Skip to main content

Understanding the (ultra-small) structure of silicon nanocrystals

New research provides insight into the structure of silicon nanocrystals, a substance that promises to provide efficient lithium ion batteries that power your phone to medical imaging on the nanoscale.
The research was conducted by a team of University of Alberta chemists, lead by two PhD students in the Department of Chemistry, Alyx Thiessen and Michelle Ha.
"Silicon nanocrystals are important components for a lot of modern technology, including lithium ion batteries," said, Thiessen, who is studying with Professor Jonathan Veinot. "The more we know about their structure, the more we'll understand about how they work and how they can be used for various applications."
In two recently published papers, the research team characterized the structure of silicon nanocrystals more quickly and accurately than ever before, using a cutting-edge technique known as dynamic nuclear polarization (DNP).
"Using the DNP technology, we were able to show that larger silicon nanocrystals have a layered structure that is disordered on the surface, with a crystalline core that is separated by a middle layer," explained Ha, who is studying under the supervision of Assistant Professor Vladimir Michaelis. "This is the first time this has been documented in silicon nanocrystals."
Silicon nanocrystals have proliferated through the world of scientific research. From applications in developing ultra-high capacity batteries to the next generation of medical imaging at the cellular level, their potential is seemingly endless.
"Understanding the structure of silicon nanocrystals is very useful," explained Thiessen. "By thoroughly examining the structure, we build our understanding of the properties of the crystals, which can in turn be used to optimize their function."
"And this will allow us to tailor the silicon nanocrystals to whatever application or field we want to," added Ha. "This research can impact many different areas of research, including the development of more accurate medical imaging technology to new, more efficient batteries. These silicon nanocrystals are extremely versatile."
Both Thiessen and Ha are students in the Alberta/Technical University of Munich International Graduate School for Hybrid Functional Materials (ATUMS) program, which allows them to experience an international cross-disciplinary research environment ans conduct aspects of their research in Munich, Germany.
Story Source:
Materials provided by University of Alberta. Original written by Katie Willis.
Note: Content may be edited. 

Comments

Popular posts from this blog

Size matters: New data reveals cell size sparks genome awakening in embryos

Transitions are a hallmark of life. When dormant plants flower in the spring or when a young adult strikes out on their own, there is a shift in control. Similarly, there is a transition during early development when an embryo undergoes biochemical changes, switching from being controlled by maternal molecules to being governed by its own genome. For the first time, a team from the Perelman School of Medicine at the University of Pennsylvania found in an embryo that activation of its genome does not happen all at once, instead it follows a specific pattern controlled primarily by the various sizes of its cells. The researchers published their results this week as the cover story in  Developmental Cell . In an early embryo undergoing cell division, maternally loaded RNA and proteins regulate the cell cycle. The genomes of the zygote -- a term for the fertilized egg -- are initially in sleep mode. However, at a point in the early life of the embryo, these zygotic nuclei "wake...

Scientists challenge notion of binary sexuality with naming of new plant species

A collaborative team of scientists from the US and Australia has named a new plant species from the remote Outback. Bucknell University biology postdoctoral fellow Angela McDonnell and professor Chris Martine led the description of the plant that had confounded field biologists for decades because of the unusual fluidity of its flower form. The discovery, published in the open access journal  PhytoKeys , offers a powerful example of the diversity of sexual forms found among plants. The new species of bush tomato discovered in remote Australia provides a compelling example of the fact that sexuality among Earth's living creatures is far more diverse -- and interesting -- than many people likely realize. Bucknell University postdoctoral fellow Angela McDonnell and biology professor Chris Martine led the study following an expedition last year to relocate populations of the new plant, which were first noted by Australian botanists during the 1970s. Herbarium specimens from th...

Home births as safe as hospital births: International study suggests

A large international study led by McMaster University shows that low risk pregnant women who intend to give birth at home have no increased chance of the baby's perinatal or neonatal death compared to other low risk women who intend to give birth in a hospital. The results have been published by  The Lancet 's  EClinicalMedicine  journal. "More women in well-resourced countries are choosing birth at home, but concerns have persisted about their safety," said Eileen Hutton, professor emeritus of obstetrics and gynecology at McMaster, founding director of the McMaster Midwifery Research Centre and first author of the paper. "This research clearly demonstrates the risk is no different when the birth is intended to be at home or in hospital." The study examined the safety of place of birth by reporting on the risk of death at the time of birth or within the first four weeks, and found no clinically important or statistically different risk between home...