1/16/2019

Strong coupling of sound and light can be achieved through the whispering effect


Researchers at Imperial College London, Oxford University, and the National Physical Laboratory used the whispering gallery effect to confirm the existence of a "strong coupling mechanism" between light and high-frequency sound waves. This discovery not only has a major impact on traditional and quantum information processing technologies, but also allows large-scale testing of quantum mechanical behavior. Related papers were recently published in the famous "Optics" magazine.

The research team mainly used the "whispering gallery mode resonance". This phenomenon is named after an effect observed in St. Paul's Cathedral in the 19th century. In St. Paul's Cathedral, when you speak softly against the wall at one end of the arcade, you will pass through the giant dome of the church and clearly pass to the opposite wall, so that the other person can clearly hear what you are saying.

The researchers injected light into the optical microresonator through a tapered fiber. The light was reflected multiple times around the surface of the tiny circular glass structure and cycled thousands of times inside the structure. Since the glass ring resonator can store a large amount of light, these light energy "Shake" the molecules in the material to produce sound waves.

When light circulates over a circular glass structure, it can interact with 11 GHz acoustic waves, causing light to scatter in the opposite direction. This interaction allows energy to be exchanged between light and sound waves at a rate. However, both the light field and the sound field are attenuated by a friction-like process that prevents the two from coupling. The team used two whispering gallery modes to overcome this challenge and achieved a coupling rate greater than the friction-like process. In a tiny glass structure, light and high frequency sound waves are coupled to each other.

The research team is preparing to conduct further experiments at temperatures close to absolute zero to explore quantum mechanical behavior and develop quantum technology.

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1/14/2019

Chang 'e-4 and yutu 2 successfully completed each other's shooting, and chang 'e-4 mission was successful


On January 11th, the lander (right) and the inspector photographed on the large screen of the Beijing Aerospace Flight Control Center.


On January 11th, the No. 4 lander and the Yutu No. 2 patrol were working normally. Under the support of the “Baoqiao” relay star, the mutual shooting was successfully completed. The ground receiving image was clear and intact, the Chinese and foreign scientific loads were working normally, and the detection data was effectively transmitted. The scientific experiment project was carried out smoothly and reached the established target of the project, marking the successful completion of the No. 4 mission. At this point, China’s lunar exploration project has achieved “five wars and five shortcuts”.



On January 11th, the lander (right) and the inspector photographed on the large screen of the Beijing Aerospace Flight Control Center.

The scientific researcher carried out the path planning of the patrol device according to the terrain information around the landing photographed by the navigation camera, and sent the camera remote control command through the "Bridge Bridge" relay star. The patrol panoramic camera images the lander and the lander topography camera images the patrol.



On January 11th, at the Beijing Aerospace Flight Control Center, researchers were working intensely.

After receiving and processing the ground data, at 16:47, the image of the lander and the patrol was displayed on the large screen of the Beijing Aerospace Flight Control Center. The image clearly shows the landform of the lunar back around the lander and the patrol, and the five-star red flag on the two devices is particularly eye-catching.



This is the image of the Yulu No. 2 patrol camera on the No. 4 lander terrain map camera.

Since the 4th probe successfully landed on the back of the lunar area on January 3, it has completed tasks such as relay star link connection, payload start-up, two-unit separation, patrol moon-day dormancy and wake-up, and two-way mutual shooting. After the successful completion of the engineering task, the No. 4 mission will be transferred to the scientific exploration stage, and the lander and the patrol will continue to conduct in-position detection and lunar patrol detection.



This is the Yutu No. 2 patrol camera panoramic camera for the No. 4 lander imaging.

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1/11/2019

The most important hair is not on the surface, but hidden in your body.


Researchers at the Yaksi team at the Norwegian University of Science and Technology's Kavli System Neuroscience Institute study the anatomy and function of the brain by observing the brains of zebrafish.

Cells growing along the ventricles are provided with tiny hairy projections called cilia. Little is known about cilia, but we know what happens if they stop working.

People with cilia defects may develop neurological diseases such as hydrocephalus and scoliosis.

New research from the Yaski team at the Norwegian University of Science and Technology's Kavli Institute of Neuroscience shows that cilia are essential for normal brain development.

The human brain has four fluid-filled cavities called the ventricles, all of which are interconnected. The brain is produced and filled with cerebrospinal fluid, which is continuously moving, but the specific movements are different because of what we are doing.

