| Literature DB >> 27502634 |
Abstract
Aggregation of zero-valent nanoparticles in groundwater is influenced by several physical phenomena. The article shortly introduces preceding works in modeling of aggregation of small particles including influence of sedimentation, velocity profile of water, heat fluctuations, and surface electric charge. A brief description of inclusion of magnetic forces into the model of aggregation follows. Rate of influence of the magnetic forces on the aggregation depends on the magnitude of magnetization of the particles, radius of nanoparticles, size of the aggregates, and their concentration in the solution. Presented results show that the magnetic forces have significant influence on aggregation especially of the smallest iron particles.Entities:
Keywords: Aggregation; Iron nanoparticles; Magnetic forces; Mass transport coefficient
Year: 2010 PMID: 27502634 PMCID: PMC3211143 DOI: 10.1007/s11671-010-9753-4
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
The mass transport coefficients for Brownian diffusion, velocity gradients, and sedimentation, for different sizes of aggregates
| 1 | 1 | 1.0 × 10-17 | 2.2 × 10-20 | 0 |
| 1 | 10 | 1.3 × 10-17 | 8.8 × 10-20 | 5.9 × 10-22 |
| 1 | 102 | 1.9 × 10-17 | 5.0 × 10-19 | 1.0 × 10-20 |
| 1 | 103 | 3.3 × 10-17 | 3.7 × 10-18 | 2.0 × 10-19 |
| 1 | 104 | 6.5 × 10-17 | 3.2 × 10-17 | 3.8 × 10-18 |
| 1 | 105 | 1.3 × 10-16 | 3.0 × 10-16 | 7.9 × 10-17 |
| 1 | 106 | 2.8 × 10-16 | 3.0 × 10-15 | 1.7 × 10-15 |
| 1 | 107 | 6.0 × 10-16 | 2.8 × 10-14 | 3.5 × 10-14 |
| 10 | 10 | 1.1 × 10-17 | 2.2 × 10-19 | 0 |
| 102 | 102 | 1.3 × 10-17 | 8.8 × 10-19 | 1.2 × 10-20 |
| 103 | 103 | 1.1 × 10-17 | 2.2 × 10-17 | 5.9 × 10-18 |
| 104 | 104 | 1.3 × 10-17 | 8.8 × 10-17 | 0 |
Figure 1Dependence of ζ potential of nZVI on pH measured with Malvern ZetaSizer.
Figure 2Hysteresis loop of the zero-valent iron nanoparticles for temperature of 300 K measured with magnetometer MPMS XL by Jiří Tuček at the Palacký University Olomouc.
Figure 3Visualization of the vector field of the magnetic forces between two spherical particles of nZVI, using software Mathematica 5, copyrighted by Wolfram Research, Inc. One nanoparticle is in an arbitrary point near a nanoparticle with radius a which is touching the center of the upper right side of the figure.
Figure 4Effective range of the magnetic forces of chosen aggregates. The dashed line characterizes the effective ranges for the interaction of aggregates interacting with a single nanoparticle. The solid line characterizes the effective ranges for the interaction of two aggregates of the same size. The graph is plotted for the magnetic polarization 170 emu g-1.