Inkjet, Gravure, or Continuous Film Formation? Process Selection and Film-Formation Control for Two-Dimensional Graphene Conductive Patterns
Inkjet, Gravure, or Continuous Film Formation? Process Selection and Film-Formation Control for Two-Dimensional Graphene Conductive Patterns
Introduction
A bottle of graphene ink that remains stably dispersed does not necessarily print into reliable two-dimensional conductive patterns. In this article, two-dimensional graphene conductive patterns refer to planar conductive patterns formed on the surface of a substrate. They are usually conductive networks formed by stacked graphene sheets or flakes, and they are not equivalent to monolayer graphene films.
In experiments, the following situation often occurs: the same ink can form continuous lines on one type of equipment, but when switched to another printing method, it may show line breakage, nozzle clogging, edge spreading, or uneven film thickness. The resistance of a freshly printed pattern may appear acceptable, but after annealing, bending, or long-term storage, the performance may change significantly. This is because a two-dimensional graphene conductive pattern is not formed simply by transferring ink onto a substrate. It is controlled by several factors at the same time:
Key step | Direct influence |
Printing process | Determines the viscosity, solids content, surface tension, and jetting/transfer compatibility required of the ink |
Substrate wetting | Determines line width, edge sharpness, and pattern continuity |
Drying and film formation | Determines sheet distribution, film thickness uniformity, and defect density |
Post-treatment | Determines sheet-to-sheet contact, residue reduction, and final conductivity |
Flexibility testing | Determines whether the conductive pattern can withstand bending and cyclic deformation |
Both inkjet printing and gravure printing can be used to prepare graphene conductive patterns, but they serve different experimental goals. Inkjet printing focuses on rapid verification and small-area complex patterns, whereas gravure printing focuses on large-area continuous manufacturing of fixed patterns.
1. What really needs to be controlled in two-dimensional graphene conductive patterns?
The quality of a two-dimensional conductive pattern cannot be judged only by whether it has been printed. Four results need to be considered at the same time.
1.1 Whether the line width is controllable
Line width determines pattern resolution and also affects electrode spacing, sensing-area dimensions, and device integration density. If the line width is too narrow, the pattern may break. If the line width is too wide, it may connect with adjacent structures.
1.2 Whether the film thickness is uniform
Film thickness determines the amount of graphene deposited per unit area. If the film is too thin, the sheets may not form a continuous conductive pathway. If the film is too thick, it may crack more easily during bending and may also generate greater internal stress during drying.
1.3 Whether the conductivity is stable
Conductivity depends not only on graphene itself, but also on sheet-to-sheet contact, stabilizer residues, annealing effects, and film defects. A low initial resistance does not necessarily mean long-term stability.
1.4 Whether the flexibility is reliable
Conductive patterns in flexible electronics need to withstand bending, folding, and cyclic deformation. Conductivity in a flat state only shows that the pattern is effective immediately after preparation; it does not prove that the pattern is suitable for flexible devices.
The basic evaluation criteria for two-dimensional graphene conductive patterns can be summarized as follows:
Evaluation object | Key question |
Pattern morphology | Are the lines continuous, and are the edges sharp? |
Film structure | Is the film thickness uniform, and are there cracks, voids, or aggregates? |
Electrical performance | Does the resistance, sheet resistance, or conductivity meet the target? |
Post-treatment effect | Does conductivity improve after annealing, and is the pattern damaged? |
Mechanical reliability | Does the resistance remain stable after bending? |
2. Why is the same graphene ink not necessarily suitable for all printing processes?
Different printing processes impose different requirements on the ink. Even if one graphene ink performs well in one process, it may fail in another.
2.1 Core differences between inkjet printing and gravure printing
Comparison item | Inkjet printing | Gravure printing |
Pattern formation method | Droplets are deposited point by point according to a digital pattern | Ink fills gravure cells and is then transferred onto the substrate |
Main advantages | Fast pattern modification, low material consumption, suitable for rapid verification | High printing speed, suitable for large-area and continuous manufacturing |
Typical ink characteristics | Lower viscosity, lower solids content, stable droplet jetting required | Higher solids content, higher viscosity, stable cell filling and transfer required |
Common problems | Nozzle clogging, droplet deviation, line breakage, coffee-ring effect | Incomplete transfer, uneven film thickness, edge spreading, residual ink in cells |
Suitable stage | Formulation screening, small-area devices, complex pattern verification | Scale-up manufacturing and continuous production after the pattern is fixed |
Taking ethyl cellulose-stabilized graphene inks as an example, the total solids content of an inkjet-printing ink is about 2.4 wt%, with a viscosity of about 0.008–0.015 Pa·s. The total solids content of a gravure-printing ink is about 10 wt%, with a viscosity of about 0.75–3 Pa·s. Here, the total solids content includes both graphene and ethyl cellulose; it is not the graphene content alone. Both belong to ethyl cellulose-stabilized graphene ink systems, but they are designed for different printing methods, and their ink parameters differ significantly.
