Showing posts with label Physics. Show all posts
Showing posts with label Physics. Show all posts

Thursday, 25 September 2014

New Research Helps Uncover the Mechanism Behind Solid-Solid Phase Transitions

Researchers Discover Mechanism Behind Solid-Solid Phase Transitions 
The square-pattern crystal (labeled green) gives rise to liquid “droplets” (red), which form trianglular crystal (blue).
An international team of researchers helps uncover mechanism behind solid-solid phase transitions, providing new insight for all sorts of solid-solid phase transformations.
Two solids made of the same elements but with different geometric arrangements of the atoms, or crystal phases, can produce materials with different properties. Coal and diamond offer a spectacular example of this effect.
While it is well known that one crystal phase can transform into another under the right circumstances, the mechanisms that facilitate solid-to-solid transitions are still not well understood. Atoms can rearrange themselves to transform from a “parent” phase into a “daughter” phase by two major routes, but it is difficult to predict which route a material will take or why it took one route versus the other.
To this end, researchers from the Hong Kong University of Science and Technology, the University of Pennsylvania, Soochow University in Suzhou, China, and Solvay, have studied colloidal solid-solid transitions with single-particle resolution, and they have discovered a surprising mechanism that facilitates one of these routes. They found that some crystals have an easier time of making the solid-solid transition, if they take it in two steps.
Surprisingly, the first step of the process involves the parent phase producing droplets of liquid. The liquid droplets then evolve into the daughter phase.
The observations provide new insight for all sorts of solid-solid phase transformations, and have potential implications for development and manufacture of alloys, as well as natural processes that occur deep within Earth’s mantle.
The research team was led by graduate student Yi Peng and associate professor of physics Yilong Han, both of the Hong Kong University of Science and Technology, as well as Arjun Yodh, director of the Laboratory for Research on the Structure of Matter and professor in the Department of Physics and Astronomy in Penn’s School of Arts & Sciences.
It was published in Nature Materials.
The two main routes by which a solid-solid phase transition can occur differ by whether the atoms move together or independently of one another. A diffusionless, or martensitic, transition involves many atoms moving cooperatively in unison. This route is often described as a “military” transition, as the atoms “march” in a concerted way. By contrast, a “civilian” transition involves diffusion. It is associated with the formation of “droplets” of the daughter phase within the parent phase, with individual atoms diffusing back and forth in a random manner across the interface between the two phases.
“The process we observed is called nucleation,” Yodh said. “Particles from the parent phase break away and form droplets of a new phase, and when the droplets get large enough the new crystal phase grows rapidly. What was surprising was that the initial droplets we saw were liquid rather than crystallites.”
“A system may not directly transform to the ideal final state if the energy barrier to transformation is high,” Han said. “Instead an indirect pathway through some intermediate metastable state with lower barrier height could be more favorable. Such effects can in principle arise in any barrier-crossing process including protein folding, chemical reactions or even some evolutional or social transformations.”
The research team devised a way to watch this process in action, using polymer particles synthesized in the Yodh lab that have a unique property: they shrink when heated. The team formed thin films of these particles of a few layers trapped between two transparent walls.
Importantly, the crystalline packing of these spherical particles is highly dependent on the volume occupied in the film by the particles, as well as the ratio of the film thickness to the particle diameter. The solid regions formed by the packing of these spheres had either square or triangular symmetry. The colloidal thin films thus mimicked crystal phases of atoms, and the sample design permitted experimenters to record particle behaviors by video microscopy as they switched from one phase to another.
Because the team was able to shrink the spheres without removing them from the film, simply by shining a heating light on them, they could study the solid-solid phase transition that occurs when the particle size and packing fraction change.
“In our case, the spheres start off in a square lattice,” Yodh said, “and, when we shrink them, they transition into a triangular lattice. Such transitions between lattices with different types of lattice symmetries are often difficult to predict, and a liquid intermediate stage has never been suggested in theory before.”
With a window into the particles’ movements, the team closely observed the process by which this transition occurred. Whether the heated regions of square lattice pattern had defects or not, they found that the transition always exhibited the same basic mechanism. The “colloidal atoms” first formed liquid droplets within the square parent phase, and then a solid triangular crystal phase formed within these liquid droplets. Eventually the triangular crystal phases grew large, replacing both the liquid in the droplets and the parent square phase.
This two-step process, square-crystal to liquid, then liquid to triangular-crystal, was surprising and is potentially indicative of the way in which many solid-solid transitions might occur on the atomic level. The key is that the interfacial energy between the parent crystal and the liquid phase is less than the interfacial energy between the parent crystal and daughter crystal.
“The system first nucleates a liquid, because it costs less interfacial energy than to nucleate the daughter crystal,” Yodh said. “The two-step process effectively reduces the energy barrier for the process as a whole.”
The research was supported by the U.S. National Science Foundation through Penn’s Materials Research Science and Engineering Center, the National Natural Science Foundation of China, the National Basic Research Program of China, the U.S. National Science Foundation and NASA.
Feng Wang and Ziren Wang, of the Hong Kong University of Science and Technology, Ahmed M. Alsayed, of the Complex Assemblies of Soft Matter Laboratory, and Zexin Zhang of Soochow University, also contributed to the study. The Complex Assemblies of Soft Matter Laboratory is a collaboration between the French National Center for Scientific Research, Penn and Solvay.
Publication: Yi Peng, et al., “Two-step nucleation mechanism in solid–solid phase transitions,” Nature Materials, 2014; doi:10.1038/nmat4083
Source: University of Pennsylvania
Image: University of Pennsylvania,src http://scitechdaily.com

