Showing posts with label electronics. Show all posts
Showing posts with label electronics. Show all posts

Friday, 21 December 2012

On-demand synaptic electronics: Circuits that learn and forget

Dec. 20, 2012 — Researchers in Japan and the US propose a nanoionic device with a range of neuromorphic and electrical multifunctions that may allow the fabrication of on-demand configurable circuits, analog memories and digital-neural fused networks in one device architecture.

Synaptic devices that mimic the learning and memory processes in living organisms are attracting avid interest as an alternative to standard computing elements that may help extend Moore's law beyond current physical limits.

However so far artificial synaptic systems have been hampered by complex fabrication requirements and limitations in the learning and memory functions they mimic. Now Rui Yang, Kazuya Terabe and colleagues at the National Institute for Materials Science in Japan and the University of California, Los Angeles, in the US have developed two-, three-terminal WO3-x-based nanoionic devices capable of a broad range of neuromorphic and electrical functions.

In its initial pristine condition the system has very high resistance values. Sweeping both negative and positive voltages across the system decreases this resistance nonlinearly, but it soon returns to its original state indicating a volatile state. Applying either positive or negative pulses at the top electrode introduces a soft-breakdown, after which sweeping both negative and positive voltages leads to non-volatile states that exhibit bipolar resistance and rectification for longer periods of time.

The researchers draw similarities between the device properties -- volatile and non-volatile states and the current fading process following positive voltage pulses -- with models for neural behaviour -- that is, short- and long-term memory and forgetting processes. They explain the behaviour as the result of oxygen ions migrating within the device in response to the voltage sweeps. Accumulation of the oxygen ions at the electrode leads to Schottky-like potential barriers and the resulting changes in resistance and rectifying characteristics. The stable bipolar switching behaviour at the Pt/WO3-x interface is attributed to the formation of the electric conductive filament and oxygen absorbability of the Pt electrode.

As the researchers conclude, "These capabilities open a new avenue for circuits, analog memories, and artificially fused digital neural networks using on-demand programming by input pulse polarity, magnitude, and repetition history."

Share this story on Facebook, Twitter, and Google:

Other social bookmarking and sharing tools:

Story Source:

The above story is reprinted from materials provided by International Center for Materials Nanoarchitectonics (MANA), via ResearchSEA.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

Rui Yang, Kazuya Terabe, Guangqiang Liu, Tohru Tsuruoka, Tsuyoshi Hasegawa, James K. Gimzewski, Masakazu Aono. On-Demand Nanodevice with Electrical and Neuromorphic Multifunction Realized by Local Ion Migration. ACS Nano, 2012; 6 (11): 9515 DOI: 10.1021/nn302510e

Note: If no author is given, the source is cited instead.

Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.


View the original article here

Wednesday, 19 December 2012

Developing power sources for flexible, stretchable electronics

Dec. 14, 2012 — Electronic devices become smaller, lighter, faster and more powerful with each passing year. Currently, however, electronics such as cell phones, tablets, laptops, etc., are rigid. But what if they could be made bendable or stretchy?

According to the University of Delaware's Bingqing Wei, stretchable electronics are the future of mobile electronics, leading giants such as IBM, Sony and Nokia to incorporate the technology into their products.

Beyond traditional electronics, potential stretchable applications include biomedical, wearable, portable and sensory devices, such as cyber skin for robotic devices and implantable electronics.

"Advances in soft and stretchable substrates and elastomeric materials have given rise to an entirely new field," says Wei, a mechanical engineering professor at UD.

But even if scientists can engineer stretchable electronics -- what about their energy source?

"Rechargeable and stretchable energy storage devices, also known as supercapacitors, are urgently needed to complement advances currently being made in flexible electronics," explains Wei.

Wei's research group at the University is making significant progress in developing scalable, stretchable power sources for this type of application using carbon nanotube macrofilms, polyurethane membranes and organic electrolytes.

This, he says, requires new thinking about materials processing and device manufacturing to maximize energy storage without compromising energy resources.

To reveal a stretchable supercapacitator's true performance, the Wei group examined the system's electrochemical behavior using buckled single-wall nanotube (SWNT) electrodes and an elastomeric separator.

According to Wei, the supercapacitor developed in his lab achieved excellent stability in testing and the results will provide important guidelines for future design and testing of this leading-edge energy storage device.

As they work to refine the technology, Wei has filed a provisional patent to protect his team's research. The work was recently published in Nano Letters, a journal of the American Chemical Society.

Share this story on Facebook, Twitter, and Google:

Other social bookmarking and sharing tools:

Story Source:

The above story is reprinted from materials provided by University of Delaware. The original article was written by Karen B. Roberts.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Journal Reference:

Xin Li, Taoli Gu, Bingqing Wei. Dynamic and Galvanic Stability of Stretchable Supercapacitors. Nano Letters, 2012; 12 (12): 6366 DOI: 10.1021/nl303631e

Note: If no author is given, the source is cited instead.

Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.


View the original article here

Materials scientists prevent wear in production facilities in the electronics industry

Oct. 4, 2012 — Printed circuit boards (PCBs) are core components in every mobile phone, television and computer. PCBs can be thought of as acting like a nervous system, forming a network that links the microchips mounted on the board and supplies them with power. One of the most important methods of fabricating large PCBs involves the precision electroplating of copper onto the PCB panel immersed in an acidic electrolyte bath. However, some of the titanium parts used in the electroplating process suffer substantial wear within a short space of time. Replacing these parts generates significant costs.

