Heterovalent-doping-enabled atom-displacement fluctuation leads to ultrahigh energy-storage density in AgNbO<sub>3</sub>-based multilayer capacitors.

Zhu, Li-Feng; Deng, Shiqing; Zhao, Lei; Li, Gen; Wang, Qi; Li, Linhai; Yan, Yongke; Qi, He et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

Dielectric capacitors with high energy storage performance are highly desired for next-generation advanced high/pulsed power capacitors that demand miniaturization and integration. However, the poor energy-storage density that results from the low breakdown strength, has been the major challenge for practical applications of dielectric capacitors. Herein, we propose a heterovalent-doping-enabled atom-displacement fluctuation strategy for the design of low-atom-displacements regions in the antiferroelectric matrix to achieve the increase in breakdown strength and enhancement of the energy-storage density for AgNbO<sub>3</sub>-based multilayer capacitors. An ultrahigh breakdown strength ~1450 kV·cm<sup>-1</sup> is realized in the Sm<sub>0.05</sub>Ag<sub>0.85</sub>Nb<sub>0.7</sub>Ta<sub>0.3</sub>O<sub>3</sub> multilayer capacitors, especially with an ultrahigh U<sub>rec</sub> ~14 J·cm<sup>-3</sup>, excellent η ~ 85% and P<sub>D,max</sub> ~ 102.84 MW·cm<sup>-3</sup>, manifesting a breakthrough in the comprehensive energy storage performance for lead-free antiferroelectric capacitors. This work offers a good paradigm for improving the energy storage properties of antiferroelectric multilayer capacitors to meet the demanding requirements of advanced energy storage applications.