Showing posts with label Silicon. Show all posts
Showing posts with label Silicon. Show all posts

Thursday, March 14, 2013

Silicon Brains To Oversee Satellites




A beautiful and expensive sight: upwards of €6 million-worth of silicon wafers, crammed with the complex integrated circuits that sit at the heart of each and every ESA mission. Years of meticulous design work went into these tiny brains, empowering satellites with intelligence. 
The image shows a collection of six silicon wafers that contain some 14 different chip designs developed by several European companies during the last eight years with ESA’s financial and technical support. 
Each of these 20 cm-diameter wafers contains between 30 and 80 replicas of each chip, each one carrying up to about 10 million transistors or basic circuit switches.
To save money on the high cost of fabrication, various chips designed by different companies and destined for multiple ESA projects are crammed onto the same silicon wafers, etched into place at specialised semiconductor manufacturing  plants or ‘fabs’, in this case LFoundry (formerly Atmel) in France.
Once manufactured, the chips, still on the wafer, are tested. The wafers are then chopped up. They become ready for use when placed inside protective packages – just like standard terrestrial microprocessors – and undergo final quality tests.
Through little metal pins or balls sticking out of their packages these miniature brains are then connected to other circuit elements – such as sensors, actuators, memory or power systems – used across the satellite.
To save the time and money needed to develop complex chips like these, ESA’s Microelectronics section maintains a catalogue of chip designs, known as Intellectual Property (IP) cores, available to European industry through ESA licence. 
Think of these IP cores as the tiniest mission ‘building blocks’: specialised designs to perform particular tasks in space, laid down within a microchip.
These IP cores range from single ‘simpler’ functions such as decoding signals from Earth to control the satellite to highly complex computer tasks such as operating a complete spacecraft.
The latter is achieved for example by the SCOC-3 ‘spacecraft controller on a chip’ developed by ESA and Astrium, which itself combines more than 20 different IP cores from other sources, seen at the bottom of the image.
SCOC3 on silicon wafer
Once manufactured, the chips, still on the wafer, are tested. The wafers are then chopped up. They become ready for use when placed inside protective packages – just like standard terrestrial microprocessors – to undergo final quality tests.
Through little metal pins or balls sticking out of their packages these miniature brains are then connected to other circuit elements – such as sensors, actuators, memory or power systems – used across the satellite.
To save the time and money needed to develop complex chips like these, ESA’s Microelectronics section maintains a catalogue of chip designs, known as Intellectual Property (IP) cores, freely available to European industry.
Think of these IP cores as the tiniest mission ‘building blocks’: specialised designs to perform particular tasks in space, laid down within a microchip.
These IP cores range from single ‘simpler’ functions such as decoding signals from Earth to control the satellite to highly complex computer tasks such as operating a complete spacecraft.
The latter is achieved for example by the SCOC3 ‘spacecraft controller on a chip’ developed by ESA and Astrium, which itself combines more than 20 different IP cores from other sources, seen at the bottom of the image.
Each IP core is coded in a ‘hardware description language’ that can then guide the manufacturing process. Today’s state-of-the-art minimum sizes of integrated circuit tracks are measured in tens of nanometres.
Via: "ESA"

Wednesday, December 12, 2012

Taking A Step Towards Quantum Computing



Researchers from Purdue University and the University of New South Wales (UNSW) have created a working transistor that consists of a single atom on silicon crystal.

Their findings, published in the journal Nature Nanotechnology, details the tiny electronic device, which may yet prove to be the future of quantum computing.

Until now, single-atom transistors have been realized only by chance, where researchers either have had to search through many devices or tune multi-atom devices to isolate one that works.

“But this device is perfect,” says Professor Michelle Simmons, group leader and director of the ARC Centre for Quantum Computation and Communication Technology at UNSW. “This is the first time anyone has shown control of a single atom in a substrate with this level of precise accuracy.”

It is predicted that transistors will reach the single-atom level by about 2020 to keep pace with Moore’s Law, which describes an ongoing trend in computer hardware that sees the number of chip components double every 18 months.

This major advance has developed the technology to make this possible well ahead of schedule and gives valuable insights to manufacturers into how devices will behave once they reach the atomic limit, says Professor Simmons.

UNSW has a brief video on the transistor:



Via: "The Tech Herald"