3. What scenarios are suitable for inkjet printing? What problems are commonly encountered?
The core value of inkjet printing lies in its digital, non-contact nature and its suitability for rapid prototyping. In two-dimensional graphene conductive patterns, it is often used for electrode patterns, sensor structures, small-area flexible devices, and early-stage formulation screening.
The basic feature of functional-material inkjet printing is that small-volume droplets are precisely placed onto a substrate, and the liquid is then converted into a solid pattern through drying or curing. The inkjet process depends not only on whether the ink can flow, but also on droplet formation, droplet landing position, droplet spreading, and whether adjacent droplets can merge into continuous lines. Inkjet printing requires an understanding of the relationship between droplet formation mechanisms and fluid properties. The interactions between droplets and the substrate, as well as between adjacent droplets, also affect pattern resolution and accuracy.
3.1 Suitable scenarios for inkjet printing
Inkjet printing can be prioritized in the following experimental scenarios:
1. Early-stage formulation screening: low ink consumption allows rapid comparison of different inks.
2. Small-area electrode patterns: patterns can be deposited directly from digital files.
3. Sensor-structure verification: suitable for parallel testing of multiple electrode shapes.
4. Flexible device prototypes: non-contact deposition is relatively friendly to thin-film substrates.
5. Localized deposition of multilayer or multi-material structures: printing can be performed selectively by region.
3.2 Common problems in inkjet printing
3.2.1 Nozzle clogging
Nozzle clogging usually comes from three causes: oversized graphene sheets or aggregates, excessively high solids content, and overly rapid solvent evaporation. Nozzle clogging does not always appear as a complete failure to eject ink. Sometimes the pattern can still be printed, but local line loss, droplet-position deviation, and reduced repeatability may occur.
3.2.2 Unstable droplets
When the ink viscosity, surface tension, and density are not properly matched, droplets may show tails, deviation, satellite droplets, or interrupted jetting. For conductive patterns, droplet stability directly affects line width, edge quality, and film thickness distribution.
3.2.3 Bead-like lines or line breakage
If adjacent droplets cannot merge smoothly, bead-like lines may form. If droplet spreading is insufficient, line breakage may occur. If spreading is excessive, the line width may exceed the designed value.
3.2.4 Limited deposition per pass
Each inkjet droplet has a small volume, so the amount of graphene deposited in a single printing pass is limited. To reduce resistance, multiple printing passes are often required. Multiple passes can increase film thickness, but they may also cause line-width expansion, uneven drying, or re-wetting of the underlying pattern.
3.3 Key experimental evaluation points for inkjet printing
Evaluation item | Phenomena to observe |
Ink ejection stability | Are droplets continuous, and are landing positions stable? |
Line continuity | Are there line breaks, bead-like lines, or local material loss? |
Line-width variation | Is the actual line width close to the designed value? |
Effect of multiple printing passes | Does film thickness increase, and does the line width become uncontrolled? |
Resistance after post-treatment | Does the resistance decrease after annealing and remain stable? |
4. What scenarios are suitable for gravure printing? Why does it favor large-area and high-throughput manufacturing?
Gravure printing uses a printing cylinder or plate with fine engraved cells to carry ink and then transfer the ink onto the substrate surface. It is suitable for scenarios where the pattern has already been fixed and needs to be replicated continuously over large areas. In related studies, ethyl cellulose-stabilized graphene gravure inks achieved a pattern resolution of about 30 μm under specific printing cylinders, substrates, and printing parameters. This value can be used as a reference for process feasibility, but it should not be treated as a universal indicator for all gravure systems.
