4.6 Article

Significantly enhanced energy storage performance of rare-earth-modified silver niobate lead-free antiferroelectric ceramics via local chemical pressure tailoring

Journal

JOURNAL OF MATERIALS CHEMISTRY C
Volume 7, Issue 6, Pages 1551-1560

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c8tc05458d

Keywords

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Funding

  1. National Natural Science Foundation of China (NSFC) [51872312, 61475176, 11774366]
  2. Natural Science Foundation of Shanghai [18ZR1444900]

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Silver niobate (AgNbO3) is considered as one of the most promising lead-free replacements for lead-containing antiferroelectric (AFE) ceramics, and has been drawing progressively more attention because of its relatively high energy storage density. However, weak ferroelectricity in pure AgNbO3 exerts a negative impact on the energy storage performance, thus impeding the application of AgNbO3-based ceramics in high-power systems. In this study, an A-site doping strategy was employed to suppress the ferroelectric distortion and boost the AFE distortion of AgNbO3, based on local chemical pressure tailoring. An ultrahigh recoverable energy density (W-rec) of 4.5 J cm(-3) was achieved in Ag0.88Gd0.04NbO3 ceramics, which is superior to that of other reported lead-free systems. The enhancement of energy storage performance is ascribed to two reasons: first, antiferroelectricity could be boosted by smaller ions and suitable vacancies on A-sites, evidenced by X-ray diffraction patterns, Raman spectroscopy, and selected-area electron diffraction measurements. Moreover, the decreasing freezing temperature (T-f) and the increasing forward switching field (E-F) as well as backward switching field (E-A) with the increment of the gadolinium (Gd) content also confirmed the enhanced antiferroelectricity in Gd-doped AgNbO3 ceramics. Second, the introduction of Gd2O3 could effectively decrease the grain size and increase the dielectric breakdown strength (DBS = 290 kV cm(-1)). The performance due to local chemical pressure tailoring makes Gd-doped AgNbO3 materials the most promising energy storage lead-free ceramics for dielectric energy storage capacitors.

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