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Aerosol Jet Printing Technology
Ultrasonic Atomization Powder-Production Technology
Electronics Materials and Energy Storage MORE >JACS: Micrometer-Level Precision—Aerosol Jet Printing Enables Controlled Patterning and Compositing of COF Thin Films “Adv. Funct. Mater.”: MXene Microsupercapacitors Fabricated via Aerosol Jet Printing for Flexible, Washable Textile Energy Storage “Small”: MXene 3D-AJP—Realizing a Three-Dimensional, Oriented, Free-Form Network of Two-Dimensional MXene Nanosheets via Aerosol 3D PrintingSensor and Internet of Things Field MORE >Small Methods: High-Performance MXene Microsupercapacitor Fabrication Technology Based on Aerosol Jet Printing Small Methods: A Low Environmental Footprint, Non-Sensitive Disposable Humidity and Temperature Sensor Fabricated via Aerosol Jet Printing on Cellulose Substrates npj Advanced Manufacturing: Aerosol Jet Printing Empowers All-Bio-Based Humidity Sensors to Tackle the Challenge of Electronic Waste
Silver Nanoparticle Ink JS-A221AE
Product Introduction
Equipment Parameters
Specification: 100g
JS-A221AE is a conductive silver nanoparticle ink designed for creating conductive traces on substrates such as paper, PET, glass, and polyimide. Formulated specifically for aerosol printing using ultrasonic atomization, this ink contains a fluorinated polymer that enhances adhesion to glass and other substrates, making it an ideal choice for plastic, glass, and metal substrates. Applications of this ink include high-density interconnects and fine-line printing.
Parameters
| Description | Water-based silver nanoparticle ink |
| Viscosity | 10-20cp |
| Curing temperature | 100-250℃ |
| Resistivity | <9.1E-6 to 4.2E-4 (Ω-cm) |
| Average particle size | 35nm |
| Silver content (solid content) | 50 wt% |
| Nebulizer | Ultrasonic nebulizer |
| Base material | Plastic, glass, and metal |
Performance
Fluorinated polymer
Excellent adhesion and water resistance
Download Materials
Software size:
596.4KB
File type:
Silver Nanoparticle Ink JS-A426
JS-A426 is a conductive silver nanoparticle ink formulated for creating conductive traces on substrates such as paper, PET, glass, and polyimide. Specifically designed for aerosol printing using ultrasonic atomization, JS-A426 contains polymer additives that enhance adhesion to a wide range of substrates. After curing, the ink exhibits excellent resistance to water and isopropyl alcohol, making it particularly well suited for plastic, glass, and metal substrates. Applications include general-purpose printing as well as high-density interconnect and fine-line printing. Incorporating polyurethane into the cured film further improves adhesion, rendering the ink highly suitable for plastic, glass, and metal substrates.
PH1000 is a water-based PEDOT/PSS dispersion, appearing as a blue liquid. It is a leading product in the field of conductive chemistry and finds applications in next-generation flexible displays, high-performance electrochemical capacitors, antistatic and conductive protective and shielding layers, as well as OLEDs, OPVs, and printed electronics—just to name a few of its many potential uses. It can be applied via screen printing, inkjet printing, gravure printing, slot-die coating, spray coating, dip coating, and spin coating.
Gold Nanoparticle Ink JG-024UA
JG-024UA is a highly conductive gold nanoparticle ink that can be used to create conductive traces on substrates such as paper, PET, glass, and polyimide. Specifically formulated for aerosol printing using ultrasonic atomization, JG-024UA contains polymer additives that enhance adhesion to a wide range of substrates. After curing, the ink exhibits excellent resistance to water and isopropyl alcohol. Its applications span general-purpose printing as well as biomedical uses, high-density interconnects, and fine-line printing. It is particularly well suited for fine-line printing, offers superior adhesion, and becomes water-resistant upon the addition of fluoropolymers, making it an ideal choice for plastic, glass, and metal substrates.
In the field of materials science, covalent organic frameworks (COFs) are regarded as promising candidates for next-generation high-performance materials due to their high specific surface area, tunable pore structures, and outstanding functional properties. However, conventional synthesis methods for COFs often encounter significant challenges in processing, shaping, and patterning: COFs are typically insoluble in common solvents, making it difficult to fabricate them into thin films or complex architectures using standard techniques.
With the increasing convergence of life sciences and electrical engineering, bioelectronic technologies have gradually emerged as a key driver of innovation in medicine, research, and industry. In particular, in the fields of tissue engineering and organ-on-a-chip systems, the development of efficient, flexible, and customizable electrode interfaces has become one of the major research priorities.
In fields such as smart wearables, virtual reality, and robotic interaction, haptic display technology is playing an increasingly vital role. However, conventional haptic displays often face significant challenges—including high cost, large form factor, high power consumption, and complex integration—which severely limit their application in portable and flexible devices. Recently, an innovative study has successfully developed a low-voltage, wearable haptic display based on the thermo-pneumatic principle, opening up new possibilities for future intelligent haptic interfaces. This article provides a detailed explanation of the key technology underlying this breakthrough: the central role of aerosol jet printing (AJP) in the manufacturing process.
Duke University Application Case
Researchers at Carnegie Mellon University pioneered the CMU Array.
AJ200 Print Coil
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