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钙钛矿中的应变工程:对氧化物和卤化物的相互洞察

Strain Engineering in Perovskites: Mutual Insight on Oxides and Halides.

作者信息

Choi Min-Ju, Lee Jung-Woo, Jang Ho Won

机构信息

Department of Materials Science and Engineering, Research Institute of Advanced Materials, Seoul National University, Seoul, 08826, Republic of Korea.

Department of Materials Science and Engineering, Hongik University, Sejong, 30016, Republic of Korea.

出版信息

Adv Mater. 2024 Mar;36(9):e2308827. doi: 10.1002/adma.202308827. Epub 2023 Dec 8.

Abstract

Perovskite materials have garnered significant attention over the past decades due to their applications, not only in electronic materials, such as dielectrics, piezoelectrics, ferroelectrics, and superconductors but also in optoelectronic devices like solar cells and light emitting diodes. This interest arises from their versatile combinations and physiochemical tunability. While strain engineering is a recognized powerful tool for tailoring material properties, its collaborative impact on both oxides and halides remains understudied. Herein, strain engineering in perovskites for energy conversion devices, providing mutual insight into both oxides and halides is discussed. The various experimental methods are presented for applying strain by using thermal mismatch, lattice mismatch, defects, doping, light illumination, and flexible substrates. In addition, the main factors that are influenced by strain, categorized as structure (e.g., symmetry breaking, octahedral distortion), bandgap, chemical reactivity, and defect formation energy are described. After that, recent progress in strain engineering for perovskite oxides and halides for energy conversion devices is introduced. Promising methods for enhancing the performance of energy conversion devices using perovskites through strain engineering are suggested.

摘要

在过去几十年中,钙钛矿材料因其应用而备受关注,这些应用不仅涉及电子材料,如电介质、压电材料、铁电材料和超导体,还包括光电器件,如太阳能电池和发光二极管。这种兴趣源于它们多样的组合和物理化学可调性。虽然应变工程是一种公认的用于定制材料性能的强大工具,但其对氧化物和卤化物的协同影响仍未得到充分研究。本文讨论了用于能量转换器件的钙钛矿中的应变工程,为氧化物和卤化物提供了相互的见解。介绍了通过热失配、晶格失配、缺陷、掺杂、光照和柔性衬底施加应变的各种实验方法。此外,还描述了受应变影响的主要因素,分为结构(如对称性破缺、八面体畸变)、带隙、化学反应性和缺陷形成能。之后,介绍了用于能量转换器件的钙钛矿氧化物和卤化物的应变工程的最新进展。提出了通过应变工程提高使用钙钛矿的能量转换器件性能的有前景的方法。

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