity grades are also more likely to cause stringiness, slow dissolution, and a heavier sensory feel.
4.2 Shear-Thinning Behavior Supports “Stability at Rest and Smoothness in Use”
Many cellulose ether aqueous solutions and cellulose-containing personal care systems exhibit shear-thinning behavior. In other words, they have relatively high viscosity under low-shear or static conditions, while their viscosity decreases and flowability improves under shear actions such as squeezing, pumping, spreading, stirring, or tooth brushing.
This rheological behavior is very important for personal care products. Shampoos and shower gels need appropriate cling on the bottle wall and in the hand, but they should not feel overly draggy during dispensing and spreading. Toothpaste needs to remain stable in the tube without syneresis, dispense smoothly, and form a complete ribbon on the toothbrush. Serum gels need to maintain a certain shape at rest while spreading quickly during application.
4.3 Products with the Same Viscosity May Still Feel Different in Use
Viscosity is a result obtained under specific test conditions and cannot fully reflect all rheological characteristics of a product. Even if two cellulose products show similar viscosity at the same concentration, their actual sensory performance may differ.
These differences may arise from the following factors: ① different molecular weight distributions; ② different substitution uniformity; ③ different hydration rates; ④ different degrees of chain entanglement; ⑤ different structural recovery rates after shear; and ⑥ different compatibility with surfactants, salts, fragrances, preservatives, or active ingredients.
5 From Rheology to Stability: Why Cellulose Can Provide Suspension, Syneresis Control, and Improved System Stability
5.1 Stability Comes from Continuous-Phase Viscosity and Weak Network Structures
In personal care formulations, cellulose is often used to help reduce phase separation, sedimentation, creaming, and syneresis. Its stabilizing effect mainly comes from two aspects.
① Increasing the viscosity of the continuous phase. After the flow resistance of the aqueous phase increases, the migration rate of dispersed phases such as oil droplets, powders, abrasives, pearlescent flakes, and air bubbles decreases.
② Forming a certain degree of chain entanglement or a weak network structure. At rest, this structure can provide support for dispersed phases and reduce the risk of sedimentation, creaming, or aggregation.
However, different cellulose ethers do not provide the same level of low-shear support or structural recovery. If a system requires long-term suspension, anti-settling performance, or syneresis resistance, it is still necessary to confirm performance through low-shear viscosity, yield value, thixotropic recovery, centrifugation, and long-term stability tests. When necessary, cellulose may be combined with other rheology modifiers.
5.2 Cellulose Provides Different Stabilizing Effects in Different Products
In clear hair and body care products, cellulose is mainly used to build appropriate viscosity, improve cling, and control flowability, while also balancing clarity, salt tolerance, and surfactant compatibility.
In emulsions and creams, cellulose mainly acts in the aqueous phase. By increasing continuous-phase viscosity and improving the aqueous-phase structure, it helps reduce the risk of oil droplet migration, coalescence, or creaming. It is usually not the primary emulsifier, but rather an auxiliary structural material that supports emulsion stability. In toothpastes and oral care products, cellulose-based materials such as CMC and HEC can help build paste structure, improve shear-thinning behavior, reduce syneresis risk, and support the uniform distribution of abrasives in the system. In suspension-type products, the key role of cellulose is to provide support under static conditions so that pearlescent flakes, particles, abrasives, or other insoluble materials remain uniformly distributed during shelf life.
5.3 The Complete Formulation Determines Final Stability
The behavior of cellulose in aqueous solution is not equivalent to its behavior in a complete personal care formulation. Surfactants, salts, pH, fragrances, preservatives, polyols, cationic conditioning agents, powders, and oils can all affect the hydration state, chain entanglement, and rheological behavior of cellulose.
For example, changes in salt content in cleansing systems can affect system viscosity and clarity; hair and body care products containing cationic conditioning agents need to consider compatibility with anionic cellulose; and in toothpaste systems, abrasives, humectants, foaming agents, and electrolytes coexist, placing higher requirements on the syneresis resistance and shear-thinning behavior of cellulose.