4.1 Suitable scenarios for gravure printing
Gravure printing can be prioritized in the following experimental scenarios:
1. Large-area flexible conductive patterns: patterns can be transferred continuously.
2. Batch replication of fixed electrode structures: repeatability is relatively good after plate making.
3. Roll-to-roll process verification: compatible with continuous thin-film processing.
4. Higher deposition demand: inks with higher solids content can be used.
5. Production scale-up evaluation: close to continuous manufacturing conditions.
4.2 Key control points in gravure printing
4.2.1 Whether the gravure cells are fully filled
The ink needs to enter the gravure cells. If the viscosity is too high or the flowability is insufficient, the cells may not be fully filled, leading to insufficient material in the pattern transferred to the substrate.
4.2.2 Whether the ink transfer is complete
When ink is transferred from the cells to the substrate, the process is affected by substrate wettability, printing pressure, printing speed, and ink drying rate. Incomplete transfer may lead to discontinuous patterns, insufficient film thickness, or uneven edges.
4.2.3 Whether the film thickness is repeatable
The film thickness of a gravure-printed pattern is related to cell depth, cell shape, ink solids content, doctor blade condition, and printing speed. Film-thickness fluctuations directly lead to resistance fluctuations.
4.2.4 Whether high solids content affects leveling
Graphene inks for gravure printing usually require relatively high solids content to ensure sufficient conductive material after a single transfer. However, when the solids content increases, ink viscosity also increases and sheet-to-sheet interactions become stronger, which may lead to poor leveling or rough edges.
4.3 Key experimental evaluation points for gravure printing
Evaluation item | Phenomena to observe |
Cell release | Is there residual ink or insufficient transfer? |
Pattern integrity | Are there missing lines, broken lines, or edge spreading? |
Film thickness uniformity | Is the thickness consistent at different positions? |
Large-area consistency | Is the resistance fluctuation between different regions too large? |
Continuous printing stability | Does the pattern remain consistent after long-duration printing? |
5. How does substrate wetting affect line width, edges, and pattern continuity?
The first key process after ink is deposited onto a substrate is wetting and spreading. The same graphene ink may behave differently on glass, silicon wafers, silicon dioxide surfaces, polyimide films, or polyethylene terephthalate films. This is because different substrates have different surface energies, roughness levels, cleanliness, and chemical compositions.
5.1 Effects of three wetting states on conductive patterns
Wetting state | Main manifestation | Effect on conductive patterns |
Insufficient wetting | Droplets bead up, lines break, coverage is insufficient, and local material loss occurs | Adjacent droplets are difficult to merge; the current pathway becomes discontinuous; the actual line width may be smaller than the designed line width; resistance fluctuation increases |
Excessive spreading | Line width expands, edges become blurred, adjacent patterns connect, and the film becomes thinner | Resolution decreases; pattern dimensions become difficult to control; short-circuit risk increases; graphene deposition per unit area decreases |
Moderate wetting | Lines are continuous, edges are sharp, film thickness distribution is relatively uniform, and adhesion is relatively stable | Pattern dimensions are controllable; current pathways are complete; reliability during post-treatment and bending is better |
A suitable wetting state does not mean allowing the ink to spread as much as possible. It means allowing the ink to spread to the target dimension and then stabilize.
5.2 Substrate-related information that should be recorded
Item | Recording significance |
Substrate material | Determines heat resistance, wettability, and flexibility |
Cleaning method | Surface contamination can change wetting behavior |
Surface treatment | Plasma treatment, ultraviolet ozone treatment, and similar methods can change surface energy |
Contact angle | Helps evaluate the spreading tendency of the ink |
Actual line width | Indicates whether wetting matches the pattern design |
Adhesion | Indicates whether the pattern can withstand post-treatment and bending |
The substrate is not merely a support. The line width, edge quality, and continuity of a two-dimensional conductive pattern begin to form from the moment the ink contacts the substrate.
6. How do the coffee-ring effect, drying process, and sheet stacking affect film quality?
After ink deposition is completed, the solvent begins to evaporate, and graphene sheets migrate, orient, and stack under internal fluid flow. This process determines whether the film is uniform and whether the conductive pathway is continuous.
6.1 The coffee-ring effect causes edge enrichment
The coffee-ring effect refers to the phenomenon in which solid particles or sheets in a drying droplet accumulate more at the droplet edge, forming edge enrichment. In a classic study, Deegan and co-workers pointed out that when droplets containing dispersed solids evaporate, capillary flow carries particles toward the edge, forming ring-like deposits. This phenomenon affects printing, cleaning, coating, and related processes.
