The indium-gallium-arsenide transistor (above) has a feature length of 60 nanometers, similar to today’s mass-produced silicon transistors. However, it’s more than twice as fast.
Jesús del Alamo

Business

Maintaining Moore's Law without Silicon

Alternative semiconductors may be the key to shrinking microprocessors and improving performance.

  • Wednesday, December 20, 2006
  • By Kate Greene

At the International Electron Device meeting in San Francisco last week, MIT scientists presented research that revealed a possible silicon-free future for electronics. The team showed that a transistor made of a compound semiconductor called indium gallium arsenide could operate more than two times faster than a silicon transistor of the same size. The findings could keep Moore's Law alive after silicon has reached its limit, says Jesús del Alamo, professor of electrical engineering and lead researcher on the project.

First postulated by Gordon Moore, of Intel, Moore's Law holds that the number of transistors on a chip will double every two years. "There are some people who believe they can get more mileage out of silicon," says del Alamo. "But there are other people who believe that [pushing silicon] looks difficult, and the better approach is to look for different material with much better properties."

One problem with silicon, he says, is that it is not the best-performing semiconductor for making transistors: electrons in silicon move slowly compared with those in compound semiconductors. And another issue involves a transistor component called a "gate," a sort of switch that controls the flow of electrons. On silicon transistors, gates are made of an insulating material called silicon dioxide that gets thinner with each generation of microprocessor. As the silicon-dioxide layer thins, it loses its insulating properties, and electrons tunnel through it, resulting in power dissipation and excess heat.

"Moore's Law is predicated on the notion that, as transistors get smaller, they also get better," says del Alamo. "But what we see coming ahead with conventional silicon design is that, as you make [transistors] smaller, they're not getting better; they're getting worse."

Advertisement

Compound semiconductors are, for del Alamo, an attractive alternative because "all things being equal, they allow you to get more performance for the same physical dimensions and voltage." Essentially, he says, as the device shrinks, the performance loss of transistors made of compound semiconductors is less severe than those of silicon because there was so much more performance to begin with.

The MIT team's most recent result is a transistor that replaces silicon with indium gallium arsenide, and the gate material, silicon dioxide, with indium aluminum arsenide. Crucially, the length of the gate is 60 nanometers, which is comparable to today's mass-produced silicon chips (with gate dimensions of 65 nanometers). The new transistors can carry 2.5 times more electrical current than the comparable silicon transistors, translating into faster operation.

Using these materials is not entirely unique, del Alamo says. A number of other universities--including University of Illinois at Urbana-Champaign; University of California, Santa Barbara; Purdue University; and University of Texas at Austin--are looking at similar approaches. However, he adds, his group "did a lot of things right" in order to get such high performance at such small dimensions. The major advance, he says, is that his group developed a technology to thin down the insulating material, indium aluminum arsenide, to the point that it is extremely thin but still avoids leaking much electrical current.

Print

Related Articles

A New and Improved Moore's Law

Under "Koomey's law," it's efficiency, not power, that doubles every year and a half.

A New Superconductor

Researchers investigate why iron arsenide materials become superconducting at relatively high temperatures.

Intel Looks Beyond Silicon

New nonsilicon transistors could be integrated into existing chip-making processes.

To comment, please sign in or register

Forgot my password

Advertisement

MAGAZINE

Can We Build Tomorrow's Breakthroughs?

Manufacturing in the United States is in trouble. That's bad news not just for the country's economy but for the future of innovation.

Videos

Consumer-Driven Disruptions

More

Technology Review Lists

TR50

Our list of the 50 most innovative companies, including the following:

Lattice Power

Siemens

Applied Materials

iRobot

More

Advertisement

Facebook

Advertisement