"There are several theories, but over the years, this fluid cycle has been thought to provide nutrients to the brain while also removing waste," said Nathalie Jurisch-Yaksi, a senior researcher at the Kavli Institute at NTNU.

"The flow of cerebrospinal fluid helps to transmit molecular signals throughout the brain," said Emre Yaksi, a professor at the Kavli Institute. It is impossible to conduct such research on humans for moral and practical reasons. Therefore, the research team chose to study zebrafish juveniles.

Zebrafish juveniles are ideal for this type of research. They are vertebrates like humans and can tell us how the human brain develops and works. In fact, zebrafish are transparent at an early age. This means that researchers can study the brain development and function of zebrafish in great detail without any intervention and without causing any pain.

“We can even investigate every cell and every cilia,” says researcher Christa Ringers.

Researchers at the Yaksi team found that cell populations with cilia are distributed in different regions of the ventricle, which together form a stable fluid and directional flow.

Heartbeat pulsation and body movement also affect the circulation of cerebrospinal fluid, but the movement of cilia seems to guarantee a stable fluid flow in a single ventricle. This flow is local, so it is mainly limited to each ventricle. But at the same time, it seems that it is necessary to separate the flow to keep the pipes open between different ventricles.

"If we stop the movement of the cilia, the catheter that connects the ventricles will close," Jurisch-Yaksi said. Fluid flow in each ventricle and fluid exchange between different ventricles depends on whether we are stationary or moving.

"As long as the fish is at rest, we find that there is very little fluid exchange between the ventricles, even if the heart beats, causing some flow between them," said researcher Emilie Willoch Olstad.

But when we move, it all changes. Exercise results in a large degree of fluid exchange between different ventricles. There are two main types of cilia, sports or non-sports, also known as primary cilia. The Yaksi team examined the movement of cilia.

Unlike most other cilia that cause fluid transfer in the human body—for example, the brush-like respiratory cilia that protects the lungs, Kavli researchers found that the cilia around the developing zebrafish's ventricles have a propeller-like form of motion, much like sperm. tail.

At the same time, cilia can also help the brain stay young and healthy. New nerve cells grow near the wall of the ventricle filled with fluid. From here, they migrate to different parts of the brain.

The differentiation of these nascent cells is thought to be influenced by nutrients and molecular signals that are transmitted through the cerebrospinal fluid near the ventricular wall.

In zebrafish, the birth of new neurons, also known as neurogenesis, occurs not only in the developing brain but also in adult fish. Recent research has shown that this happens to humans as well.

The dynamic motion of the study fluid is very complex and requires a multidisciplinary approach. Mathematicians, engineers, and physicists can help understand how ciliary movement occurs and produces flow.

The Yaksi team at the Kavli Institute is eager to work with engineers because engineers can help develop better analytical tools and computer models to study the fluid circulation in the brain. They are actively looking for people and collaborators with the right skills. Their research is far from over. The next step is to manipulate the cilia to see if it is possible to affect the brain function of the zebrafish.

For example, when cilia-mediated flow is disturbed, how will neural activity and even circadian rhythms change? Zebrafish are usually much more active during the day than at night. Does changing cerebrospinal fluid flow change the way fish perceive and react to the environment at different times of the day? These will be the next issue that the researchers plan to address.

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1/10/2019

BCI technology can connect to brain signals and restore all touches of amputated patients



According to the British Daily Express, artificial intelligence will soon be able to make the amputee feel the touch again by “hijacking” the brain. Hank, a moderator of the YouTube? Science Show

According to the British Daily Express, artificial intelligence will soon be able to make the amputee feel the touch again by “hijacking” the brain. Hank Green, a moderator at the YouTube? Science Show, detailed how scientists have made major breakthroughs in improving prosthetics with artificial intelligence.

In recent years, advances in technology have helped millions of amputees and have regained their physical use. However, man-made mechanical devices are always limited because the user never gets a complete feeling, which means that many things, such as taking a cup, are difficult for them.

There are reports that scientists are studying how to help patients recover their sense of touch with the help of a brain-computer interface (BCI). Green revealed: "BCI can be used to access the nervous system. There are many similarities between the electronics industry and the nervous system. The entire nervous system of the human body acts like a transceiver. In your body, nerve signals can convey motion commands or changes. Physical state, for example, makes you change from awake to sleep."

