NW
← Newsroom
ElectronicsApril 26, 2023 · 2 min read

Controlling materials properties through nanoscale patterning

Argonne National Laboratory

Schematic representation of electron interference due to nanoscale patterning of titania thin film. @ Argonne National Laboratory
Schematic representation of electron interference due to nanoscale patterning of titania thin film. @ Argonne National Laboratory

Scientists have developed a new way to control the electronic properties of materials. They created a nanoscale pattern of holes on a thin film of metal oxide known as titania. This noticeably improved the flow of electrons and inhibited the flow of ions in the material. Just like ripples in a pond, the electrons traveling in waves interfered to create a unique pattern. This increased the ability of titania to conduct electricity. The researchers used direct imaging of the local electric fields to gain insights into this phenomenon.

The Impact


Thin oxide films are found everywhere in modern technology. They appear in computers, cell phones, LEDs, and other electronic devices. This research demonstrated how to use nanoscale patterning to control the electrical properties of titania. Researchers can harness this control for the next generation of microelectronics applications and quantum information processing. In both these areas, scientists are taking advantage of the exotic behavior of atoms at the small scale. The outcome will be transformative changes in the field of information processing on a practical scale.

Summary


Metal oxide thin films have attractive features with practical applications, especially in electronics. Titania, for example, displays excellent oxygen vacancy and electron transport properties. Scientists at Argonne National Laboratory, the University of Chicago, and Technion − Israel Institute of Technology discovered a means of exploiting these features.

Normally, when an electric current is applied to an oxide like titania, electrons flow through the material in a simple wave. At the same time, ions — or charged particles — also move around. These processes give rise to the material’s electronic transport properties, such as conductivity and resistance, which are exploited in the design of next-generation microelectronics. Researchers fabricated thin films of titania and patterned them with holes that were 10 to 20 nanometers apart. Through the investigations by transmission electron microscopy, electrical property measurements and modeling, the researchers demonstrated that the geometric pattern restricted the motion of oxygen and ions in the material and increased the electron motion. As a result, the conductivity of the material increased. This research shows that nanoscale confinement is a way to control quantum interference.

Reference
Mesoscale Confinement Effects and Emergent Quantum Interference in Titania Antidot Thin Films

Barrows, Frank ; Arava, Hanu ; Zhou, Chun ; Nealey, Paul ; Segal-Peretz, ; Liu, Yuzi ; Bakaul, Saidur ; Phatak, Charudatta ; Petford-Long, Amanda

https://www.osti.gov/biblio/1828033

More news

ElectronicsSep 28 · 3 min read

Dongguk University researchers develop battery-free flexible device for neuromorphic sensing

The proposed TENG-driven g-IGT is a flexible, self-powered neuromorphic device capable of reproducing multiple memory states and spike-rate-dependent learning Neuromorphic devices, which are designed to emulate aspects of biological neural networks, are promising candidates for developing low-power and intelligent sensing technologies, including wearable applications. Among the device architectures explored for neuromorphic computing, graphene-channel ion-gel-gated transistors (g-IGTs) are...

ElectronicsAug 17 · 3 min read

Rice researchers show graphene nanowrinkles can reshape electricity

Rice University researchers have shown that sub-nanometer wrinkles in graphene generate flexoelectric charge separation, reshaping local electrical behavior through curvature alone. Extreme bending produces polarization far stronger than in larger systems and may enable geometry-controlled electronics without chemical doping. Published in Advanced Materials.

ElectronicsJul 16 · 3 min read

Researchers Extend the Limits of Twistronics. Literally

Researchers at NC State have extended twistronics beyond van der Waals materials into strongly bonded crystalline oxides. By stacking sodium niobate membranes with twist angles controlled down to 0.1 degrees, and confirming results via synchrotron X-ray diffraction, the team found interlayer bonds distort the atomic lattice, shifting phase structure and domain configuration. The technique works at near-millimeter scale, far larger than typical twistronic devices, marking a real step toward pract