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Phase transition of random plaquette models
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【数学之美-杰出学者讲坛】2024年第6期 || Some recent results on conformally in...
报告题目:
Relaxor Ferroelectric Materials: Design and Application
 报告人:
Prof. Shujun Zhang
Shujun Zhang is Professor at ISEM, AIIM, University of Wollongong, prior to
which, he was Professor at MatSE and Senior Scientist at Materials Research
Institute of The Pennsylvania State University, USA.
报告时间:
2019-12-09 10:00
报告地点:
高压馆205A
主办单位:
电机系
  简介:

Perovskite ferroelectric materials are at the heart of numerous electronic devices,

such as imaging transducer, piezoelectric sensors, energy harvesting and energy

storage capacitors, to name a few.

Relaxor-PT ferroelectrics show superior dielectric/piezoelectric properties,

outperforming conventional ferroelectric PZTs, which greatly benefit medical

ultrasound imaging. The good properties of relaxor-PT based materials are inherently

associated with their unique local structural heterogeneity: the existence of nanoscale

heterogeneous regions that coexists with normal ferroelectric domains. The

contribution of these local structures has been theoretically modelled to be the origin

of the ultrahigh dielectric and piezoelectric activities of relaxor based perovskite

ferroelectric crystals, accounting for 50-80% of their respective room temperature

values. Based on the paradigm, recent developments have experimentally confirmed

that modest changes in the polarizability of local structure, can be regarded as “seeds”

to further enhance the dielectric properties of ABO3 perovskite solid solutions. The

modified polycrystalline ceramics and crystals exhibit ultrahigh dielectric and

piezoelectric properties, with high piezoelectric coefficient of 4000 pC/N. In addition,

the energy storage performance of the local structure tuned perovskite ferroelectrics is

also greatly enhanced, with energy density of >9 J/cc (20 microns ceramic layer) and

energy efficiency of >90%. The relationship between local structure and macroscopic

properties has been established, try to understand the impact of local structure on

dielectric properties, to explore high performance ferroelectric materials for energy

harvesting and energy storage applications.


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