论文标题

无定形和晶体Gete纳米颗粒薄膜的光谱分辨介电函数

Spectrally-resolved dielectric function of amorphous and crystalline GeTe nanoparticle thin films

论文作者

Michel, Ann-Katrin U., Sousa, Marilyne, Yarema, Maksym, Yarema, Olesya, Ovuka, Vladimir, Lassaline, Nolan, Wood, Vanessa, Norris, David J.

论文摘要

越来越多地研究了在光学和随机访问记忆中建立良好的相位变化材料(PCM),越来越多地研究了新兴主题,例如脑启发的计算和活动性光子学。这些应用利用了PCMS从其无定形到晶状状态的结构过渡伴随着明显的反射率和电阻率变化。但是,PCM通常通过溅射为薄膜制造,这是昂贵的,需要高级设备,并限制样品和设备设计。在这里,我们研究了一种在可调光子学中应用的更简单,更灵活的方法:使用亚10 nm胶体PCM纳米颗粒(NPS)。我们报告了从红外线到紫外光谱范围的无定形和晶状锗(Gete)NP薄膜的光学性质。利用光谱椭圆测量法,并在横截面扫描电子显微镜,原子力显微镜和吸收光谱方面的支持下,我们提取折射率n,消光系数k和带隙,例如,例如,例如,与溅射Gete薄膜相比,相比之下。我们发现基于NP的Gete膜的N和K的减少,EG的增加,从而对纳米级PCM的大小依赖性性质变化产生了见解。此外,我们的结果揭示了Gete NPS在近红外且可见的光谱范围内对可调光子学的适用性。最后,我们研究了NP膜的样本可重复性和衰老。我们发现,制备胶体准备的PCM薄膜至少在氮气下存储至少两个月,进一步支持了这些材料在应用中的巨大希望。

Phase-change materials (PCMs), which are well-established in optical and random-access memories, are increasingly studied for emerging topics such as brain-inspired computing and active photonics. These applications take advantage of the pronounced reflectivity and resistivity changes that accompany the structural transition in PCMs from their amorphous to crystalline state. However, PCMs are typically fabricated as thin films via sputtering, which is costly, requires advanced equipment, and limits the sample and device design. Here, we investigate a simpler and more flexi-ble approach for applications in tunable photonics: the use of sub-10 nm colloidal PCM nanoparticles (NPs). We report the optical properties of amorphous and crystalline germanium telluride (GeTe) NP thin films from the infrared to the ultraviolet spectral range. Using spectroscopic ellipsometry with support from cross-sectional scanning electron microscopy, atomic force microscopy, and absorption spectroscopy, we extract refractive indices n, extinction coefficients k, and band gaps Eg and compare to values known for sputtered GeTe thin films. We find a decrease of n and k and an increase of Eg for NP-based GeTe films, yielding insights into size-dependent property changes for nanoscale PCMs. Furthermore, our results reveal the suitability of GeTe NPs for tunable photonics in the near-infrared and visible spectral range. Finally, we studied sample reproducibility and aging of our NP films. We found that the colloidally-prepared PCM thin films were stable for at least two months stored under nitrogen, further supporting the great promise of these materials in applications.

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