Issue 45, 2022

Ultra-high piezoelectric properties and labyrinthine-domain structure in (K,Na)(Ta,Nb)O3 with phase boundaries

Abstract

(K,Na)NbO3-based materials exhibit high potential for applications in electronic devices. Generally, to improve piezoelectric properties to meet the requirements of applications, a polymorphic phase transition boundary is required. However, because of the difficulty in growing potassium sodium niobate-based single crystals, with which the intrinsic characteristics of the material system can be best investigated, there are few studies on the origin of the high performance. Here, a KNTN single crystal with K/Na and Ta/Nb composition gradients was grown successfully via the top-seed solution growth method. Samples with compositions of K0.41Na0.59Ta0.41Nb0.59O3 (KNTN41), K0.49Na0.51Ta0.34Nb0.66O3 (KNTN34), and K0.59Na0.41Ta0.28Nb0.72O3 (KNTN28) were cut along the (001)PC direction. The KNTN41 sample exhibited an excellent piezoelectric coefficient (d33 = 565 pC Nāˆ’1), which originated from the domain density observed via a polarized light microscope. In addition, the local domain patterns of the three samples observed via a piezoresponse force microscope exhibit different characteristics. In KNTN41 with a PPT boundary, the domain construction exhibits a labyrinthine-domain structure, whose high domain activity is the origin of its high piezoelectric properties.

Graphical abstract: Ultra-high piezoelectric properties and labyrinthine-domain structure in (K,Na)(Ta,Nb)O3 with phase boundaries

Supplementary files

Article information

Article type
Paper
Submitted
17 Aug 2022
Accepted
22 Sep 2022
First published
22 Sep 2022

CrystEngComm, 2022,24, 7944-7949

Ultra-high piezoelectric properties and labyrinthine-domain structure in (K,Na)(Ta,Nb)O3 with phase boundaries

X. Meng, X. Huang, B. Xing, X. Sun, M. Liu and H. Tian, CrystEngComm, 2022, 24, 7944 DOI: 10.1039/D2CE01125E

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