For graphene conductive patterns, the coffee-ring effect can create a structure that is thick at the edges and thin in the center, resulting in non-uniform current distribution. It can also cause local sheet enrichment, increasing surface roughness and reducing repeatability. If the central region lacks sufficient graphene, local resistance will increase. If defects continue to accumulate during multiple printing passes, film non-uniformity will become more severe.
6.2 Two types of risks caused by imbalanced drying rate
Drying state | Main risks | Possible consequences |
Drying too fast | Edges solidify first, solvent evaporates rapidly, local concentration rises too quickly, and internal stress increases | Edge enrichment, sheet aggregation, film cracking, reduced adhesion, or film warping |
Drying too slowly | The liquid continues to flow, adjacent patterns affect each other, the underlying layer may be disturbed during multilayer printing, and more solvent residue remains | Line-width expansion, line bridging or short-circuit risk, difficult film-thickness control, and adverse effects on subsequent conductivity and stability |
6.3 Sheet stacking determines the final conductive pathway
Graphene is a two-dimensional sheet material. In a conductive pattern, current must not only travel within individual sheets, but also pass across the interfaces between sheets. Therefore, the stacking state of the sheets after drying directly affects the overall conductivity.
Film-formation state | Possible result |
Uniform sheet distribution | Relatively stable resistance |
Sufficient sheet-to-sheet contact | Reduced inter-sheet contact resistance |
Severe aggregation | Local roughness and resistance fluctuation |
Cracks in the film | Interrupted current pathways |
Large film-thickness variation | Inconsistent electrical performance in different regions |
7. Why do post-treatment and annealing affect conductivity?
After printing, graphene patterns are usually not yet in their optimal conductive state. Residual solvent, stabilizers, binders, and relatively high sheet-to-sheet contact resistance may still exist in the pattern.
7.1 Main problems addressed by post-treatment
Post-treatment is usually used to promote residual solvent evaporation, reduce the blocking effect of organic components on sheet-to-sheet contact, improve the contact state between sheets, and stabilize the electrical performance of the film.
Ethyl cellulose helps stabilize graphene sheets in the liquid phase, but after drying, it may increase contact resistance between sheets. Therefore, graphene patterns containing ethyl cellulose usually require post-treatment such as thermal annealing to reduce the blocking effect of organic components on sheet-to-sheet contact.
7.2 Four factors that need to be considered in annealing conditions
Factor | Question to confirm |
Substrate heat resistance | Can the substrate withstand the annealing temperature? |
Pattern integrity | Does the pattern crack, warp, or delaminate after annealing? |
Residue reduction effect | Does the resistance decrease significantly after annealing? |
Device compatibility | Will other functional layers be damaged? |
7.3 Evaluation after post-treatment should not rely on a single resistance measurement
Test item | Purpose |
Resistance before and after annealing | Determine whether post-treatment is effective |
Effect of annealing time on resistance | Determine whether the performance has reached a stable state |
Microscopic film morphology | Determine whether cracking or shrinkage has occurred |
Adhesion | Determine whether the pattern remains firmly attached after annealing |
Multi-point resistance | Determine pattern uniformity |
Annealing is part of the performance formation process of two-dimensional graphene conductive patterns; it is not an optional add-on step.
8. Why is initial resistance alone insufficient in flexible electronics?
Conductive patterns in flexible electronics need to continue working under bending, folding, and cyclic deformation. A low initial resistance only indicates that the pattern conducts in a flat state; it does not prove that the pattern has reliable flexibility.
Low resistance in a flat state may hide the problem that sheet-to-sheet contact is damaged after bending. A thicker film may show good initial conductivity, but it may be more prone to cracking during bending. Conductivity at a local test point does not mean that the entire line is uniform and stable in all regions. Good performance immediately after annealing also does not mean that no drift will occur after long-term storage or cyclic deformation.