A materials science research team at Saarland University has now developed a process that enables the damaged components to repair themselves while the PCB fabrication process continues. Atotech, the company responsible for manufacturing almost 90 percent of all PCBs used in mobile phones worldwide, is now saving several millions of euros each year as a result. The new process, for which a patent application has been filed, was developed jointly by the Saarbrücken research group led by Professor Mücklich and the project group from Atotech.

Recently, the Steinbeis Foundation in Stuttgart has chosen to honour the team's achievements by conferring the Steinbeis Transfer Award 2012, which is bestowed annually for an outstanding example of technology transfer into the industrial sector.

Electronic components are becoming ever smaller and ever more powerful while at the same time having to be connected with one another in increasingly complex ways. "A printed circuit board today is an extremely complicated three-dimensional structure, that essentially acts like a central nervous system connecting all the various individual components," explains Professor Frank Mücklich, Professor of Functional Materials at Saarland University and Director of the Steinbeis Material Engineering Center Saarland (MECS). The method typically used for high-precision fabrication of large-surface PCBs is acid copper electroplating, in which the PCB panel is immersed in an acidic solution of copper ions, the electrolyte. A very high electric current flows through the board transporting copper ions in the electrolyte to the surface of the PCB and into the minute holes, known as vias, into which the leads or contact pins of the electronic components will later be inserted. "As a result, the PCB is covered with a uniform extremely thin coating of copper whose thickness is less than one tenth of the diameter of a human hair," says Mücklich.

The PCB panels are held in solution by acid-resistant titanium PCB plating clamps that guide the current onto the PCB panel. "These clamps have to withstand an enormous amount of electrical energy over an area of only a few square millimetres. The extremely powerful current generates sparks that are similar to a lightning discharge and that damage the clamps by eroding their surface each time the panels undergo plating," says Mücklich, describing the fundamental problem of modern electroplating systems. The Saarbrücken material scientists examined the damage mechanisms using not only electron microscopy, but also tomographic techniques that allow imaging down to the nano- and even atomic scales. "We came to realise that with spark temperatures of around several thousands of degrees the previous strategy of trying to develop materials with ever greater resistance to these extremely hot and destructive sparks was not going to prove successful," explains Mücklich. Even the use of very expensive precious metals, such as platinum, only delays but does not stop the onset of damage. Working together with engineers from Atotech, the material scientists and technologists at Saarland University came up with an extremely economical and reliable solution. According to Mücklich: "The new process is similar to the mechanism used to regenerate human skin when wounds heal."

The damaged clamps migrate in a circular path within the production facility as if on a carousel. And, like the PCBs that they hold, a new thin layer of copper is plated onto them. "We are essentially creating a recyclable wear layer on the clamps. This has the effect of immediately repairing any damage to the clamp surface and, quite incidentally, also increases the conductivity of the clamps several-fold," says Mücklich. The new process means that there is no longer any need for the complex procedure of removing and replacing the clamps at Atotech's many production facilities. The production process can therefore continue uninterrupted. "Atotech is the market leader in this field, operating more than 600 production facilities of this type around the world. This new development will result in savings of several millions of euros each year," says graduate engineer Bernd Schmitt, who has been Atotech's coordinator on the research project. Atotech and the scientists and engineers from Saarland University have now filed jointly for a patent application.

The process was developed by materials scientist Frank Mücklich and his research assistants Dominik Britz and Christian Selzner in the space of just one year. To enable the research to be conducted, Atotech installed a purpose-built (and very heavy) test facility at the Steinbeis Research Centre that is located on the Saarbrücken campus. In the first stage of the project, the researchers used new three-dimensional imaging techniques to study what goes on inside the titanium contacts during electroplating. "We used high-resolution electron microscopy as well as nanotomography and atom-probe tomography. The images recorded with these techniques are then assembled in a computer to create a precise spatial representation -- even down to the level of individual atoms," explains Professor Mücklich.

In their search for more robust materials, the research team also used laser cladding to deposit microscopic layers of different materials onto the titanium contacts. They also employed laser interference structuring techniques to modify the surface of the clamps in an effort to make them more robust. While these techniques certainly improved the properties of the original titanium, the improvements were not sufficient to permanently withstand the enormous stresses to which the clamps are subjected during the PCB electroplating process. "This led us to the idea of using copper as a sacrificial layer that can be continuously replenished during the PCB production process. The advantages of this approach are that copper is far cheaper than the other materials that had been tested and that it was already present in the system. It was this that ultimately led to the successful conclusion of the research project," explains Frank Mücklich. In recognition of their efforts, Professor Mücklich, together with research assistants Dominik Britz and Christian Selzner and the project members from Atotech, will receive the Transfer Award, which is conferred by the Steinbeis Foundation and worth up to 60,000 euros, at a ceremony in Stuttgart.

Share this story on Facebook, Twitter, and Google:

Other social bookmarking and sharing tools:

Story Source:

The above story is reprinted from materials provided by Saarland University, via EurekAlert!, a service of AAAS.

Note: Materials may be edited for content and length. For further information, please contact the source cited above.

Note: If no author is given, the source is cited instead.

Disclaimer: Views expressed in this article do not necessarily reflect those of ScienceDaily or its staff.


View the original article here