6 How to Interpret Key Indicators: What Viscosity, Solubility, Clarity, and Stability Tell You
6.1 Viscosity: Evaluating Thickening Efficiency, but Not as the Only Criterion
Viscosity is a common indicator for cellulose, but it must be interpreted together with test conditions, including test concentration, temperature, spindle, rotational speed, test time, and dissolution method. Viscosity values obtained under different test conditions cannot be directly compared across systems.
Viscosity mainly answers three questions:
① Under specified conditions, how much flow resistance can the cellulose generate?
② At the target addition level, can it reach the consistency required by the formulation?
③ In the complete formulation, can the viscosity remain stable?
Viscosity alone cannot explain clarity, suspension capability, stringiness, salt tolerance, or long-term stability. High-viscosity grades may provide higher thickening efficiency, but they may also cause slow dissolution, stringiness, and a heavier sensory feel. Therefore, viscosity should be used as a starting point for selection, not as the final basis for judgment.
6.2 Solubility: Determining Whether Full Hydration Can Be Achieved
Solubility directly affects production efficiency and final formulation performance. Cellulose with good solubility is easier to disperse uniformly and hydrate fully, reducing lumps, fish eyes, particle residues, and viscosity fluctuations. Solubility is especially critical for clear gels, clear hair and body care products, cold-process systems, and large-scale production. If cellulose cannot hydrate fully, even if its theoretical viscosity is high, it may not deliver stable and uniform thickening performance in the actual formulation.
6.3 Clarity: Reflecting Dissolution Completeness, Purity, and Compatibility
Clarity is not merely an appearance requirement; it is a comprehensive reflection of cellulose dissolution completeness, substitution uniformity, insoluble matter control, and formulation compatibility. When a clear system shows turbidity, haze, flocculent matter, or particle specks, the causes may include insufficient cellulose hydration, high insoluble matter, uneven substitution distribution, or compatibility issues caused by salts, fragrances, surfactants, or other components in the formulation.
6.4 Stability: Determining Whether the Rheological Structure Can Withstand Formulation Conditions
Stability includes heat-storage stability, freeze-thaw stability, pH stability, salt tolerance, surfactant compatibility, and long-term viscosity retention. For personal care products, stability cannot be assessed only by the initial state. Many systems may have normal appearance and viscosity immediately after preparation, but after exposure to high temperature, low temperature, centrifugation, long-term storage, or fragrance addition, they may show viscosity loss, phase separation, syneresis, turbidity, or sedimentation.
6.5 Relationship Between Key Indicators and Formulation Evaluation
Indicator | Surface Meaning | What It Helps Evaluate |
Viscosity | Degree of thickness | Molecular weight, hydration degree, chain-entanglement ability, and thickening efficiency |
Solubility | Whether it can dissolve properly | Wetting, dispersion, hydration rate, and lumping risk |
Clarity | Visual transparency | Insoluble matter, substitution uniformity, purity, and system compatibility |
Stability | Whether the system changes after storage | Whether the rheological structure can tolerate temperature, salts, pH, and formulation components |
Salt tolerance | Viscosity change after salt addition | Adaptability of the hydration layer and system structure to electrolytes |
pH adaptability | Stability under acidic or alkaline conditions | Stability of molecular chains and substituent groups at different pH values |
Particle size and surface treatment | Powder morphology | Ease of addition, dispersion rate, and fish-eye risk |
Purity and insoluble matter | Impurity level | Clarity, appearance, odor, and risk of interference with the system |
Batch-to-batch consistency | Whether each batch performs consistently | Process control capability and reliability in scale-up production |
7.1 Start with the Product Type
Cellulose selection should begin by identifying the product type, followed by determining the required structure and performance indicators. Different products have different requirements for cellulose.