8.1 Recommended tests for flexible conductive patterns
Test item | What it evaluates |
Initial resistance or sheet resistance | Basic conductivity |
Resistance under different bending radii | Sensitivity to bending degree |
Cyclic bending test | Long-term mechanical stability |
Resistance before and after folding | Retention after extreme deformation |
Microscopic observation before and after bending | Whether cracks, line breaks, or delamination occur |
Adhesion test | Whether the pattern is firmly bonded to the substrate |
Environmental stability test | Changes after exposure to humidity, temperature, or air |
8.2 Common causes of failure in flexible patterns
Failure cause | Manifestation |
Film too thick | Cracking during bending |
Insufficient pattern adhesion | Delamination after bending |
Unstable sheet-to-sheet contact | Resistance increases during bending |
Film becomes brittle after annealing | Cracks increase after cyclic deformation |
Rough pattern edges | Stress concentration, with failure starting from the edges |
Uneven film thickness | Weak regions break first |
9. How should two-dimensional graphene inks and printing processes be selected according to experimental goals?
9.1 Select the process and control focus according to the experimental goal
Experimental goal | Process that can be prioritized | Key control focus |
Formulation screening and rapid pattern modification | Inkjet printing or small-area deposition tests | Ink ejection stability, droplet merging, line-width deviation |
Small-area electrode or sensor verification | Inkjet printing | Pattern continuity, consistency across multiple printing passes, resistance after annealing |
Repeated preparation of fixed patterns | Gravure printing | Cell filling, complete transfer, film-thickness repeatability |
Large-area flexible conductive patterns | Gravure printing | Large-area film thickness uniformity, resistance fluctuation between regions |
Roll-to-roll scale-up verification | Gravure printing or other continuous printing processes | Long-duration printing stability, substrate tension, drying rate |
Low-resistance conductive patterns | Should be judged according to the specific process | Deposition amount, sheet-to-sheet contact, annealing conditions |
Highly flexible conductive patterns | Should be judged according to the specific substrate and film thickness | Film thickness, adhesion, brittleness after annealing |
Fine line width and high-resolution patterns | Should be judged according to printhead, printing cylinder, and substrate wetting | Droplet size, wetting, edge spreading |
9.2 Questions to confirm before selection
1. Will the pattern change frequently?
If the pattern changes frequently, inkjet printing can be prioritized. After the pattern is fixed, gravure printing can be considered for scale-up.
2. How large is the target area?
Small-area device verification can usually start with inkjet printing. Large-area continuous patterns can be considered for gravure printing.
3. What is the target line width?
The smaller the target line width, or the higher the resolution requirement, the more attention should be paid to substrate wetting, the drying process, and edge control.
4. What is the target resistance?
If the deposition amount in a single pass is insufficient, multiple printing passes, higher solids content, or a different printing method should be considered.
5. Can the substrate withstand annealing?
If the substrate has poor heat resistance, an ink system compatible with low-temperature post-treatment should be selected.
6. Is bending reliability required?
Flexible electronics must be evaluated using bending-radius and cyclic bending tests.
7. Will scale-up manufacturing be required later?
If the goal includes large-area production, compatibility with gravure printing or other continuous printing processes should be considered at an early stage.
10. Complete evaluation framework for two-dimensional graphene conductive patterns
Whether a two-dimensional graphene conductive pattern is successful should be judged from five levels.
Level | Evaluation criterion | Common methods |
Ink processability | Whether stable ink ejection or stable transfer can be achieved | Ink ejection observation, continuous printing test |
Pattern morphology | Whether line width, edge quality, and film thickness are controllable | Optical microscopy, profilometry |
Film quality | Whether coffee rings, cracks, aggregates, or voids are present | Microscopic morphology, film-thickness distribution |
Electrical performance | Whether resistance, sheet resistance, or conductivity reaches the target | Two-probe test, four-probe test, multi-point test |
Flexible reliability | Whether conductivity is retained after bending | Bending radius test, cyclic bending test, folding test |
Among these methods, the two-probe test is suitable for rapid evaluation of line resistance, while the four-probe test is more suitable for evaluating film sheet resistance and reducing the influence of contact resistance. For two-dimensional graphene conductive patterns, a single-point test is insufficient to reflect the overall consistency of the pattern. Multi-point testing should be combined with morphology observation.
A reliable two-dimensional graphene conductive pattern should meet all of the following requirements:
