Zhang Yang, Jie Wenjing, Chen Ping, Liu Weiwei, Hao Jianhua
Institute of Modern Optics, Nankai University, Tianjin, 300071, China.
Department of Applied Physics, The Hong Kong Polytechnic University, Kowloon, Hong Kong, P. R. China.
Adv Mater. 2018 Jun 10:e1707007. doi: 10.1002/adma.201707007.
Piezoelectric and ferroelectric materials have shown great potential for control of the optical process in emerging materials. There are three ways for them to impact on the optical process in various materials. They can act as external perturbations, such as ferroelectric gating and piezoelectric strain, to tune the optical properties of the materials and devices. Second, ferroelectricity and piezoelectricity as innate attributes may exist in some optoelectronic materials, which can couple with other functional features (e.g., semiconductor transport, photoexcitation, and photovoltaics) in the materials giving rise to unprecedented device characteristics. The last way is artificially introducing optical functionalities into ferroelectric and piezoelectric materials and devices, which provides an opportunity for investigating the intriguing interplay between the parameters (e.g., electric field, temperature, and strain) and the introduced optical properties. Here, the tuning strategies, fundamental mechanisms, and recent progress in ferroelectric and piezoelectric effects modulating the optical properties of a wide spectrum of materials, including lanthanide-doped phosphors, quantum dots, 2D materials, wurtzite-type semiconductors, and hybrid perovskites, are presented. Finally, the future outlook and challenges of this exciting field are suggested.
压电材料和铁电材料在新兴材料的光学过程控制方面已展现出巨大潜力。它们有三种方式影响各种材料中的光学过程。它们可以作为外部微扰,如铁电门控和压电应变,来调节材料和器件的光学性质。其次,铁电性和压电性作为固有属性可能存在于一些光电子材料中,这可以与材料中的其他功能特性(如半导体输运、光激发和光伏效应)耦合,从而产生前所未有的器件特性。最后一种方式是将光学功能人工引入铁电和压电材料及器件中,这为研究参数(如电场、温度和应变)与引入的光学性质之间有趣的相互作用提供了机会。在此,将介绍铁电和压电效应调制包括镧系掺杂磷光体、量子点、二维材料、纤锌矿型半导体和混合钙钛矿等多种材料光学性质的调控策略、基本机制和最新进展。最后,对这个令人兴奋的领域的未来前景和挑战提出了建议。