There’s a revolutionary new paper from Oxford University out today in Nature Nanotechnology that challenges one of our basic understandings of how things are supposed to work in the field of electromagnetism — the idea that like charges are supposed to repel each other while opposite charges attract. Phys.org has a much more readable review of the paper:
It's not only opposites that attract: New study shows like-charged particles can come together
"Opposites charges attract; like charges repel" is a fundamental principle of basic physics. But a new study from Oxford University, published today in Nature Nanotechnology, has demonstrated that similarly charged particles in solution can in fact attract each other over long distances. Just as surprisingly, the team found that the effect is different for positively and negatively charged particles, depending on the solvent.
Besides overturning long-held beliefs, these results have immediate implications for a range of processes that involve interparticle and intermolecular interactions across various-length scales, including self-assembly, crystallization, and phase separation.
The team of researchers, based at Oxford's Department of Chemistry, found that negatively charged particles attract each other at large separations whereas positively charged particles repel, while the reverse was the case for solvents such as alcohols. These findings are surprising because they seem to contradict the central electromagnetic principle that the force between charges of the same sign is repulsive at all separations.
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Using a theory of interparticle interactions that considers the structure of the solvent at the interface, the team established that for negatively charged particles in water there is an attractive force that outweighs electrostatic repulsion at large separations, leading to cluster formation. For positively charged particles in water, this solvent-driven interaction is always repulsive, and no clusters form.
This effect was found to be pH-dependent; the team was able to control the formation (or not) of clusters for negatively charged particles by varying the pH. No matter the pH, the positively charged particles did not form clusters.
Naturally, the team wondered whether the effect on charged particles could be switched, such that the positively charged particles would form clusters and the negatives would not. By changing the solvent to alcohols, such as ethanol, which has different interface behavior than water, this was exactly what they observed: Positively charged aminated silica particles formed hexagonal clusters, whereas negatively charged silica did not.
According to the researchers, this study implies a fundamental recalibration in understanding that will influence the way we think about processes as different as the stability of pharmaceutical and fine chemical products or the pathological malfunction associated with molecular aggregation in human disease. The new findings also provide evidence for the ability to probe properties of the interfacial electrical potential due to the solvent, such as its sign and magnitude, which were previously thought immeasurable.