4.8 Article

Flexible three-dimensional interconnected piezoelectric ceramic foam based composites for highly efficient concurrent mechanical and thermal energy harvesting

Journal

ENERGY & ENVIRONMENTAL SCIENCE
Volume 11, Issue 8, Pages -

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8ee00595h

Keywords

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Funding

  1. National Science Foundation of China [51772108, U1532146, 61675076]
  2. National Key Research and Development Program of China [2016YFB0402705]
  3. National Science Foundation [CMMI-0900692, DMR-1610430, ECCS-1610331]
  4. Analytical and Testing Center, Huazhong University of Science and Technology

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Flexible piezoelectric materials are pivotal to a variety of emerging applications ranging from wearable electronic devices, sensors to biomedical devices. Current ceramic-polymer composites with embedded low-dimensional ceramic fillers, though mechanically flexible, suffer from low piezoelectricity owing to the poor load-transfer efficiency that typically scales with the stiffness ratio of the polymer matrix to the ceramic fillers. Herein we introduce the scalable ceramic-polymer composites based on three-dimensional (3-D) interconnected piezoelectric microfoams. Comprehensive mechanics analyses reveal that the 3-D interconnected architecture presents a continuous pathway for load transfer to break the load-transfer scaling law seen in the conventional composites with low-dimensional ceramic fillers. The 3-D composite exhibits exceptional piezoelectric characteristics under multiple loading conditions (i.e., compression, stretching, and bending) and high mechanical durability under thousands of cycles. The 3-D composite also displays excellent pyroelectricity, thereby enabling concurrent thermal and mechanical energy scavenging. Our findings suggest an innovative material framework for high-performance energy harvesters and self-powered micromechanical devices.

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