University of California, Riverside

A multi-institutional team of scientists in the United States, led by physicist Peng Wei at the University of California, Riverside, has developed a new superconductor material that could potentially be used in quantum computing and be a candidate “topological superconductor.”
Topology is the mathematics of shape. A topological superconductor uses a delocalized state of an electron or hole (a hole behaves like an electron with positive charge) to carry quantum information and process data in a robust manner.

The researchers report in Science Advances that they combined trigonal tellurium with a surface state superconductor generated at the surface of a thin film of gold. Trigonal tellurium is a chiral material, which means it cannot be superimposed on its mirror image, like our left and right hands. Trigonal tellurium is also non-magnetic. Nonetheless, the researchers observed quantum states at the interface that host well-defined spin polarization. The spin polarization allows the excitations to be potentially used for creating a spin quantum bit — or qubit.
“By creating a very clean interface between the chiral material and gold, we developed a two-dimensional interface superconductor,” said Wei, an associate professor of physics and astronomy. “The interface superconductor is unique as it lives in an environment where the energy of the spin is six times more enhanced than those in conventional superconductors.”
The researchers observed that the interface superconductor undergoes a transition under a magnetic field and becomes more robust at high field compared with low field, which suggests a transition into a “triplet superconductor,” which is more stable under a magnetic field.
Furthermore, through collaboration with scientists at the National Institute of Standards and Technology, the researchers showed that such a superconductor involving heterostructure gold and niobium thin films naturally suppresses decoherence sources from material defects such as niobium oxides that are a common challenge for niobium superconductors. They showed that the superconductor can be made into high-quality low-loss microwave resonators with a quality factor reaching 1 million.
The new technology has applications in quantum computing, a field that takes advantage of quantum mechanics to solve complex problems that classical computers or supercomputers can’t solve or can’t solve quickly enough, according to the multinational technology company IBM.
“We achieved this using materials that are one order of magnitude thinner than those typically used in the quantum computing industry,” Wei said. “The low-loss microwave resonators are critical components of quantum computing and could lead to low-loss superconducting qubits. The biggest challenge in quantum computing is to reduce decoherence or quantum information loss in a qubit system.”
Decoherence occurs when a quantum system interacts with its environment, leading to the system’s information getting mixed up with the environment. Decoherence poses a challenge for realizing quantum computers.
Unlike previous methods that require magnetic materials, the researchers’ new approach uses non-magnetic materials for a cleaner interface.
“Our material could be a promising candidate for developing more scalable and reliable quantum computing components,” Wei said.
Wei was joined in the research by his graduate students at UCR.
Reference
Signatures of a spin-active interface and a locally enhanced Zeeman field in a superconductor-chiral material heterostructure
Cliff Chen, Jason Tran, Anthony McFadden, Raymond Simmonds, Keisuke Saito, En-De Chu, Daniel Morales, Varrick Suezaki, Yasen Hou, Joe Aumentado, Patrick A. Lee, Jagadeesh S. Moodera, Peng Wei

A quantum "wave packet" (in the middle) launched from the same kind of starting point behaves differently. Even after bouncing around for a very long time, faint filament-like patterns (bright glow) are still visible, a tattoo tracing back to its early history. This lingering imprint is the "quantum birthmark" described in the study. Credit: Joonas Keski-Rahkonen, Tampere University Even the most chaotic quantum systems keep a permanent mark of their own past – a "quantum birthmark" – that...

Illustration (University of Basel, Timon Baltisberger): Biexziton decay can generate photons of very high quality if the system is specifically controlled using an optical cavity. Under these conditions, 90 per cent of the photons are indistinguishable. Working in close collaboration, researchers from Paderborn University, the University of Basel and Ruhr University Bochum have made a significant breakthrough in the field of quantum communication. In their recently published paper in the...

(a) The structure of the gate electrodes on the ZnO device used in the experiment in this paper. (b) The charge stability diagram indicating the formation of ZnO double quantum dot in few-electron regime. Researchers at Tohoku University, in collaboration with the National Institute for Materials Science (NIMS) and the University of Tokyo, have taken an important step toward semiconductor quantum computing using zinc oxide (ZnO). The team successfully demonstrated charge sensing,...