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Microstructure, vertical strain control and tunable functionalities in self-assembled, vertically aligned nanocomposite thin films

机译:自组装、垂直取向纳米复合薄膜中的微观结构、垂直应变控制和可调功能

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摘要

Vertically aligned nanocomposite (VAN) oxide thin films have recently stimulated a significant amount of research interest owing to their novel architecture, vertical interfacial strain control and tunable material functionalities. In this work, the growth mechanisms of VAN thin films have been investigated by varying the composite material system, the ratio of the two constituent phases, and the thin film growth conditions including deposition temperature and oxygen pressure as well as growth rate. It has been shown that thermodynamic parameters, elastic and interfacial energies and the multiple phase ratio play dominant roles in the resulting microstructure. In addition, vertical interfacial strain has been observed in BiFeO_3 (BFO)- and La_(0.7)Sr_(0.3)MnO_3 (LSMO)-based VAN thin film systems;;the vertical strain could be tuned by the growth parameters and selection of a suitable secondary phase. The tunability of physical properties such as dielectric loss in BFO:Sm_2O_3 VAN and low-field magnetoresistance in LSMO-based VAN systems has been demonstrated. The enhancement and tunability of those physical properties have been attributed to the unique VAN architecture and vertical strain control. These results suggest that VAN architecture with novel microstructure and unique vertical strain tuning could provide a general route for tailoring and manipulating the functionalities of oxide thin films.
机译:垂直取向纳米复合材料(VAN)氧化物薄膜因其新颖的结构、垂直界面应变控制和可调材料功能而最近引起了大量的研究兴趣。本文通过改变复合材料体系、两组成相的比例以及沉积温度、氧压和生长速率等薄膜生长条件,研究了VAN薄膜的生长机理。研究表明,热力学参数、弹性能和界面能以及多相比在所得微观结构中起着主导作用。此外,在基于BiFeO_3(BFO)和La_(0.7)Sr_(0.3)MnO_3(LSMO)的VAN薄膜系统中也观察到了垂直界面应变;垂直菌株可以通过生长参数和选择合适的第二相来调整。已经证明了物理特性的可调性,例如BFO:Sm_2O_3 VAN中的介电损耗和基于LSMO的VAN系统中的低场磁阻。这些物理特性的增强和可调性归因于独特的VAN架构和垂直应变控制。这些结果表明,具有新颖微观结构和独特垂直应变调谐的VAN架构可以为氧化物薄膜的功能定制和操作提供一条通用路线。

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