Metal-Clad InP Cavities for Nanolasers on Si
Preksha Tiwari, Svenja Mauthe, et al.
IPC 2020
The shape recovery ability of shape-memory alloys vanishes below a critical size (~50 nm), which prevents their practical applications at the nanoscale. In contrast, ferroic materials, even when scaled down to dimensions of a few nanometers, exhibit actuation strain through domain switching, though the generated strain is modest (~1%). Here, we develop freestanding twisted architectures of nanoscale ferroic oxides showing shape-memory effect with a giant recoverable strain (>8%). The twisted geometrical design amplifies the strain generated during ferroelectric domain switching, which cannot be achieved in bulk ceramics or substrate-bonded thin films. The twisted ferroic nanocomposites allow us to overcome the size limitations in traditional shape-memory alloys and open new avenues in engineering large-stroke shape-memory materials for small-scale actuating devices such as nanorobots and artificial muscle fibrils.
Preksha Tiwari, Svenja Mauthe, et al.
IPC 2020
Philipp Staudinger, Svenja Mauthe, et al.
Nanotechnology
Katarzyna E. Hnida-Gut, Marilyne Sousa, et al.
Frontiers in Chemistry
Yu Kyoung Ryu, Colin D. Rawlings, et al.
ACS Nano