Issue 45, 2024

Ultrahigh output energy density of explosive-energy-conversion devices assembled from multilayer ferroelectric films

Abstract

Explosive-energy-conversion materials are increasingly utilized in energy, defense, and mining due to their ultra-rapid response, extra-long storage life, and enormous power density. The energy output capability and temperature stability determine the application potential of these materials. Herein, we report 0.25Pb(Mg1/3Nb2/3)O3–0.75Pb(Zr0.4Ti0.6)O3 + 0.2 wt% Li2CO3 (PMN–PZT + 2Li) multilayer films developed by cost-effective low-temperature sintering with ultrahigh output energy density and high temperature stability. The multilayer PMN–PZT + 2Li films with a volume of 0.9 cm3 could generate a current of 3156 A, exceeding that of existing ferroelectric ceramics by two orders of magnitude. The output energy density of the multilayer PMN–PZT + 2Li films is up to 3.059 J cm−3, which is the state-of-the-art value achieved so far. The temperature stability of PMN–PZT + 2Li with the energy output could be stable up to 213 °C, higher than those of most of the ferroelectrics. In situ high-pressure synchrotron X-ray diffraction revealed that the ultrahigh output energy was derived from polar rhombohedral phase (R3m) to non-polar phase (R[3 with combining macron]c) shock-induced phase transitions. These findings provide a paradigm of multilayer design for high performance explosive-energy-conversion devices.

Graphical abstract: Ultrahigh output energy density of explosive-energy-conversion devices assembled from multilayer ferroelectric films

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Article information

Article type
Paper
Submitted
09 Sep 2024
Accepted
22 Oct 2024
First published
24 Oct 2024

J. Mater. Chem. A, 2024,12, 31127-31134

Ultrahigh output energy density of explosive-energy-conversion devices assembled from multilayer ferroelectric films

Z. Xiong, Z. Zhou, Y. Liu, Z. Fu, F. Xu, L. Fang, X. Liu, J. Li, K. Jin and Z. Gao, J. Mater. Chem. A, 2024, 12, 31127 DOI: 10.1039/D4TA06396A

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