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微波烧结的BTS-BCT-BF无铅压电陶瓷的结构与电学性能

Structure and Electrical Properties of Microwave Sintered BTS-BCT-BF Lead-Free Piezoelectric Ceramics.

作者信息

Wang Tao, Ma Jian, Wu Bo, Wang Fenghua, Wang Shiyu, Chen Min, Wu Wenjuan

机构信息

Sichuan Province Key Laboratory of Information Materials and Devices Application, Chengdu University of Information Technology, Chengdu 610225, China.

Sichuan Province Key Laboratory of Information Materials, Southwest Minzu University, Chengdu 610041, China.

出版信息

Materials (Basel). 2022 Feb 27;15(5):1789. doi: 10.3390/ma15051789.

Abstract

Barium titanate (BT)-based ceramics are one of the promising piezoelectric materials for environment-friendly electro-mechanical transformation. However, high performance materials are often sintered at high temperatures, resulting in volatile components and increased energy consumption. Here, 0.82Ba(TiSn)O-(0.18-)(BaCa)TiO-BiFeO (BTS-BCT-BF) piezoelectric ceramics were prepared by microwave sintering (MWS) method, and the structure and properties were emphatically studied, aiming to reveal the regulatory mechanism of MWS on the structure and properties. Compared with conventional solid sintering (CS), the phase structure presents a similar evolution in MWS ceramics as a function of BF, while the more refined grain size and the denser structure are observed in MWS ceramics. The electrical properties (e.g., , , tan , etc.) of MWS ceramics are superior to the CS ceramics owing to the refined grain size and denser microstructure. It is worth noting that the energy storage performance (e.g., energy storage density, energy storage efficiency) significantly outperformed expectations due to the slender hysteresis loop resulting from the smaller grain and high cubic phase. Therefore, the MWS sintering mechanism can further drive practical application of BT-based ceramics.

摘要

钛酸钡(BT)基陶瓷是用于环境友好型机电转换的有前景的压电材料之一。然而,高性能材料通常在高温下烧结,导致成分挥发和能耗增加。在此,采用微波烧结(MWS)法制备了0.82Ba(TiSn)O-(0.18-)(BaCa)TiO-BiFeO(BTS-BCT-BF)压电陶瓷,并着重研究了其结构和性能,旨在揭示微波烧结对结构和性能的调控机制。与传统固相烧结(CS)相比,微波烧结陶瓷中的相结构随BiFeO3(BF)含量的变化呈现出相似的演变,而微波烧结陶瓷中观察到晶粒尺寸更细化且结构更致密。由于晶粒细化和微观结构更致密,微波烧结陶瓷的电学性能(如介电常数、压电常数、损耗角正切等)优于传统固相烧结陶瓷。值得注意的是,由于较小晶粒和高立方相导致的细长滞后回线,其储能性能(如储能密度、储能效率)显著优于预期。因此,微波烧结机制可进一步推动BT基陶瓷的实际应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9780/8911552/0ae98da8b51b/materials-15-01789-g001.jpg

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