• Chinese Optics Letters
  • Vol. 19, Issue 11, 111602 (2021)
Quanxin Yang1, Xiaojin Li1, Hongliang Liu1、2、*, Yingying Ren3, and Pengfei Wu1、4、**
Author Affiliations
  • 1Tianjin Key Laboratory of Micro-scale Optical Information Science and Technology, Institute of Modern Optics, Nankai University, Tianjin 300350, China
  • 2State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, China
  • 3Shandong Provincial Engineering and Technical Center of Light Manipulations & Shandong Provincial Key Laboratory of Optics and Photonic Device, School of Physics and Electronics, Shandong Normal University, Jinan 250358, China
  • 4Tianjin Key Laboratory of Optoelectronic Sensor and Sensing Network Technology, Tianjin 300350, China
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    DOI: 10.3788/COL202119.111602 Cite this Article Set citation alerts
    Quanxin Yang, Xiaojin Li, Hongliang Liu, Yingying Ren, Pengfei Wu. Field-induced transformation of ferroelectric domain states in KTN crystal[J]. Chinese Optics Letters, 2021, 19(11): 111602 Copy Citation Text show less
    (a) Sketch of the experiment setup; coordinate axes are defined here. (b)–(f) Micrographs of the KTN sample under different conditions. (b) The sample in the single domain state at 25°C or 28°C. The sample in the multiple domain state (c), (d) at 25°C and (e), (f) at 28°C under positive/negative electric fields. The scale bar in (b) is 100 µm. The spots on the sample surface assure the measurement position to be the same.
    Fig. 1. (a) Sketch of the experiment setup; coordinate axes are defined here. (b)–(f) Micrographs of the KTN sample under different conditions. (b) The sample in the single domain state at 25°C or 28°C. The sample in the multiple domain state (c), (d) at 25°C and (e), (f) at 28°C under positive/negative electric fields. The scale bar in (b) is 100 µm. The spots on the sample surface assure the measurement position to be the same.
    Raman spectra of the KTN sample (a) at 25°C and (c) at 28°C under zero/positive/negative electric fields. The enlarged Raman spectra around the TO3 modes corresponding to the temperatures of (b) 25°C and (d) 28°C.
    Fig. 2. Raman spectra of the KTN sample (a) at 25°C and (c) at 28°C under zero/positive/negative electric fields. The enlarged Raman spectra around the TO3 modes corresponding to the temperatures of (b) 25°C and (d) 28°C.
    Relative permittivity varying with increasing electric field of the KTN sample (a) at 25°C and (b) at 28°C under positive and negative electric fields.
    Fig. 3. Relative permittivity varying with increasing electric field of the KTN sample (a) at 25°C and (b) at 28°C under positive and negative electric fields.
    Diagram of the field-induced transition process from the single domain state to the multiple domain state. (a) Sample in the single domain state. (b) Under a relatively low electric field, the state transition begins. (c) Under a relatively high electric field, the polarization of the field-induced ferroelectric domain can bear comparison with the polarization of the spontaneous ferroelectric domain; as a result, domain boundaries form. (d) Under the reversed electric field, the domain boundaries rotate 90°.
    Fig. 4. Diagram of the field-induced transition process from the single domain state to the multiple domain state. (a) Sample in the single domain state. (b) Under a relatively low electric field, the state transition begins. (c) Under a relatively high electric field, the polarization of the field-induced ferroelectric domain can bear comparison with the polarization of the spontaneous ferroelectric domain; as a result, domain boundaries form. (d) Under the reversed electric field, the domain boundaries rotate 90°.
    Quanxin Yang, Xiaojin Li, Hongliang Liu, Yingying Ren, Pengfei Wu. Field-induced transformation of ferroelectric domain states in KTN crystal[J]. Chinese Optics Letters, 2021, 19(11): 111602
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