Abstract
Ultrasound-driven triboelectric nanogenerators (UD-TENGs) have emerged as promising ultrasonic energy converters for underwater and biomedical applications. Nevertheless, prevailing planar UD-TENGs exhibit pronounced directivity, which necessitates a prescribed deployment direction or complex ultrasound alignment strategies, and thus restricts both the output performance and practicality of these devices. This work introduces an ultrasound-driven spherical triboelectric nanogenerator (UD-STENG) that, for the first time, achieves 3D-omnidirectional ultrasonic energy harvesting (UEH) via capacitive triboelectric technology. By conformally integrating triboelectric layers onto spherical surfaces through vacuum forming, the UD-STENG establishes a spatially symmetric ultrasonic-triboelectric interface and delivers near-isotropic outputs regardless of the ultrasound incidence directions, generating average output powers from 0.42 to 2.92 mW over ultrasound intensities ranging from 0.05 to 3.0 W cm−2. As a new UEH mode, the UD-STENG maintains effective operation under dynamic harvesting conditions and can be simultaneously driven by ultrasound sources from multiple directions for enhanced output. In implantable demonstrations, the UD-STENG operates independently of implantation directions and further supports practical functions, including real-time wireless data transmission and on-demand modulated pulse delivery. These advances expand the spatial operating window of UD-TENGs and lay the foundation for next-generation 3D triboelectric ultrasonic energy converters.
| Original language | English |
|---|---|
| Journal | Advanced Functional Materials |
| DOIs | |
| State | Accepted/In press - 2026 |
Keywords
- 3d-omidirectional
- conformal integration
- energy conversion and generation
- triboelectric nanogenerator
- ultrasound energy harvesting
- vacuum form
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