Sheng Fang, Ji Kangyu, Dai Linjie, Siemenn Alexander E, Aissi Eunice, Kavak Hamide, Das Basita, Liu Tianran, Sun Shijing, Buonassisi Tonio
Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA, USA.
Nat Commun. 2025 Aug 12;16(1):7477. doi: 10.1038/s41467-025-62774-y.
To realize the full promise of high-throughput experimental workflows, the rate of sample synthesis must be matched by that of characterization. Of growing interest are contactless optical techniques that can rapidly measure material homogeneity and properties. Here, we present a hyperspectral imaging method to measure local optical bandgap distributions within samples, utilizing spatially-resolved reflectance spectra coupled with automated data analysis. We collect approximately one million optical bandgap data across the compositional space of Cs(BiSb)(BrI) perovskite-inspired materials. Our results show non-monotonic bandgap variations (i.e., bandgap bowing) along six composition gradient sequences, in addition to identifying samples with multiple bandgaps in statistics. High-throughput transient absorption spectroscopy reveals that within these compositions, the depletion of the ground state carriers to excited states occurred at discrete energy levels with independent carrier dynamics, consistent with the bandgap observation and indicative of phase separation. This work demonstrates the potential for rapid optical measurements to assess material quality and homogeneity in a high-throughput experimental setting, supporting screening and recipe optimization of optoelectronic material candidates with desired carrier dynamics and optical properties.
为了充分实现高通量实验工作流程的潜力,样品合成速率必须与表征速率相匹配。越来越受关注的是能够快速测量材料均匀性和性质的非接触式光学技术。在此,我们提出一种高光谱成像方法,利用空间分辨反射光谱结合自动数据分析来测量样品内的局部光学带隙分布。我们在Cs(BiSb)(BrI)钙钛矿启发材料的成分空间中收集了约一百万个光学带隙数据。我们的结果表明,除了在统计中识别出具有多个带隙的样品外,沿六个成分梯度序列存在非单调带隙变化(即带隙弯曲)。高通量瞬态吸收光谱表明,在这些成分中,基态载流子到激发态的耗尽发生在具有独立载流子动力学的离散能级上,这与带隙观察结果一致并表明相分离。这项工作展示了在高通量实验环境中进行快速光学测量以评估材料质量和均匀性的潜力,支持对具有所需载流子动力学和光学性质的光电子材料候选物进行筛选和配方优化。