Abstract
Abstract
Main conclusion
The VNIR reflectance spectra of nickel hyperaccumulator plant leaves have spectral variations due to high nickel concentrations and this property could potentially be used for discovery of these plants.
Abstract
Hyperaccumulator plants accumulate high concentrations of certain metals, including manganese, cobalt, or nickel. Of these metals, the divalent ions of nickel have three absorption bands in the visible to near-infrared region which may cause variations in the spectral reflectance of nickel hyperaccumulator plant leaves, but this has not been investigated previously. In this shortproof-of-concept study, the spectral reflectance of eight different nickel hyperaccumulator plant species leaves were subjected to visible and near-infrared and shortwave infrared (VNIR-SWIR) reflectance spectrum measurements in dehydrated state, and for one species, it was also assessed in hydrated state. Nickel concentrations in the plant leaves were determined with other methods and then correlated to the spectral reflectance data. Spectral variations centred at 1000 ± 150 nm were observed and had R-values varying from 0.46 to 0.96 with nickel concentrations. The extremely high nickel concentrations in nickel hyperaccumulator leaves reshape their spectral reflectance features, and the electronic transition of nickel-ions directly contributes to absorption at ~ 1000 nm. Given that spectral variations are correlated with nickel concentrations it make VNIR-SWIR reflectance spectrometry a potential promising technique for discovery of hyperaccumulator plants, not only in the laboratory or herbarium, but also in the field using drone-based platforms. This is a preliminary study which we hope will instigate further detailed research on this topic to validate the findings and to explore possible applications.
Publisher
Springer Science and Business Media LLC
Reference53 articles.
1. Allen WA, Gausman HW, Richardson AJ, Thomas JR (1969) Interaction of isotropic light with a compact plant leaf. J Opt Soc Am 59:1376. https://doi.org/10.1364/JOSA.59.001376
2. Artwell K, France N, Florence K (2017) Investigation of some metals in leaves and leaf extracts of Lippia javanica: its daily intake. J Environ Public Health 2017:1476328. https://doi.org/10.1155/2017/1476328
3. Atkins P, de Paula J, Friedman R (2009) Quanta, matter, and change: a molecular approach to physical chemistry. W. H. Freeman and Company, New York
4. Baker AJM, Brooks RR (1989) Terrestrial higher plants which hyperaccumulate metallic elements - a review of their distribution, ecology and phytochemistry. Biorecovery 1:81–126
5. Beć KB, Grabska J, Bonn GK et al (2020) Principles and applications of vibrational spectroscopic imaging in plant science: a review. Front Plant Sci 11:1–27