1. The ink matches the printing process.
2. The ink matches the wetting behavior of the substrate.
3. The film is uniform and continuous after drying.
4. Conductivity improves and stabilizes after post-treatment.
5. Resistance changes after bending remain within an acceptable range.
11. Product Selection Navigation for Two-Dimensional Graphene Conductive Patterns: From Process Verification to Formulation Development
Research or experimental goal | Recommended table to check first | Why this table should be checked first | Recommended linked table | Navigation notes |
Directly carry out inkjet, gravure, screen-printing, spin-coating, or spray-coating film-formation experiments | Table 1 | Table 1 focuses on finished graphene inks and products that can be directly used for patterned film formation, making it easier to first determine the process route | Table 2 | First use finished inks to evaluate ink ejection, transfer, line width, film thickness, and resistance after annealing; then return to pastes or dispersions to adjust the formulation according to the specific problem |
Compare the differences between inkjet printing and gravure printing in two-dimensional conductive patterns | Table 1 | Table 1 includes inks for inkjet, gravure, flexographic/gravure/screen printing, making it suitable for comparing how different printing methods require different ink states and produce different film-formation results | Table 2 | If line breakage, uncontrolled spreading, film-thickness fluctuation, or insufficient transfer occurs, Table 2 can be used to further analyze the dispersion system, solids content, and solvent system |
Prepare small-area electrodes, sensor patterns, or flexible device prototypes | Table 1 | Inkjet-printing inks and photonically annealable inks directly correspond to small-area pattern verification, line-continuity evaluation, and post-treatment assessment | Tables 2 and 3 | If resistance, flexibility, or film uniformity needs to be adjusted, dispersions and sheet raw materials can be further compared for their influence on the conductive network |
Evaluate fixed patterns, large-area patterns, or continuous transfer processes | Table 1 | Gravure-printing inks, flexographic/gravure/screen-printing inks, and high-solids inks can be used to evaluate transfer integrity, film-thickness uniformity, and large-area consistency | Table 2 | If resistance fluctuation, edge spreading, or poor leveling occurs over large areas, paste systems can be used to analyze solids content, dispersants, and the drying process |
Develop water-based graphene conductive patterns or lower-pollution solvent systems | Table 2 | Table 2 includes aqueous graphene sheet pastes, aqueous dispersions, and aqueous reduced graphene oxide dispersions, making it suitable for first evaluating wetting, spreading, drying, and film continuity | Tables 1 and 3 | After film formation is feasible, the system can be compared with finished water-based inks; if conductivity is insufficient, sheet raw materials or composite conductive systems can be further screened |
Develop organic-solvent-based graphene inks or coating formulations | Table 2 | Table 2 includes dispersion systems such as NMP, ethanol, and DMF, which can be used to compare solvent evaporation, sheet dispersion, drying defects, and film resistance | Table 3 | If the conductive network needs to be improved, Table 3 can be used to compare the effects of sheet size, thickness, and conductivity on film-formation results |
Study the coffee-ring effect, uneven drying, film-thickness fluctuation, and edge morphology | Table 2 | Pastes and dispersions make it easier to adjust solvent, concentration, and dispersant conditions, making them suitable for analyzing wetting, spreading, and drying-driven film-formation mechanisms | Table 1 | After the film-formation pattern is clarified, finished ink systems can be used again to verify actual patterning performance |
Build low-resistance graphene conductive networks | Table 3 | Table 3 focuses on high-conductivity graphene, conductive graphene powders, few-layer graphene, and nanoplatelets with different particle sizes, which can be used to judge the influence of sheet raw materials on conductive pathways | Tables 2 and 1 | First evaluate the conductive-network foundation from sheet raw materials, then verify actual pattern resistance through paste dispersion and finished ink processes |
Compare the influence of sheet size, thickness, and particle size on printed film formation | Table 3 | Table 3 provides concentrated information on sheet thickness, monolayer ratio, particle size, and conductivity, making it suitable for comparative screening from the raw-material perspective | Table 2 | After sheet raw materials are selected, paste or dispersion systems are needed to further evaluate dispersion stability, clogging risk, and film uniformity |
