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

Authors :
Xiong, Zhengwei
Zhou, Zhangyang
Liu, Yi
Fu, Zhengqian
Xu, Fangfang
Fang, Leiming
Liu, Xiaoru
Li, Jun
Jin, Ke
Gao, Zhipeng
Source :
Journal of Materials Chemistry A; 12/7/2024, Vol. 12 Issue 45, p31127-31134, 8p
Publication Year :
2024

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(Mg<subscript>1/3</subscript>Nb<subscript>2/3</subscript>)O<subscript>3</subscript>–0.75Pb(Zr<subscript>0.4</subscript>Ti<subscript>0.6</subscript>)O<subscript>3</subscript> + 0.2 wt% Li<subscript>2</subscript>CO<subscript>3</subscript> (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 cm<superscript>3</superscript> 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<superscript>−3</superscript>, 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 (R3¯c) shock-induced phase transitions. These findings provide a paradigm of multilayer design for high performance explosive-energy-conversion devices. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
12
Issue :
45
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
180985698
Full Text :
https://doi.org/10.1039/d4ta06396a