Pichois M D, Henning X, Hurier M A, Vomir M, Barsella A, Mager L, Donnio B, Gallani J L, Rastei M V
Institut de Physique et Chimie des Matériaux de Strasbourg, CNRS, Université de Strasbourg, 23 rue du Loess, F-67034 Strasbourg, France.
Institut de Physique et Chimie des Matériaux de Strasbourg, CNRS, Université de Strasbourg, 23 rue du Loess, F-67034 Strasbourg, France.
Ultramicroscopy. 2022 Nov;241:113601. doi: 10.1016/j.ultramic.2022.113601. Epub 2022 Aug 15.
Excitation of electrons into higher energy states in solid state materials can be induced by absorption of visible light, a physical process generally studied by optical absorption spectroscopy. A promising approach for improving the spatial resolution of optical absorption spectroscopy beyond the diffraction limit is the detection of photoinduced forces by an atomic force microscope operating under wavelength-dependent light irradiation. Here, we report on a combined photovoltaic/photothermal effect induced by the absorption of visible light by the microscope probes. By monitoring the photoinduced modifications of the oscillation of the probes, it is found that the oscillation phase-voltage parabolic signals display specific fingerprints which depend on light intensity and the nature of the materials composing the probes. In particular, a localized surface photovoltage (SPV) is evidenced at the tip apex of uncoated Si probes, while none is observed on Au-coated Si probes. The photothermal effects are distinguished from photovoltaic effects by specific shifts of the phase-voltage parabolas. The findings are relevant for the whole range of atomic force microscopy techniques making use of visible light as an additional means of local optical characterization.
固态材料中的电子被激发到更高能量状态可由可见光吸收诱导,这是一个通常通过光吸收光谱学研究的物理过程。一种有望将光吸收光谱学的空间分辨率提高到超越衍射极限的方法是在依赖波长的光照射下,通过原子力显微镜检测光致力。在此,我们报告了显微镜探针吸收可见光所诱导的光伏/光热联合效应。通过监测探针振荡的光致变化,发现振荡相电压抛物线信号显示出特定的特征,这些特征取决于光强度和构成探针的材料性质。特别是,在未涂层的硅探针尖端顶点处证实存在局域表面光电压(SPV),而在涂金的硅探针上未观察到。通过相电压抛物线的特定偏移将光热效应与光伏效应区分开来。这些发现与利用可见光作为局部光学表征附加手段的整个原子力显微镜技术范围相关。