Product Type | Core Requirements | Selection Focus |
Clear shampoos, shower gels, facial cleansers | Clarity, smoothness, appropriate cling, salt tolerance | Prioritize the clarity, surfactant compatibility, salt response, and viscosity retention of HEC or suitable HPMC grades |
Serum gels, jelly gels | Clear appearance, fine texture, low stringiness, low graininess | Focus on high clarity, low insoluble matter, appropriate molecular weight, and full hydration |
Emulsions, creams | Aqueous-phase stability, heat-storage viscosity retention, spreadability | Focus on aqueous-phase structure, rheological stability, and skin feel |
Toothpastes, oral care products | Ribbon formation, syneresis resistance, shear-thinning behavior, abrasive suspension | Focus on the paste structure, ionic adaptability, and syneresis resistance of CMC or HEC |
Suspension-type products | Uniform distribution of particles, pearlescent flakes, and abrasives | Focus on low-shear support, long-term suspension, and viscosity recovery ability |
7.2 Then Determine Whether the Formulation Composition Affects Cellulose Performance
Other components in the complete formulation can affect cellulose performance. If the formulation contains relatively high levels of salts, high surfactant content, cationic conditioning agents, fragrances, acids, or abrasives, cellulose selection should be confirmed through testing in the complete formulation. The following factors should be carefully evaluated during selection.
Formulation Factor | Possible Impact |
Surfactants | Affect viscosity, clarity, and rheological structure |
Salts and electrolytes | May change viscosity and hydration state |
pH | Affects the stability and compatibility of some cellulose derivatives |
Fragrances | May affect clarity and system stability |
Preservatives | May affect system compatibility and long-term stability |
Cationic conditioning agents | May create compatibility issues with anionic cellulose |
Polyols | Affect hydration rate, solvent environment, and skin feel |
Powders, abrasives, pearlescent flakes | Increase requirements for suspension support and anti-settling capability |
7.3 Lab-Scale Testing Should Cover Viscosity, Appearance, Stability, and Sensory Properties
Cellulose selection is recommended to include at least the following tests:
Test Item | Evaluation Purpose |
Initial viscosity | Evaluates basic thickening efficiency |
24-hour viscosity | Determines whether hydration is complete and whether viscosity continues to change |
Clarity and appearance | Evaluates dissolution completeness, insoluble matter, and compatibility |
Heat storage at 45°C | Evaluates structural retention under high-temperature conditions |
Freeze-thaw test | Evaluates stability after temperature cycling |
Centrifugation test | Evaluates risk of phase separation, sedimentation, or syneresis |
State before and after salt addition | Evaluates salt tolerance and viscosity retention |
State before and after fragrance addition | Evaluates fragrance compatibility |
State after pH adjustment | Evaluates acid-base adaptability |
Sensory evaluation | Evaluates stringiness, tackiness, spreadability, and rinsing feel |
Batch retesting | Evaluates supply stability and production controllability |
When abnormalities occur in a formulation, the cellulose structure or fit with the system can be inferred from the observed phenomena.
