Physicist Matt Graham and his team have pulled off something no other lab in the world can do: detect all the different types of atomic-scale defects that make transistors made from amorphous semiconductors tick.
Using a laser-based technique they developed, one so sensitive it can spot a single missing oxygen atom, the group has opened a new window into how next-generation memory materials behave. The work, funded by Samsung Electronics, centers on transistors used in DRAM, the memory chips found in most computers.
The breakthrough comes at a critical moment for the semiconductor industry. As artificial intelligence and other data-intensive technologies place increasing demands on computer memory, researchers are searching for alternatives to silicon that are cheaper, more energy efficient and capable of powering future chip designs. But until now, engineers have no reliable way to measure the relative concentrations of the different atomic defects that determine how transistors made from these materials perform.
Graham and his team published their results in Advanced Functional Materials, a top-tier, high-impact scientific journal.
Their approach gives the semiconductor industry a powerful new tool for improving transistors, the tiny switches that control electrical current in a chip, by showing engineers why some perform better than others. The main appeal of their method is that it is conducted on live transistors used for computer memory and display panels.
What is an amorphous semiconductor?
Amorphous semiconductors are a newer class of semiconductors that don’t have any crystalline order, a completely random arrangement of atoms, rather than a repeating structure. Silicon, by contrast, has a diamond cubic crystal structure, meaning each atom is covalently bonded to its four nearest neighbors.
IGZO, the specific semiconductor material Graham works on, is made of indium gallium zinc oxide. The material was originally prized for a different reason entirely: it's transparent, allowing light to pass through it. That’s why IGZO has been commonplace in smartphone and TV displays for roughly two decades. Only recently has it been considered as a potential material for computing.





