Choi Eunyoung, Wieghold Sarah, Perini Carlo A R, Luo Yanqi, Kim Sanggyun, Correa-Baena Juan Pablo, Stranks Samuel D, Parker Julia E
Diamond Light Source, Harwell Science and Innavation Campus, Didcot OX11 0DE, United Kingdom.
Advanced Photon Source, Argonne National Laboratory, Lemont, IL 60439, USA.
J Synchrotron Radiat. 2025 Sep 1;32(Pt 5):1211-1219. doi: 10.1107/S1600577525006034. Epub 2025 Aug 19.
Compared with conventional laboratory-scale X-ray techniques, synchrotron based X-rays with higher brilliance and higher coherence allow for the investigation of various material properties with high spatial resolution. The microscopic behaviours of materials can be examined using the Hard X-ray Nanoprobe beamline (I14) at Diamond Light Source, which provides a 50 nm focused beam and has been successfully employed to identify nanoscale optoelectronic features in energy-harvesting materials such as halide perovskites that exhibit local heterogeneity. We have developed X-ray beam-induced current (XBIC) measurement capability at I14 to address the growing demand for operando analysis in energy-harvesting research. Here, we demonstrate that X-ray fluorescence (XRF)/XBIC multimodal measurements are feasible at I14 and apply these newly implemented techniques to study perovskite solar cells with various additive concentrations to understand the effect of the additive on nanoscale optoelectronic performance. This expanded operando characterization capability offers the possibility of monitoring nanometre-scale compositional variations and corresponding optoelectronic features of actual solar cell configurations.
与传统的实验室规模X射线技术相比,基于同步加速器的具有更高亮度和更高相干性的X射线能够以高空间分辨率研究各种材料特性。可以使用位于钻石光源的硬X射线纳米探针光束线(I14)来研究材料的微观行为,该光束线提供50纳米聚焦光束,并且已成功用于识别诸如卤化物钙钛矿等能量收集材料中的纳米级光电特征,这些材料表现出局部不均匀性。我们在I14上开发了X射线束诱导电流(XBIC)测量能力,以满足能量收集研究中对原位分析日益增长的需求。在这里,我们证明了在I14上进行X射线荧光(XRF)/XBIC多模态测量是可行的,并应用这些新实施的技术来研究具有不同添加剂浓度的钙钛矿太阳能电池,以了解添加剂对纳米级光电性能的影响。这种扩展的原位表征能力提供了监测实际太阳能电池配置的纳米级成分变化和相应光电特征的可能性。