Giant energy storage and power density negative capacitance superlattices.
basic_science · Level V
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- Record sourced from PubMed, PMID 38593860.
- Also identified by DOI 10.1038/s41586-024-07365-5.
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Abstract
Dielectric electrostatic capacitors<sup>1</sup>, because of their ultrafast charge-discharge, are desirable for high-power energy storage applications. Along with ultrafast operation, on-chip integration can enable miniaturized energy storage devices for emerging autonomous microelectronics and microsystems<sup>2-5</sup>. Moreover, state-of-the-art miniaturized electrochemical energy storage systems-microsupercapacitors and microbatteries-currently face safety, packaging, materials and microfabrication challenges preventing on-chip technological readiness<sup>2,3,6</sup>, leaving an opportunity for electrostatic microcapacitors. Here we report record-high electrostatic energy storage density (ESD) and power density, to our knowledge, in HfO<sub>2</sub>-ZrO<sub>2</sub>-based thin film microcapacitors integrated into silicon, through a three-pronged approach. First, to increase intrinsic energy storage, atomic-layer-deposited antiferroelectric HfO<sub>2</sub>-ZrO<sub>2</sub> films are engineered near a field-driven ferroelectric phase transition to exhibit amplified charge storage by the negative capacitance effect<sup>7-12</sup>, which enhances volumetric ESD beyond the best-known back-end-of-the-line-compatible dielectrics (115 J cm<sup>-3</sup>) (ref. <sup>13</sup>). Second, to increase total energy storage, antiferroelectric superlattice engineering<sup>14</sup> scales the energy storage performance beyond the conventional thickness limitations of HfO<sub>2</sub>-ZrO<sub>2</sub>-based (anti)ferroelectricity<sup>15</sup> (100-nm regime). Third, to increase the storage per footprint, the superlattices are conformally integrated into three-dimensional capacitors, which boosts the areal ESD nine times and the areal power density 170 times that of the best-known electrostatic capacitors: 80 mJ cm<sup>-2</sup> and 300 kW cm<sup>-2</sup>, respectively. This simultaneous demonstration of ultrahigh energy density and power density overcomes the traditional capacity-speed trade-off across the electrostatic-electrochemical energy storage hierarchy<sup>1,16</sup>. Furthermore, the integration of ultrahigh-density and ultrafast-charging thin films within a back-end-of-the-line-compatible process enables monolithic integration of on-chip microcapacitors<sup>5</sup>, which can unlock substantial energy storage and power delivery performance for electronic microsystems<sup>17-19</sup>.