Evaluate resistance stability after flexible bending | Table 1 | Finished inks can be used directly to prepare conductive patterns on flexible substrates, making them convenient for bending-radius, cyclic bending, and post-annealing resistance tests | Tables 2 and 3 | If resistance drift after bending is obvious, further optimization can be carried out from the perspectives of dispersion system, film thickness, sheet size, and composite conductive network |
Gradually move from ready-to-use product verification to self-formulated development | Table 1 | Table 1 is suitable for establishing benchmark samples and first determining whether the target process can form continuous conductive patterns | Tables 2 and 3 | First confirm process feasibility using finished inks, then gradually adjust solids content, dispersion system, and conductive-network structure using pastes, dispersions, and sheet raw materials |
Determine whether an experimental problem should be addressed from the process, dispersion, or raw-material perspective | Tables 1, 2, and 3 | Table 1 corresponds to process compatibility, Table 2 to dispersion and film formation, and Table 3 to sheet raw materials and conductive networks | Check tables according to the problem | For ink ejection, transfer, and patterning problems, check Table 1 first; for wetting, drying, and dispersion problems, check Table 2 first; for conductivity, sheet stacking, and flexibility problems, Table 3 can be checked in combination |
Table 1|Graphene Inks Directly Used for Printing and Coating Two-Dimensional Conductive Patterns
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Inkjet-printing ink for conductive patterns | —— | G477895 | Graphene ink in water | Inkjet printing | Used for inkjet printing of two-dimensional conductive patterns; applicable to small-area electrodes, sensing structures, and line-continuity evaluation |
Inkjet-printing and photonic-annealing ink | —— | G485279 | Graphene ink | Suitable for inkjet printing; can be photonically annealed | Used for inkjet printing and photonically annealed film formation; applicable to droplet deposition, resistance change after annealing, and pattern-stability evaluation |
Gravure-printing ink for conductive patterns | —— | G485653 | Graphene ink | For gravure printing; contains ethyl cellulose and terpineol; gravure printable | Used for gravure-printed graphene conductive patterns; applicable to cell transfer, film-thickness uniformity, and large-area consistency evaluation |
Flexographic/gravure/screen-printing ink | —— | G478442 | Graphene ink in water | Flexographic/gravure/screen printing | Used for screening flexographic, gravure, and screen-printing conditions; applicable to continuous pattern transfer and comparison of different printing-method compatibility |
Screen-printing ink for conductive patterns | —— | G485792 | Graphene ink | For screen printing; contains ethyl cellulose and terpineol; screen printable | Used for screen-printed conductive patterns; applicable to high-deposition films, thick-film conductive networks, and post-annealing electrical evaluation |
Spin-coating/spray-coating ink for photonic annealing | —— | G485796 | Graphene ink for spin/spray coating photonically annealable | For spin coating, spray coating, and photonic annealing | Used for spin-coated and spray-coated planar conductive films; applicable to resistance after photonic annealing, film uniformity, and substrate-tolerance evaluation |
High-solids conductive ink | —— | G485891 | Graphene | Ink, solids content 40%, 100 g, viscosity 5.5 Pa·s | Used for evaluating high-solids conductive coatings or thick-film pattern formation; applicable to film thickness, leveling, edge morphology, and shear-transfer compatibility; the specific printing method needs to be verified with the equipment |
Table 2|Pastes and Dispersions for Graphene Ink Formulation Development, Dispersion Stability, and Film-Formation Evaluation
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
Graphene sheet paste in an organic solvent system | 7782-42-5 | G139807 | Industrial Graphite Nanoplatelet NMP Paste | Industrial nano graphene content: 1–5 wt%; dispersant content: 0.2–1.0 wt% | Used for formulation development of organic-solvent-based graphene inks; applicable to screening dispersant dosage, solids content, and film-formation uniformity |
Aqueous graphene sheet paste | 7782-42-5 | G492369 | Industrial Graphite Nanoplatelet Aqueous | Industrial nano graphene content: 5 wt%; dispersant content: 0.15 wt% | Used for water-based conductive pattern formation; applicable to evaluating wetting and spreading, drying shrinkage, film thickness, and resistance fluctuation |
Graphene/carbon nanotube composite aqueous paste | 7782-42-5 | G139808 | Graphite Nanoplatelet Carbon Nanotubes Aqueous Paste | GNP and CNT content: 1–5 wt%; GNP:CNT = 1:1; dispersant content: 0.2–1.0 wt% | Used for constructing composite conductive networks; applicable to evaluating inter-sheet bridging, resistance changes after bending, and film continuity |
