“The detected oxygen is actually doubly-ionized oxygen atoms, and not oxygen molecules which we breathe,” lead researcher Akio Inoue of Japan’s Osaka Sangyo University told Gizmodo. “So, we could not breathe in the 13.1-billion-light-year-away galaxy we observed if we were there.”
Showing posts with label Science Journal. Show all posts
Showing posts with label Science Journal. Show all posts
A team of researchers just confirmed the presence of oxygen in a galaxy 13.1 billion light years away—the furthest oxygen has ever been detected. Their findings suggest that this may have been the first oxygen to form in the early universe.
Hailing from the National Astronomical Observatory of Japan and a number of Japanese universities, the scientists based their conclusions on observational data collected by the Atacama Large Millimeter/submillimeter Array (ALMA) observatory. They discovered the galaxy, SXDF-NB1006-2, just four years ago, and have been trying to identify the elements that are present ever since. They describe their findings in a new paper published inScience.
As expected, the galaxy contained hydrogen. But the team was much more curious about the potential presence of oxygen, which they hoped would give key information about how the element formed in the first place.
If oxygen was present, their models of the galaxy suggested that it would be undergoing the process of cosmic re-ionization, where space radiation ionizes clouds of gas. As the gas re-ionizes, it also releases a tremendous flare of light, like you see happening in this simulation of the process over a 5 million year timelapse:
Because the flare is so bright, researchers hoped that, even at a distance of 13.1 billion light years, they would still be able to detect it with ALMA. Their hunch payed off: A sweep with ALMA found a telltale flare showing that oxygen is present.
That doesn’t mean it’s anything close to the oxygen we breathe today. For starters, there’s just not that much of it. The amount is fairly tiny—less than one-tenth of the oxygen found in the sun. This has implications for the age of that oxygen.
“The small abundance is expected because the universe was still young and had a short history of star formation at that time,” co-author Naoki Yoshida of the University of Tokyo said in a statement. “In fact, our simulation predicted an abundance ten times smaller than the Sun.”
On Earth, the presence of oxygen is tied to the presence of life, especially our own. The discovery of oxygen so far away raises questions about the possibility of life out there—either native life forms or perhaps an environment ripe for colonization by us. But this oxygen wouldn’t be something we could breathe.
“The detected oxygen is actually doubly-ionized oxygen atoms, and not oxygen molecules which we breathe,” lead researcher Akio Inoue of Japan’s Osaka Sangyo University told Gizmodo. “So, we could not breathe in the 13.1-billion-light-year-away galaxy we observed if we were there.”
“The detected oxygen is actually doubly-ionized oxygen atoms, and not oxygen molecules which we breathe,” lead researcher Akio Inoue of Japan’s Osaka Sangyo University told Gizmodo. “So, we could not breathe in the 13.1-billion-light-year-away galaxy we observed if we were there.”
Although this oxygen couldn’t support life as we know it, Inoue said that this discovery does lead us down a fascinating path: It helps answer the question of where—and when—oxygen formed in our universe in the first place.
“These oxygen atoms we found are a kind of the first oxygen ever produced in the Universe, because oxygen did not exist at the Big Bang. In fact, all elements heavier than lithium are produced inside stars and are spread out the Universe when they die,” Inoue told us. “And oxygen and other elements make up dust particles which eventually make up planets and possibly life on them. Therefore, our finding shows the origin of oxygen, one of the most important elements for humans, in this Universe.”
Now that the researchers have confirmed the presence of oxygen, their next step is to try and figure out how that oxygen moved away from that galaxy. With that information, they hope untangle even more about just what the presence oxygen means to life in our universe.
"We found an accelerated accumulation rate of ice in the uppermost 100 to 300 meters of the polar cap," said Dr. Isaac Smith, a postdoctoral researcher at SwRI and lead author of a paper published in the May 27 issue of Science. "The volume and thickness of ice matches model predictions from the early 2000s. Radar observations of the ice cap provide a detailed history of ice accumulation and erosion associated with climate change."

Like Earth, modern-day Mars experiences annual rotation and seasonal cycles, as well as longer cycles, that influence the distribution of ice. However, these longer cycles might be more pronounced on Mars. This is because Mars' tilt changes substantially -- by as much as 60 degrees -- on timescales of hundreds of thousands to millions of years. By comparison, the Earth's tilt varies by only about 2 degrees over the same period. On Mars, this greater variability determines the amount of sunlight reaching a given spot on the surface and thus the stability of ice at all latitudes.
"Because the climate on Mars fluctuates with larger swings in axial tilt, and ice will distribute differently for each swing, Mars would look substantially different in the past than it does now," said Smith. "Furthermore, because Mars has no oceans at present, it represents a simplified 'laboratory' for understanding climate science on Earth."
Detailed measurements of ice thickness show that about 87,000 cubic kilometers of ice have accumulated at the poles since the end of the last ice age about 370,000 years ago; the majority of the material accumulated at the martian north pole. This volume is equivalent to a layer of 60 centimeters if spread uniformly across the surface. These results provide a means to understand the accumulation history of the polar deposits as related to Mars movements, such as orbital eccentricity, axial tilt, and rotation around the Sun. The results will support modeling efforts to understand the martian climate, looking at the movement of ice from poles to mid-latitudes during climate cycles.
"Studying ice on Mars also is important to the future of human exploration of the Red Planet," said Smith. "Water will be a critical resource for a martian outpost."
"An ice age recorded in the polar deposits of Mars" is published. This work was funded by NASA's Mars Reconnaissance Orbiter project.
To extract scientist within us Google has launched a new app that turns our phone into a powerful little research lab. The app called Science Journal, uses the sensors in phone to measure and record data in real time, including movement, light and sound.
With this app Google has once again proved that smartphone is not only about games, Whatsapp etc, Smartphone can be much more than that. The Android app puts a research lab in our pocket, making it possible to use smartphone’s sensors in ways that may not otherwise be readily accessible. As well, Science Journal can be used to store observational notes, generate graphs, and more.
In 3 words we can describe Google’s Science Journal as ‘doing science simple.’
The app uses tools like phone’s ambient light sensor for light intensity comparisons. App also let user measures how loud a noise is and comparing it to other noises, and recording other things from environment.
We can also add our own photos and notes to our projects, adding extra details or reminders for our future self. When we add data, the app will generate graphs of it in real time, which we can use to compare the data to the results from other projects. The app uses sensors we’ll find on our phone like accelerometer, microphone, and such.
To help kids get started with their own science experiments in these summer breaks, Google has partnered with exploratorium to create “getting started” activities, guiding users through light and audio investigations, using Science Journal with physical devices to record data (wind spinners, in this case), and how to record motions. The app is available now on Google Play Store.





