Effect of particle size of nanoscale zero–valent copper on inorganic phosphorus adsorption–desorption in a volcanic ash soil
Abstract
Zeroâvalent copper engineered nanoparticles (CuâENPs) released through unintentional or intentional actions into the agricultural soils can alter the availability of inorganic phosphorus (IP) to plants. In this study, we used adsorptionâdesorption experiments to evaluate the effect of particle size of 1% CuâENPs (25 nm and 40â60 nm) on IP availability in Santa Barbara (SB) volcanic ash soil. XâRay Diffraction results showed that CuâENPs were formed by a mixture of Cu metallic and Cu oxides (Cu2O or/and CuO) species, while specific surface area values showed that CuâENPs/25 nm could form larger aggregate particles compared to CuâENPs/40â60 nm. The kinetic IP adsorption of SB soil without and with 1% CuâENPs (25 nm and 40â60 nm) followed the mechanism described by the pseudoâsecondâorder (k2 = 0.45â1.13 x 10â3 kg mmolâ1 minâ1; r2 ⥠0.999, and RSS ⤠0.091) and Elovich (α = 14621.10â3136.20 mmol kgâ1 minâ1; r2 ⥠0.984, and RSS ⤠69) models. Thus, the rateâlimiting step for IP adsorption in the studied systems was chemisorption on a heterogeneous surface. Adsorption equilibrium isotherms without CuâENPs were fitted well to the Freundlich model, while with 1% CuâENPs (25 nm and 40â60 nm), isotherms were described best by the Freundlich and/or Langmuir model. The IP relative adsorption capacity (KF) was higher with 1% CuâENPs/40â60 nm (KF = 110.41) than for 1% CuâENPs/25 nm (KF = 74.40) and for SB soil (KF = 48.17). This study showed that plausible IP retention mechanisms in the presence of 1% CuâENPs in SB soil were: i) ligand exchange, ii) electrostatic attraction, and iii) coâprecipitate formation. The desorption study demonstrated that 1% CuâENPs/40â60 nm increased the affinity of IP in SB soil with a greater effect than 1% CuâENPs/25 nm. Thus, both the studied size ranges of CuâENPs could favor an accumulation of IP in volcanic ash soils.
Más información
| Título según SCOPUS: | Effect of particle size of nanoscale zeroâvalent copper on inorganic phosphorus adsorptionâdesorption in a volcanic ash soil |
| Título de la Revista: | Chemosphere |
| Volumen: | 340 |
| Editorial: | Elsevier Ltd. |
| Fecha de publicación: | 2023 |
| Idioma: | English |
| DOI: |
10.1016/j.chemosphere.2023.139836 |
| Notas: | SCOPUS |