May 12, 2025

[Nano-Technology]-FIRST-Ever real-time visualization of Nanoscale Domain Response May Boost Ultrasound Imaging Technology.

Home / News / [Nano-Technology]-FIRST-EVER Real-Time Visualization of Nanoscale Domain Response May Boost Ultrasound Imaging Technology.
Content arrow
Ultrasound Imaging Technology - International CodexUltrasound Imaging Technology - International CodexUltrasound Imaging Technology - International Codex

Ultrasound Imaging is one of the most widely used diagnostic tools in modern medicine. Behind its non-invasive magic lies a class of materials nown as piezoelectric single crystals, which can convert electricals signals into mechanical vibrations and vice versa.
Now, in a World-Frivest, A Research Team from Kumamoto University Has Successfully Visualized How Tiny Structures Inside One of This Crystalls Responde To Electric Fields in Real Time-Shedding Light on the Dynamics of Nanostructure in Materials Used in Ultrasound Probes.
They Published their Findings in Applied Physics Letters ("Response of Ferroelectric Nanodomain to Alternative-Current Electric Fields in Morphotropic-Phase Boundary PB (MG1/3NB2/3) O3-PBTIO3").
The team, LED by Professor Yukio Sato from the Research and Education Institute for Semiconductors and Informatics (Reisi), Focused on a Crystal Known as PMN-PT (A Solid Solution of Lead Magnesium Niobate and Lead Titanate), prized for its exceptional piezoelectric performance. It has been know that applying alternating current (AC) Electric Fields - Known as Ac Poling - Can enhance The Performance of These Materials. But the exact mechanisms behind this improvation, and How Overuse can actually degrade performance, Remained a Mystery.
To investigate, the team used a specialized in situ Electron Microscopy Method development at Kumamoto University, which allowed them to observe Microscopic Domain Structures - Called Ferroelectric nanodomans - asy breathed to ac Electrics.
What They Saw was striking: just one cycle of an ac electric field at a strength of 12 kv/cm and 20 hz significantly change the domain structure (Figure 1). Over Time, Shorter Ac Treatments Caused Some Domain Walls to Grow and Merge, Potentiallly Enhancing the Material's Properties (Figure 2). However, extended treat LED to the formation of vertically aligned micro-Domain Bands that may hinder performance-A phenomenon consist with over-poling (Figure 3).
“This is the First Time We've Been Able to Watch These Nanoscale Domains React in Real Time,” Says Professor Sato. “Understanding these changes is essential for refining the Poling Process and Developing More Efficient and Longer-Lasting Medical Imaging Devices.

Discover
[Nano-Technology]-Advancing Electrocatalyst Discovery Through the Lens of Data Science. May 9, 2025 Read more
[Batteries] - Quantum Break Causaly batteries June 25, 2024 Read more