4.8 Article

Significantly Enhanced Energy-Harvesting Performance and Superior Fatigue-Resistant Behavior in [001](c)-Textured BaTiO3-Based Lead-Free Piezoceramics

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 10, Issue 37, Pages 31488-31497

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.8b10361

Keywords

fatigue degradation; domain switching; electrical conductivity; energy harvesting; output voltage; power density; lead-free textured ceramics

Funding

  1. National Natural Science Foundation of China [51502055, 11572103, 51572056]
  2. Natural Science Foundation of Heilongjiang Province [E2015001, JC2017001]
  3. Fundamental Research Funds for the Central Universities [HIT.BRETIII.201504]

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Energy-harvesting utilizing piezoelectric materials has recently attracted extensive attention due to the strong demand of self-powered electronics. Unfortunately, low power density and poor long-term stability seriously hinder the implementation of lead-free piezoelectrics as high efficiency energy harvesters. For the first time, we demonstrate that tailoring grain orientations of lead-free ceramics via templated grain growth can effectively produce ultrahigh power generation performance and excellent endurance against electrical/mechanical fatigues. Significantly improved fatigue resistance was observed in (Ba0.94Ca0.06)(Ti0.95Zr0.05)O-3 grain oriented piezoceramics (with similar to 99% [001](c) texture) up to 10(6) bipolar cycles, attributed to the enhanced domain mobility, less defect accumulation, and thus suppressed crack generation/propagation. Interestingly, the novel energy harvesters, which were developed based on the textured ceramics with high electromechanical properties, possessed similar to 9.8 times enhancement in output power density compared to the nontextured counterpart while maintaining stable output features up to 10(6) vibration cycles. The power densities, which increased from 6.4 to 93.6 mu W/mm(3) with increasing acceleration excitation from 10 to 50 m/s(2), are much higher than those reported previously on lead-free energy harvesters. This work represents a significant advancement in piezoelectric energy-harvesting field and can provide guidelines for future efforts in this direction.

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