Laboratory of Biosensing Engineering, Graduate School of Agriculture, Kyoto University, Kitashirakawa, Kyoto, 6068267, Japan.
Agriculture and Forestry Technology Department, Kyoto Prefectural Agriculture, Forestry and Fisheries Technology Center, Kameoka, Kyoto, 621-0806, Japan.
Photochem Photobiol Sci. 2023 Oct;22(10):2401-2412. doi: 10.1007/s43630-023-00459-5. Epub 2023 Jul 19.
Sweet peppers are popular worldwide due to their nutrition and taste. Conventional vegetable tracing methods have been trialed, but the application of such labels or tags can be laborious and expensive, making their commercial application impractical. What is needed is a label-free method that can identify features unique to each individual fruit. Our research team has noted that sweet peppers have unique textural fluorescence features when observed under UV light that could potentially be used as a label-free signature for identification of individual fruit as it travels through the postharvest supply chain. The objective of this research was to assess the feature of these sweet pepper features for identification purposes. The macroscopic and microscopic images were taken to characterize the fluorescence. The results indicate that all sweet peppers possess dot-like fluorescence features on their surface. Furthermore, it was observed that 93.60% of these features exhibited changes in fluorescence intensity within the cuticle layer during the growth of a pepper. These features on the macro-image are visible under 365 nm UV light, but challenging to be seen under white LEDs and to be classified from the fluorescence spectrum under 365 nm light. This research reported the fluorescence feature on the sweet pepper, which is invisible under white light. The results show that the uniqueness of fluorescent features on the surface of sweet peppers has the potential to become a traceability technology due to the presence of its unique physical modality.
甜椒因其营养和口感而在全球范围内广受欢迎。虽然已经尝试了传统的蔬菜溯源方法,但这些标签或标记的应用可能既繁琐又昂贵,因此在商业上并不实用。我们需要一种无需标签的方法,可以识别每个个体果实的独特特征。我们的研究团队注意到,甜椒在紫外光下观察时具有独特的纹理荧光特征,这些特征可能可以作为一种无标记的特征,用于识别个体果实在收获后供应链中的流通情况。本研究的目的是评估这些甜椒特征的可识别性。我们拍摄了宏观和微观图像来对荧光进行特征描述。结果表明,所有甜椒的表面都具有点状荧光特征。此外,我们还观察到,在甜椒生长过程中,其表皮层内 93.60%的这些特征的荧光强度发生了变化。在 365nm 的紫外光下,可以看到宏观图像上的这些特征,但在白光 LED 下很难看到,并且很难从 365nm 光下的荧光光谱中进行分类。本研究报告了甜椒表面的荧光特征,在白光下是不可见的。研究结果表明,由于其独特的物理形态,甜椒表面荧光特征的独特性有可能成为一种溯源技术。