UNIGE Physicists Teleport Quantum State of a Photon to a Crystal

Physicists Teleport Quantum State of a Photon to a Crystal Over 25 Kilometers of Fiber 
Crystals which contain the information of light after the teleportation. Credit: GAP, University of Geneva (UNIGE)
Quantum physicists have teleported the quantum state of a photon to a crystal over 25 kilometers of optical fiber, smashing the previous record of 6 kilometers.
Physicists at the University of Geneva (UNIGE) have succeeded in teleporting the quantum state of a photon to a crystal over 25 kilometers of optical fiber. The experiment, carried out in the laboratory of Professor Nicolas Gisin, constitutes a first, and simply pulverizes the previous record of 6 kilometers achieved ten years ago by the same UNIGE team. Passing from light into matter, using teleportation of a photon to a crystal, shows that, in quantum physics, it is not the composition of a particle which is important, but rather its state, since this can exist and persist outside such extreme differences as those which distinguish light from matter. The results obtained by Félix Bussières and his colleagues are reported in the latest edition of Nature Photonics.
Quantum physics, and with it the UNIGE, is again being talked about around the world with the Marcel Benoist Prize for 2014 being awarded to Professor Nicolas Gisin, and the publication of experiments in Nature Photonics. The latest experiments have enabled verifying that the quantum state of a photon can be maintained whilst transporting it into a crystal without the two coming directly into contact. One needs to imagine the crystal as a memory bank for storing the photon’s information; the latter is transferred over these distances using the teleportation effect.
Teleporting over 25 kilometers
The experiment not only represents a significant technological achievement but also a spectacular advance in the continually surprising possibilities afforded by the quantum dimension. By taking the distance to 25 kilometers of optical fiber, the UNIGE physicists have significantly surpassed their own record of 6 kilometers, the distance achieved during the first long-distance teleportation achieved by Professor Gisin and his team in 2003.
Memory after triangulation
So what exactly is this testing of quantum entaglement and its properties? One needs to imagine two entangled photons – in other words two photons inextricably linked at the most infinitesimal level by their joint states. One is propelled along an optical fiber (the 25 kilometers mentioned earlier), but not the other, which is sent to a crystal. It is a bit like a game of billiards, with a third photon hitting the first which obliterates both of them. Scientists measure this collision. But the information contained in the third photon is not destroyed – on the contrary it finds its way to the crystal which also contains the second entangled photon.
Thus, as Félix Bussières the lead author of this publication explains, one observes “that the quantum state of the two elements of light, these two entangled photons which are like two Siamese twins, is a channel that empowers the teleportation from light into matter”. From there, it is a small step to conclude that, in quantum physics, the state takes precedence over the ‘vehicle’ – in other words an item’s quantum properties transcend classical physical properties. A step that maybe now one can take.
Publication: J. G. Bohnet, et al., “Reduced spin measurement back-action for a phase sensitivity ten times beyond the standard quantum limit,” Nature Photonics 8, 731–736 (2014); doi:10.1038/nphoton.2014.151
PDF Copy of the Study: Reduced back-action for phase sensitivity 10 times beyond the standard quantum limit
Source: University of Geneva
Image: GAP, University of Geneva (UNIGE)src http://scitechdaily.com