Showing posts with label Berkeley. Show all posts
Showing posts with label Berkeley. Show all posts

Saturday, June 6, 2015

3 Supernovae Explode In Space - http://clapway.com/2015/06/06/3-supernovae-explode-in-space-123/

According to images obtained by the Hubble Space Telescope, 3 supernovae that were originally discovered several years ago have exploded in space, after they had been flung from their home galaxies millions or even billions of years prior.


A large majority of supernovae can be discovered inside galaxies surrounded by hundreds of billions of stars, one of which may just explode per century per galaxy.


supernova-clapway


 


What can these isolated stars tell us?


These isolated supernovae were discovered in between galaxies, and the rarity of these supernovae give us a key clue as to what lives in the expansive space in the middle of galaxies. These findings will also be able to assist astronomers in comprehending exactly how galaxy clusters first originally came together and how they evolved throughout the universe’s history.


The existence of the isolated pockets made study leader Melissa Graham think of the star Thrial – a fictional star which is located a million light years away from any other star, in the fictional novel Against a Dark Background penned by author Ian Banks.


Graham’s findings


Planets that are surrounding these intracluster stars saw their demise by the explosions. However, they would have left a night sky completely devoid of shining stars, Graham says. “We have provided the best evidence yet that intracluster stars truly do explode as Type Ia supernovae,” Graham said, going on to say that hostless supernovae can lead us to the population of other intracluster stars.


In addition, Graham and her colleagues stumbled upon a 4th exploding star, found by CFHT. This star apparently was inside of a red, round region that may be a galaxy small in size or a globular cluster. If it is indeed true that the supernova is part of the globular cluster, it would be the first time a supernova has exploded within the confines of these pocket-sized, compact clusters consisting of less than one million stars. All 4 supernovae were in galaxy clusters that were nearly a billion light years from Earth.


Other kinds of explosions


A Type II supernova explosion involves a star which has 9 times the solar mass, at the very least. When the star’s fuel is close to disappearing, the star will flare up and burst due to the core collapse. Types 1b and 1c involve the same type of star. A more lethal kind of explosion is the hypernova, which has an energy 50 times more powerful than other supernovas, and can result in a black hole.



3 Supernovae Explode In Space

Tuesday, May 26, 2015

Single Molecule Diode Paves Way for Microscopic Electronics - http://clapway.com/2015/05/26/single-molecule-diode-paves-way-for-microscopic-electronics-123/

Researchers at Columbia and Berkeley have successfully created an effective single molecule diode, a development that could lead to the creation of nano-scale electronic devices. The concept of a single molecule diode was first proposed in 1974 By Mark Ratner and Arieh Aviram, and has until now been a tantalizingly unachievable goal in nanotechnology. Now that a one-molecule diode has been developed, the world may be closer to seeing an entire electronic device contained in one molecule.


WHAT IS A SINGLE MOLECULE DIODE?


A diode basically acts as a gate for the flow of electricity. It only allows electricity to travel through it in one direction. Diodes are a crucial part of the circuits that power the electronic devices we use every day, including the microchips that make computers work. The single molecule diode is exciting because it will allow for a new phase in the miniaturization of electronics.


BETTER THAN BEFORE


Although single molecule diodes have been created in the past, this new molecule outperforms previous attempts by far. The older single molecule diodes were simply molecules designed to have an asymmetrical structure. While the asymmetrical structure did give these molecules some of the properties of diodes, it was not enough to achieve completely unidirectional travel of current.


The new single molecule diode is more than 50 times more effective than its predecessors at making electricity flow only in one direction. It also conducts much more power: 0.1 microamps. The new diode achieves these remarkable results through simple means. Instead of focusing on making the molecule itself asymmetrical, the researchers introduced asymmetry into its environment. Since this single molecule diode is so easily constructed, it will be relatively simple to incorporate into current nano-scale devices.


WHAT’S NEXT?


Diodes are not the only electronic components that might be made out of a single molecule. Since Aviram and Ratner’s 1974 paper, scientists have been experimenting with turning molecules into electrical switches, transistors, and more. The hope is that eventually entire circuits will be built out of single-molecule components. The team of researchers that created the new diode will now focus on trying to understand more clearly the mechanics behind why their new device works.



Single Molecule Diode Paves Way for Microscopic Electronics