Graphene slurry in an alcohol system | —— | G494548 | Graphene ethanol slurry | ≥98%; thickness: 0.55–3.74 nm; diameter: 0.5–3 μm; number of layers: <10 | Used for film formation in alcohol-based volatile systems; applicable to evaluating drying rate, substrate wetting, and coffee-ring tendency |
Organic-solvent dispersion | —— | G465818 | Graphene dispersion | ≥0.2 mg/mL in DMF; sheet resistance 2 kΩ/sq | Used for film formation from organic-solvent dispersions; applicable to evaluating thin-film sheet resistance, deposition uniformity, and conductive-pathway continuity |
Aqueous graphene dispersion | —— | G466037 | Graphene dispersion | 0.5–1.0 mg/mL aqueous solution, containing a nonionic surfactant | Used for water-based dispersion and low-concentration film formation; applicable to evaluating surfactant effects, droplet spreading, and drying defects |
Aqueous reduced graphene oxide dispersion | —— | R485644 | Reduced graphene oxide | 10 mg/mL, dispersed in H₂O | Used for preparing water-based reduced graphene oxide conductive films; applicable to reduced-sheet film formation, flexible-substrate coating, and post-treatment evaluation |
Table 3|Graphene Sheet Raw Materials for Conductive Ink and Conductive Pattern Formulation Development
Category | CAS No. | Aladdin Cat. No. | Name | Specification or Purity | Product Features and Applications |
High-conductivity graphene raw material | —— | H494564 | High conductivity graphene | ≥98% | Used for low-resistance conductive pattern formulation development; applicable to evaluating sheet conductivity, filler loading, and resistance after annealing |
Conductive graphene powder | 1034343-98-0 | G476622 | Graphene | Powder, conductivity >10³ S/m | Used for conductive ink and conductive coating formulations; applicable to testing sheet conductivity, dispersion stability, and film resistance |
Graphene raw material with a high monolayer ratio | 7782-42-5 | S491698 | Graphene | Monolayer ratio >99.8%, thickness 0.8–1.2 nm, diameter 0.8–3 μm | Used for research on few-layer graphene conductive patterns; applicable to evaluating sheet thickness, sheet diameter, stacking state, and film uniformity |
Thin-sheet graphene powder prepared by a physical method | —— | G196540 | Physical method of graphene powder | ≥99%, thickness: <1.7 nm; diameter: 8×8 μm×μm | Used for studying film formation from physically prepared graphene sheets; applicable to evaluating sheet size, nozzle-clogging risk, and conductive-network formation |
Medium-particle-size graphene nanoplatelets | 7782-42-5 | G434034 | Graphene nanoplatelets | 5 μm particle size | Used for screening nanoplatelet conductive fillers; applicable to evaluating medium-size sheet dispersion, film continuity, and resistance stability |
Large-particle-size graphene nanoplatelets | 7782-42-5 | G434040 | Graphene nanoplatelets | Particle size 25 μm, surface area 20–25 m²/g | Used for constructing conductive networks with larger sheet diameters; applicable to high-deposition film formation, film roughness, and bending reliability evaluation |
Note: The above are representative Aladdin products. More product specifications can be searched on the Aladdin official website using the product name, CAS number, or catalog number.
References
[1] Secor E. B., Hersam M. C. Graphene Inks for Electronics. Sigma-Aldrich / Merck Technical Article.
[2] Secor E. B., Prabhumirashi P. L., Puntambekar K., Geier M. L., Hersam M. C. Inkjet Printing of High Conductivity, Flexible Graphene Patterns. Journal of Physical Chemistry Letters, 2013, 4(8): 1347–1351. DOI: 10.1021/jz400644c.
[3] Secor E. B., Lim S., Zhang H., Frisbie C. D., Francis L. F., Hersam M. C. Gravure Printing of Graphene for Large-Area Flexible Electronics. Advanced Materials, 2014, 26(26): 4533–4538. DOI: 10.1002/adma.201401052.
[4] Derby B. Inkjet Printing of Functional and Structural Materials: Fluid Property Requirements, Feature Stability, and Resolution. Annual Review of Materials Research, 2010, 40: 395–414. DOI: 10.1146/annurev-matsci-070909-104502.
[5] Deegan R. D., Bakajin O., Dupont T. F., Huber G., Nagel S. R., Witten T. A. Capillary Flow as the Cause of Ring Stains from Dried Liquid Drops. Nature, 1997, 389: 827–829. DOI: 10.1038/39827.
[6] Torrisi F., Hasan T., Wu W., Sun Z., Lombardo A., Kulmala T. S., Hsieh G.-W., Jung S., Bonaccorso F., Paul P. J., Chu D., Ferrari A. C. Inkjet-Printed Graphene Electronics. ACS Nano, 2012, 6(4): 2992–3006. DOI: 10.1021/nn2044609.
For more related articles, see below:
Application of Graphene in Photocatalysis
Graphene Inks for Printed Electronics
Preparation and functionalized design of novel graphene-based nanostructures
How to Prepare Graphene Quantum Dots?
