Lead‐Free High Permittivity Quasi‐Linear Dielectrics for Giant Energy Storage Multilayer Ceramic Capacitors with Broad Temperature Stability

Author:

Wang Xinzhen12,Song Xiaojie2,Fan Yongbo1,Li Linhao13,Wang Dawei14,Feteira Antonio5,Lu Zhilun6,Sinclair Derek C.1,Wang Ge7ORCID,Reaney Ian M.1

Affiliation:

1. Department of Materials Science and Engineering University of Sheffield Sheffield S1 3JD UK

2. School of Materials Science and Engineering Shandong University of Science and Technology Qingdao 266590 China

3. School of Mathematics and Physics Beijing University of Chemical Technology Beijing 100013 China

4. School of Instrumentation Science and Engineering Harbin Institute of Technology Harbin 150080 China

5. Materials and Engineering Research Institute Sheffield Hallam University Sheffield S1 1WB UK

6. School of Chemical and Process Engineering University of Leeds Leeds LS2 9JT UK

7. Department of Materials University of Manchester Manchester M13 9PL UK

Abstract

AbstractElectrostatic energy storage capacitors are essential passive components for power electronics and prioritize dielectric ceramics over polymer counterparts due to their potential to operate more reliably at > 100 ˚C. Most work has focused on non‐linear dielectrics compositions in which polarization (P)/electric displacement (D) and maximum field (Emax) are optimized to give values of energy density, 6≤U≤21 J cm−3. In each case however, either saturation (dP/dE = 0, AFE) or “partial” saturation (dP/dE → 0, RFE) of P limits the value of U which can be achieved before breakdown. It is proposed that U can be further improved with respect to relaxors (RFEs) and anti‐ferroelectrics (AFEs) by designing high permittivity quasi‐linear dielectric (QLD) behaviour in which dP/dE remains constant up to ultrahigh Emax. QLD multilayer capacitor prototypes with dielectric layers composed of 0.88NaNb0.9Ta0.1O3‐0.10SrTiO3‐0.02La(Mg1/2Ti1/2)O3 deliver room temperature U ≈ 43.5 J cm−3, supporting an extremely‐large Emax ≈ 280 MV m−1, both of which exceed current state‐of‐art by a factor of two for devices based on powder, tape‐cast technology. Importantly QLD capacitors exhibit scant variation in U (≈15 J cm−3) up to > 200 ˚C and robust resistance to cyclic degradation, offering a promising new approach for the development of sustainable technology.

Funder

Leverhulme Trust

China Scholarship Council

Publisher

Wiley

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