Deutsch

The research team developed additive manufacturing (AM) technology based on hydrogel injection, and related research was published on Nano Letters

147
2023-09-25 15:10:20
Übersetzung anzeigen

It is reported that the research team of California Institute of Technology has developed an additive manufacturing (AM) technology based on hydrogel injection, which uses two-photon lithography technology to produce 3D metal with a characteristic resolution of about 100 nm.

The relevant research is published in the journal Nano Letters, titled 'Suppressed Size Effect in Nanopillars with Hierarchy Microstructures Enabled by Nanoscale Additive Manufacturing'.

Keywords: additive manufacturing; Two photon lithography; Nickel; Nanomechanics; molecular dynamics
At the end of last year, researchers at the California Institute of Technology revealed that they had developed a new manufacturing technology that could print tiny metal parts as thick as three to four sheets of paper.

Now, the team has reinvented this technology, which can print objects a thousand times smaller than before: 150 nanometers, the size of a flu virus. During this process, the research team also found that the atomic arrangement inside these objects is disordered. However, in the case of nanoscale metal objects, this disordered atomic arrangement is 3 to 5 times stronger than similar sized structures with ordered atomic arrangements.

This new technology is similar to another technology announced by the team last year, but each step is redesigned to work at the nanoscale. However, this poses another challenge: creating invisible or difficult to manipulate objects.

The first step in this process is to prepare a photosensitive "cocktail" mixture, mainly composed of hydrogel, which is a polymer that can absorb water many times its own weight. Then, the mixture is selectively hardened with a laser to establish a 3D scaffold with the same shape as the desired metal object. In this study, these objects were a series of tiny pillars and nanolattices.

The hydrogel is then partially injected into an aqueous solution containing nickel ions. Once the mixture is saturated with metal ions, they will be baked until all the hydrogels are burned out. Although the remaining part has shrunk, it still has the same shape as the original one, and is completely composed of oxidized metal ions (combined with oxygen atoms). In the final step, oxygen atoms are chemically peeled off from the part, converting the metal oxide back into metallic form.

Researchers claim that during this process, all these thermal and dynamic processes occur simultaneously, resulting in a very, very chaotic microstructure. Defects such as pores and irregularities in the atomic structure will be observed, which are usually considered as defects with deteriorating strength. If you want to make something from steel, such as an engine cylinder block, you wouldn't want to see this microstructure because it greatly weakens the strength of the material.

However, their findings are on the contrary, weakening the strength defects of metal components on a larger scale actually enhances nanoscale components.

Researchers believe that this is one of the first demonstrations of 3D printing of nanoscale metal structures. This process can be used to manufacture many useful components, such as catalysts for hydrogen; Electrodes for storing carbon free ammonia and other chemicals; And the basic components of devices such as sensors, micro robots, and heat exchangers.

Source: Sohu


Ähnliche Empfehlungen
  • China University of Science and Technology has made progress in the study of the regulatory mechanism of thermally induced delayed fluorescence

    Recently, Professor Zhou Meng's research group at the University of Science and Technology of China collaborated with Professor Fu Hongbing's team at the Capital Normal University to reveal the mechanism by which aggregation effects regulate the luminescent properties of thermally delayed fluorescent materials. The research findings, titled "Aggregation Enhanced Thermally Activated Delayed Fluoros...

    2024-06-28
    Übersetzung anzeigen
  • Laser engraving: Researchers have created a revolutionary technology

    Recently, a group of researchers from the University of Cambridge developed an innovative method of using high-energy lasers to improve 3D printing of metals. This discovery has the potential to change the way we design and manufacture complex metal objects.3D printing has completely changed the landscape of the manufacturing industry. However, it faces obstacles, especially in terms of the charac...

    2023-11-24
    Übersetzung anzeigen
  • Three core processes of laser soldering support the development of PCB electronics industry

    In the field of modern electronic manufacturing, PCB (printed circuit board) serves as the carrier of electronic components. In its manufacturing process, laser soldering technology has become a key link in PCB electronic manufacturing due to its advantages of high precision, high efficiency, and low thermal impact. This article will explore the application of laser soldering technology and its ma...

    2024-04-15
    Übersetzung anzeigen
  • ALPD laser projection technology enters the Middle East market

    With the continuous growth of user numbers and usage duration, the quality and reliability of the ALPD laser projection solution independently developed by the global laser display leader Guangfeng Technology (688007. SH) have been increasingly recognized by more and more users.It is reported that VOX Cinemas, a well-known cinema line in the Middle East, has also joined the ALPD laser projection s...

    2024-08-07
    Übersetzung anzeigen
  • Laser Photonics Corporation receives MF-1020 order

    Recently, Laser Photonics Corporation (LPC) announced that it has partnered with Foon Technologies to receive its second order for the DefenseTech MRL (MF-1020) handheld cleaning system, which was facilitated by a distributor.The DTMF-1020 air-cooled handheld pulse laser cleaning equipment adopts dual axis technology, simplifying the maintenance process. The system will be used by the Navy Command...

    02-27
    Übersetzung anzeigen