He claims that touch is the most important thing for prosthetics, because touch can tell you whether an object is hot or cool, taut or relaxed, and can help you lock the position of the object. Scientists can use BCI to connect the brain's tactile functional areas and listen to or send nerve signals.

Green explains how scientists use EEG scanners to understand how the brain sends command signals to perform tasks. The brain's discharge mode is capable of writing neural coded signals, each with a different coding mode. What researchers need to do is transform these signals into a language that can be written into a computer to perform manipulation of the limbs.

Green added: "We have seen this technology before, but recently the development of artificial nerves has enabled tactile signals to be fed back to the brain. Artificial neural systems will be equipped with sensors for detecting fingertip pressure and vibration, and Can help the user detect the target texture and determine the required grip."

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1/08/2019

Shanghai's smart city goes further, and the AI ​​double-decker sightseeing car is on the street.


On December 18th, Baidu cooperated with Shanghai New Heights Travel Company to launch the AI ​​double-decker sightseeing car.

According to reports, the AI ​​double-decker sightseeing car released this time is the world's first intelligent double-decker sightseeing car with AI technology transformation, which will bring more convenient and more efficient passengers in the fields of brushing face, voice translation, question and answer guide. Smart travel service.

Unlike ordinary vehicles, sightseeing vehicles generally use the form of a day ticket or a multi-day ticket, which can be used multiple times within a specified time period. Therefore, passengers need to check the ticket multiple times. The AI ​​double-decker sightseeing vehicle is equipped with face recognition technology. Automatically verify the identity of tourists, visitors only need to brush their faces and get off.

The AI ​​double-decker sightseeing car will be operated in two routes. The route covers Pudong and Puxi. There are many tourist attractions in the city, such as Chenghuang Temple, Yu Garden and the Bund. Visitors can choose the right one according to their needs. route. Technical solutions for brush-face rides, intelligent translations, audio guides, etc., will be officially launched and will be continuously updated in January 2019.

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1/03/2019

Can blood collection measure the biological clock? Multinational researchers explore new methods for detecting biological clocks


Everyone has their own unique set of biological clocks. At present, many national researchers are trying to develop a new method to quickly detect the human body clock, in order to better understand the human body and ensure health.

The biological clock is a system that controls the daily biological rhythm in the body, helping to regulate about 40% of the human body's genetic activities, and the "rhythm arrangement" of sleep, eating, body temperature, blood pressure, etc. are all related to it. A common method of measuring the body clock is to monitor changes in melatonin concentration in the human body. However, this method requires the subject to sit in the dark room for a long time and collect blood or saliva samples every hour or so.

In the new issue of Scientific American magazine, in order to develop more convenient, accurate and inexpensive detection methods, three teams in the world are currently stepping up research, and they have chosen the same research direction, that is, by measuring blood. Changes in the ribonucleic acid are used to assess gene activity, and then machine learning algorithms are used to calculate which genes are better able to reveal human rhythms.

At present, each research team has been able to measure the body clock only once or twice. The test method developed by the team led by Achim Kramer of the University Hospital of Shari, Germany, is very close to clinical application. The difference between the results measured by this method and the results measured using melatonin is only within half an hour.

Researchers say that the circadian clock disorder is associated with many diseases such as diabetes, heart disease, and depression. If you can find a convenient way to detect the body's biological clock, it will help people better understand and treat these diseases.

In addition, there are more uses for related detection methods, such as detecting whether people stay up late at night, and the accuracy rate is now over 90%. This allows the police to quickly determine if the driver is not getting enough sleep when dealing with a traffic accident, or to help check the pilot's suitability for a job with a higher safety requirement.

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1/02/2019

DIY simple tablet cooling rack


First prepare the tools you want to use.



Cropped the section and found that there was a top surface missing. 


a pair of speakers


The front part is the hole for adjusting the sound, the bottom is the hole of the switch


A pair of speakers are installed~~



Cooling holes on the back (preferably more holes)


Connected power amplifier board


Visceral structure (install the power jack in the lower right corner of the back, suggesting that the power jack is for the speaker and fan, the tablet power supply is charged on the left side of the hole). The left side is inserted into the audio and data lines, front Inside the mounting bracket to prevent the tablet from falling backwards




Front, right in the upper corner, install the rotary switch to prevent the tablet from leaning forward. The right side of the large circle is for sound adjustment. 5 small is the decoration, and the bottom right is the switch.




The side horn must be firm



Overall picture

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