Türkçe

Aerosol jet printing can completely change the manufacturing of microfluidic devices

681
2024-02-02 18:12:01
Çeviriyi gör

Surface acoustic wave technology is renowned for its high precision and fast driving, which is crucial for microfluidics and affects a wide range of research fields. However, traditional manufacturing methods are time-consuming, complex, and require expensive cleanroom facilities.

A new method overcomes these limitations by utilizing aerosol jet printing to create customized equipment with various materials, greatly reducing development time.

In a study published in Microsystems and Nanoengineering, researchers from Duke University and Virginia Tech were the first to integrate aerosol jet printing technology into the manufacturing of SAW microfluidic devices. This progress provides a faster, more universal, and cleanroom free method for developing chip laboratory applications, completely changing the field from biology to medicine.

In this groundbreaking study, the team utilized aerosol jet printing to manufacture SAW microfluidic devices. This method contrasts sharply with traditional and cumbersome cleanroom processes.

It involves depositing various conductive materials onto substrates to form interdigital transducers, which is crucial for generating SAW to manipulate fluids and particles at the microscale.

It is worth noting that this method reduces the manufacturing time of each device from approximately 40 hours to approximately 5 minutes. The team thoroughly analyzed the acoustic performance of these printing equipment using a laser Doppler vibrometer and compared it with the equipment manufactured in the cleanroom.

The results demonstrate enormous potential, with printing equipment exhibiting similar or acceptable performance levels in terms of resonant frequency and displacement field. This study represents a significant advancement in the manufacturing of microfluidic devices, providing a faster, more adaptable, and more efficient alternative to traditional methods.

Dr. Tian Zhenhua, co-author of the study, said, "This is not just a step forward; it is a leap towards the future of microfluidic device manufacturing. Our method not only simplifies the process, but also opens up new possibilities for device customization and rapid prototyping design.".

The impact of the new method is enormous, as it provides a more convenient, faster, and cost-effective way to produce microfluidic equipment. It has the potential to accelerate research and development in numerous fields, enabling faster diagnosis, improved drug delivery systems, and enhanced biochemical analysis.

In addition, the versatility of this technology indicates its adaptability to various materials and substrates, and it is expected to be widely applied in various disciplines.

Source: Laser Net

İlgili öneriler
  • Laser induced magnetic generation of non-magnetic materials at room temperature helps to develop faster and more energy-efficient information transmission and storage technologies

    Researchers from the University of Stockholm in Sweden, the Nordic Institute for Theoretical Physics, and the University of Cafoscari in Venice, Italy have successfully demonstrated for the first time how lasers induce quantum behavior at room temperature and make non-magnetic materials magnetic. This breakthrough is expected to pave the way for faster and more energy-efficient computers, informat...

    2024-06-03
    Çeviriyi gör
  • Trumpf and SiMa. ai collaboration to develop AI laser

    Recently, Trumpf Group, a leading global provider of machine tools and laser technology solutions, announced that it has partnered with software company SiMa AI has signed a partnership agreement to develop lasers with artificial intelligence (AI).It is reported that SiMa. ai is a software centric embedded edge machine learning chip system company, and the goal of both parties is to equip Trumpf'...

    2024-07-19
    Çeviriyi gör
  • Tower and Fortsense have announced the launch of their highly advanced 3D imager for LiDAR

    Recently, Gaota Semiconductor announced the successful development of an advanced 3D imager based on dToF technology for LiDAR applications. The newly developed product FL6031 is based on Tower's 65nm Stacked BSI CIS platform and has pixel level hybrid bonding function. It is the first in a series of products aimed at meeting the needs of numerous deep sensing applications in the automotive, consu...

    2023-09-14
    Çeviriyi gör
  • Vigo University School of Technology invents laser glass recycling system

    LaserON, a laser industrial application group at the University of Vigo, is leading a European project that aims to revolutionize the glass recycling process by developing a new technology called glass laser conversion, so that everyone can recycle at home. This group is led by Professor Juan Pou and Professor Rafael Comesa ñ a, and is part of Cintecx, leading EverGlass. Its partners come f...

    2024-01-19
    Çeviriyi gör
  • Researchers use laser doping to enhance the oxidation of IBC solar cells

    Researchers from the International Solar Research Center at Konstanz and Delft University of Technology have discovered a method to pattern the back end of a cross finger rear contact battery, improving its efficiency by making certain parts of the solar cell thicker.Researchers have developed a new technology that enhances oxidation in selected areas by patterning the back or back of IBC solar ce...

    2024-02-20
    Çeviriyi gör