Jia Nanxiang, Wang Ting, Duan Junwu, Qiang Kai, Xia Song, Du Hongliang, Li Fei, Xu Zhuo
Electronic Materials Research Laboratory, School of Electronic and Information Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
ACS Appl Mater Interfaces. 2022 Feb 16;14(6):8137-8145. doi: 10.1021/acsami.1c21010. Epub 2022 Feb 2.
Piezoelectric single-crystal composites (PSCCs) have been studied and applied because of their improved resolution and power source level performance in underwater acoustic transducer applications relative to traditional piezoelectric ceramic composites (PCCs). Currently, the methods to fabricate curved PSCCs are mostly derived from PCCs, including molding with flexible backing, molding with heating, and molding with the casting rubber method. Unfortunately, the methods mentioned above are not suitable for preparing curved PSCCs for underwater acoustic transducer applications because of their brittleness, the large anisotropy of piezoelectric single crystals, and the high thickness (>2 mm) of PSCCs for achieving the low operating frequency (<700 kHz). In the present work, we proposed a preparation method, 3D-printing-assisted dice and insert technology, and successfully prepared curved PSCCs with high performance. Although the PSCCs have a low volume fraction of single crystals in this work (∼33%), a high thickness electromechanical factor of 86% and a large piezoelectric coefficient of 1550 pC/N were achieved in the curved 1-3 PSCCs, which are superior to other reported PSCCs and PCCs with nearly the same volume fraction of single crystals and piezoelectric ceramics. This work presents a paradigm for fabricating curved PSCCs for underwater acoustic transducers, and this method shows the potential for large-area, special-shaped PSCCs, which are key materials for next-generation underwater acoustic transducers.
压电单晶复合材料(PSCCs)因其在水下声换能器应用中相对于传统压电陶瓷复合材料(PCCs)具有更高的分辨率和电源级性能而得到研究和应用。目前,制备弯曲PSCCs的方法大多源自PCCs,包括使用柔性背衬成型、加热成型和铸胶法成型。不幸的是,由于其脆性、压电单晶的大各向异性以及为实现低工作频率(<700 kHz)而PSCCs的高厚度(>2 mm),上述方法不适用于制备用于水下声换能器的弯曲PSCCs。在本工作中,我们提出了一种制备方法,即3D打印辅助切块和嵌入技术,并成功制备了高性能的弯曲PSCCs。尽管在本工作中PSCCs的单晶体积分数较低(约33%),但在弯曲的1-3型PSCCs中实现了86%的高厚度机电因子和1550 pC/N的大压电系数,这优于其他报道的具有几乎相同单晶和压电陶瓷体积分数的PSCCs和PCCs。这项工作为制造用于水下声换能器的弯曲PSCCs提供了一种范例,并且这种方法显示了用于大面积、特殊形状PSCCs的潜力,而这些PSCCs是下一代水下声换能器的关键材料。