Formulation Phenomenon | Possible Cause | Adjustment Direction |
Lumping, fish eyes | Powder wets too quickly and forms an outer gel layer; dispersion process is unsuitable | Adjust the addition method and select an easy-dispersing grade |
Low initial viscosity followed by an increase after standing | Hydration is incomplete | Extend hydration time and optimize dispersion conditions |
Poor clarity | High insoluble matter, uneven substitution, incomplete dissolution, or system incompatibility | Select a high-clarity grade and optimize the hydration process |
High viscosity but poor suspension | High apparent viscosity but insufficient low-shear support | Adjust the cellulose grade and, if necessary, combine with other rheology modifiers |
Obvious stringiness | Molecular weight is too high or chain entanglement is too strong | Lower the viscosity grade, adjust dosage, or optimize the polymer combination |
Viscosity drop after salt addition | Electrolytes affect hydration state or system structure | Select a grade with better salt tolerance and re-evaluate the salt response curve |
Viscosity loss after heat storage | Insufficient structural retention at high temperature or poor system compatibility | Conduct heat-storage screening and adjust the cellulose type or formulation composition |
Syneresis in toothpaste | Insufficient aqueous-phase structure and inadequate paste support | Select a CMC or HEC grade with better syneresis resistance |
Pilling during application | Film formation is too strong, polymer compatibility is poor, or dosage is too high | Reduce dosage and adjust the polymer combination |
Batch-to-batch performance fluctuation | Unstable control of viscosity, substitution uniformity, or insoluble matter | Select a supply grade with better batch-to-batch consistency |
8. Product Tables of Cellulose Ethers and Related Rheology Materials for Personal Care Applications
The following products are listed primarily as representative materials for scientific research, formulation screening, and structure–performance studies. Whether they are suitable for the production of finished cosmetic products, regulatory requirements, or specific target standards should be determined based on the product COA, SDS, specification sheet, regulatory compliance documents, and actual supply grade.
Table 1 Cellulose Substrates, Cellulose Ethers, and Cellulose Derivatives
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Cellulose substrates and microcrystalline cellulose | 9004-34-6 | Cellulose | Microcrystalline powder | A basic material for structural studies of cellulose derivatives; can be used for studies on microcrystalline cellulose dispersion, suspension, filling, and particle structure | |
Cellulose substrates and microcrystalline cellulose | 9004-34-6 | Cellulose powder | ≤25 μm | Can be used to study cellulose particle dispersion, powder suspension, and the influence of particle size on system appearance and rheology | |
Cellulose substrates and micro-/nanocellulose | 9004-34-6 | Cellulose | Nanocrystals, L: ~200 nm, OD: ~10 nm | Can be used for studies on nanocellulose dispersion, suspension support, gel structure, and composite rheological systems | |
Water-soluble nonionic cellulose ether | 9004-62-0 | 2-Hydroxyethylcellulose (HEC) | Average Mw ~380,000 | A typical water-soluble cellulose ether; can be used for studies on hair and body care products, clear gels, aqueous-phase thickening in emulsions, rheology modification, and suspension stabilization | |
Water-soluble nonionic cellulose ether | 9004-65-3 | Hydroxypropyl methylcellulose (HPMC) | Substitution type 2910, viscosity: 400 mPa·s, methoxy: 28–30%; hydroxypropyl: 7.0–12% | Can be used to study the relationship between substituent structure and hydration, film formation, thickening, and rheological behavior | |
Water-soluble nonionic cellulose ether | 9004-64-2 | Hydroxypropylcellulose (HPC) | Viscosity 4000–6500 mPa·s, 2% aqueous solution at 20°C | Can be used for studies on cellulose ether hydration, film formation, binding, gel texture, and aqueous-phase rheology modification | |
Water-soluble nonionic cellulose ether | 9004-67-5 | Methylcellulose (MC) | 3,500–5,600 mPa·s, 2% aqueous solution at 20°C | Can be used for studies on cellulose ether thickening, film formation, temperature-responsive rheology, and aqueous-phase structure | |
Water-soluble nonionic cellulose ether | 9004-67-5 | Methylcellulose (MC) | 1500 mPa·s | Can be used to study the effects of different viscosity grades of cellulose ethers on viscosity build-up, spreadability, and flow behavior | |
