Ji Fuxiang, Wang Feng, Kobera Libor, Abbrent Sabina, Brus Jiri, Ning Weihua, Gao Feng
Department of Physics, Chemistry and Biology (IFM), Linköping University Linköping SE-581 83 Sweden
Institute of Macromolecular Chemistry of the Czech Academy of Sciences Heyrovskeho nam. 2, 162 06, Prague 6 Czech Republic
Chem Sci. 2020 Dec 8;12(5):1730-1735. doi: 10.1039/d0sc05264g.
Although lead-free halide double perovskites are considered as promising alternatives to lead halide perovskites for optoelectronic applications, state-of-the-art double perovskites are limited by their large bandgap. The doping/alloying strategy, key to bandgap engineering in traditional semiconductors, has also been employed to tune the bandgap of halide double perovskites. However, this strategy has yet to generate new double perovskites with suitable bandgaps for practical applications, partially due to the lack of fundamental understanding of how the doping/alloying affects the atomic-level structure. Here, we take the benchmark double perovskite CsAgInCl as an example to reveal the atomic-level structure of double perovskite alloys (DPAs) CsAgIn Fe Cl ( = 0-1) by employing solid-state nuclear magnetic resonance (ssNMR). The presence of paramagnetic alloying ions ( Fe in this case) in double perovskites makes it possible to investigate the nuclear relaxation times, providing a straightforward approach to understand the distribution of paramagnetic alloying ions. Our results indicate that paramagnetic Fe replaces diamagnetic In in the CsAgInCl lattice with the formation of [FeCl]·[AgCl] domains, which show different sizes and distribution modes in different alloying ratios. This work provides new insights into the atomic-level structure of bandgap engineered DPAs, which is of critical significance in developing efficient optoelectronic/spintronic devices.
尽管无铅卤化物双钙钛矿被认为是用于光电子应用的卤化铅钙钛矿的有前途的替代品,但目前最先进的双钙钛矿受到其大带隙的限制。掺杂/合金化策略是传统半导体带隙工程的关键,也已被用于调节卤化物双钙钛矿的带隙。然而,这种策略尚未产生具有适合实际应用的带隙的新型双钙钛矿,部分原因是缺乏对掺杂/合金化如何影响原子级结构的基本理解。在这里,我们以基准双钙钛矿CsAgInCl为例,通过采用固态核磁共振(ssNMR)来揭示双钙钛矿合金(DPA)CsAgIn1−xFexCl6(x = 0-1)的原子级结构。双钙钛矿中顺磁性合金化离子(在这种情况下为Fe)的存在使得研究核弛豫时间成为可能,提供了一种直接的方法来理解顺磁性合金化离子的分布。我们的结果表明,顺磁性Fe取代了CsAgInCl晶格中的抗磁性In,形成了[FeCl]−·[AgCl]−域,这些域在不同的合金化比例下表现出不同的尺寸和分布模式。这项工作为带隙工程化的双钙钛矿的原子级结构提供了新的见解,这对于开发高效的光电子/自旋电子器件至关重要。