Water-soluble nonionic cellulose ether | 9032-42-2 | Methyl 2-hydroxyethyl cellulose | Viscosity 70000–80000 mPa·s, 2% in H₂O at 20°C | Can be used for studies on high-viscosity cellulose ether hydration, chain entanglement, suspension support, and high-consistency system rheology | |
Carboxymethyl cellulose products | 9004-32-4 | Sodium carboxymethyl cellulose (CMC) | Viscosity: 1000–1400 mPa·s, USP grade | A typical anionic cellulose derivative; can be used for studies on toothpastes, pastes, suspension systems, syneresis resistance, and shear-thinning systems | |
Carboxymethyl cellulose products | 9000-11-7 | Carboxymethyl cellulose (CM-32) | — | Can be used for studies on carboxymethyl substitution structure, thickening, dispersion, water retention, and aqueous-phase stabilization | |
Carboxymethyl cellulose products | 9000-11-7 | Carboxymethyl cellulose solution (CMC, 4%, sterile) | BioReagent, for cell culture, sterile, 4% | A sterile carboxymethyl cellulose solution; can be used in experiments involving hydrogels, dispersion systems, and biologically relevant viscosity systems | |
Cellulose esters and film-forming cellulose | 9004-35-7 | Cellulose acetate | Acetyl content 39.8 wt%, hydroxyl content 3.5 wt% | A cellulose ester material; can be used for studies on film formation, membrane materials, coating, and hydrophobically modified cellulose structures | |
Hydrophobic film-forming cellulose ether | 9004-57-3 | Ethyl cellulose (EC) | 9–11 mPa·s | A water-insoluble cellulose ether; can be used for studies on film formation, coating, water-resistant films, and oil-phase-related systems |
Table 2 Natural Polysaccharide Products Related to Rheology, Suspension, and Film Formation
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Natural polysaccharide rheology modifier | 11138-66-2 | Xanthan gum | PharmPure™, USP | A typical shear-thinning polysaccharide; can be used for studies on suspension stabilization, gel rheology, cellulose combinations, and salt-tolerant systems | |
Natural polysaccharide rheology modifier | 9000-30-0 | Guar gum | Viscosity: 5000–5500 cps, 200 mesh | A natural galactomannan; can be used for studies on aqueous-phase thickening, suspension, texture modification, and cellulose combinations | |
Natural polysaccharide gelling aid | 9000-07-1 | Carrageenan | Reagent grade | Can be used for studies on gel formation, thickening, suspension stabilization, and polysaccharide composite rheological systems | |
Natural polysaccharide rheology modifier | 9005-38-3 | Alginic acid sodium salt | From brown algae, medium viscosity | Can be used for studies on hydrogels, suspension, thickening, ionically crosslinked gels, and natural polysaccharide rheology | |
Natural polysaccharide film-forming material | 9057-02-7 | Pullulan | — | Can be used for studies on film formation, moisturizing film layers, transparent film feel, and polysaccharide film-forming systems | |
Moisturizing and viscoelastic polysaccharide | 9067-32-7 | Sodium hyaluronate | European Pharmacopoeia (Ph. Eur.) | Can be used for studies on moisturization, viscoelasticity, gel skin feel, hydration structure, and rheology in skin care formulations |
Table 3 Synthetic Polymer Products Related to Rheology, Gels, and Aqueous-Phase Stabilization
Category | CAS No. | Aladdin Catalog No. | Name | Specification or Purity | Product Features and Applications |
Synthetic polymer rheology modifier | 9003-01-4 | Polyacrylic acid (PAA) | Viscosity ≤2000 cP at 25°C | Can be used for studies on aqueous-phase thickening, viscosity adjustment, gel structure, polyelectrolyte rheology, and cellulose combinations | |
Synthetic polymer rheology modifier | 9003-04-7 | Sodium polyacrylate (PAAS) | Average Mw ~8000, 45% in H₂O | Can be used for studies on aqueous-phase thickening, dispersion stabilization, polyelectrolyte systems, and water-absorbent polymers | |
Synthetic gel rheology modifier | 9007-20-9 | Carbomer 940 (Carbopol® 940 polymer) | — | A typical synthetic gelling agent; can be used for comparative studies on clear gels, emulsion gels, thickening and stabilization, and cellulose combinations |
Note: The above products are representative Aladdin products for scientific research and formulation studies. More product specifications, grades, and COA information can be searched on the Aladdin website by “product name/CAS/catalog number.”
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