Showing posts with label light. Show all posts
Showing posts with label light. Show all posts

May 16 – International Day of Light



Posted on May 16, 2018

Did you know that, on this date in 1960, physicist / engineer Theodore Maiman first demonstrated a laser.


And did you know that the word laser is an acronym for "Light Amplification by Stimulated Emission of Radiation"? Hooray for acronyms, which are especially cool when we're able to jam seven words into one - and save about 50 characters!

You probably know that light is like a wave (but also like a packet or particle!), and so it has crests ("upward spikes") and troughs ("downward spikes"). Most things that emit light produce a jumble of different wavelengths...



...but when light all of the same frequency and waveform is emitted from a laser, the wave forms can be (kinda sorta) "stacked" together... And that means that laser light can be focused very tightly. 


And that means that a laser beam can remain narrow while traveling a long distance (like to the Moon and back), and a laser beam can be used to cut things, and many laser beams, together, can make colorful light shows.


Lasers are used for everything from surgery to super delicate paper cutting, from bar code readers to laser printers, from DNA sequencing instruments to fiber optics communication. So hooray for Maiman, and hooray for lasers!


Today's holiday, International Day of Light, is on May 16 because of that laser anniversary, but this UNESCO holiday isn't just about the science of light - it's also about art and culture and entertainment, all of which require light but also which provide metaphoric light of their own!

There is a light photography contest as well as a variety of local events. Here are some wonderful photos of light:








 


November 21 - How Fast Is Light? REALLY Fast!

Posted on November 21, 2017


Scientists don't tend to be satisfied with a description like "really fast." Scientists look for a way of measuring exactly how fast something moves. Even something that moves really, really, really fast, like light.

On this date in 1676, the Danish astronomer Ole Rømer presented his data and method for calculating the speed of light.

The story of Ole Rømer's work in this field is pretty complicated. But two important points come out of this story:

1. The story of science is almost always a story of collaboration - of working together. A scientist may explore a question raised by another scientist. She or he may use a method or even an idea about a method thought up by another scientist. He or she may use the data gathered by another scientist and put a fresh analysis on it, or extend the findings by gathering more data.

2. Communication is very important. Someone may have great data - but lose it in a fire. Someone may have an important idea - but if he or she only presents it orally, and depends on others to record he idea in writing, the reporters may get it wrong. Someone may have a clear understanding of a slice of the universe but may not express it clearly to other scientists and to the general public.

Here are a few bits from the story of Ole Rømer's measurement of the speed of light - you will notice how collaborative his work was, and you will see how important records and communication are:

It was very important to people to be able to measure longitude - making accurate maps and finding the way across featureless oceans depended on it. In the early 1600s, Galileo had proposed a way to use observations of the eclipses of the moons of Jupiter as a way of creating a kind of precise clock. In other words, an astronomer looking at Jupiter's moon Io can note the precise time that Jupiter's shadow falls on Io and the precise time that Io emerges from Jupiter's shadow.

In the late 1600s, astronomers Jean Picard, Giovanni Cassini, and Rømer all used Galileo's idea; they observed 140 eclipses of Jupiter's moon Io from Copenhagen, Denmark, and Paris, France. Comparing the times of the eclipses, they were able to figure out the difference in longitude between the two cities.

Cassini noticed discrepancies in his measurements over time, and he theorized that light took time to travel to Earth. Ole Rømer took up Cassini's suggestion, and he set about to prove the idea that light traveled at a finite speed. He took all the data about eclipses, from all three scientists, and then gathered more. 

Rømer figured that there are times when Earth's orbit and Jupiter's orbit line up so that Earth is moving toward Jupiter, and there are other times when Earth is moving away from Jupiter. In the diagram below, as Earth moves around the Sun from Point F to Point G, it is approaching Jupiter and Io. As in continues to orbit the Sun, going from Point L to Point K, it is moving away from Jupiter and Io. Rømer knew that he could measure the delay in the eclipse sightings and compute light's speed from that delay.



Unfortunately, Rømer didn't write all of that up himself. Instead, he presented his work to the French Academy of Sciences, orally. The record we have of that presentation was written by a reporter. And....the reporter didn't understand Rømer's presentation, and he wrote about it with deliberately vague and wordy sentences so that his lack of understanding wouldn't be too obvious!

Another bummer is that Rømer's data and observations were all destroyed a couple of decades after he died in a huge fire. We can be very glad that one of his assistants, who later became an astronomer, described and wrote about Rømer's observations. 

Rømer himself did not calculate the exact speed of light, but other astronomers were able to take his data and make the calculation. 

Still, many scientists still thought that light traveled instantaneously. It took some time and checking and rechecking - and by 1727, science as a whole fully accepted the fact that light has a finite speed. Later astronomers were able to use Rømer's data combined with more recent data - and, as timepieces got better, scientists were able to make more and more precise observations - to calculate the speed of light. By the early 1800s, it had been calculated as just a bit more than 300,000 km/second. Now we are even more precise, with the speed of light measured as 299,792.458 km/second.

According to science fiction, we will be able to be-bop
all over the universe, traveling instantly from
one spot to another, perhaps trillions of miles away.

According to science, that may never be possible.
If you want to read an article about "faster than the speed
of light," Fact/Myth website has a good one.

 
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February 28 – National Science Day in India

Posted on February 28, 2016

One of India's most recognized and respected scientists is C.V. Raman.

I like referring to him as “C.V.” because his full name is Chandrasekhara Venkata Raman. Which is a lot to type.

On the other hand, like Charles Darwin and Albert Einstein, at least spell check know's Raman's full name and didn't allow me to accidentally type something like Chardrasekhara or Chandrasakhara or....whatever else my flying fingers blundered out.

And since 1929, Raman's full name ALSO included “Sir,” because he was knighted by Britain.

So, why am I bringing up Sir Chandrasekhara Venkata Raman today? Just because he was an Indian scientist and today is National Science Day in India?

Actually, it is because of Raman that today was chosen to celebrate and promote science in India – because today is the anniversary of his most important, Nobel-Prize-worthy discovery: the Raman effect.


So...what's the Raman effect?

Simply stated, the Raman effect is the inelastic scattering of light.

You probably know that visible light is a form of electromagnetic radiation, along with infrared, microwaves, X-rays, radio waves, and ultra-violet light. All electromagnetic radiation travels in little “packets” called photons.

I bet you have heard that, on a clear day, the sky looks blue because of scattering. But what is being scattered by what?

Air is not empty space – it's full of lots of different particles and molecules, most of which are invisible to us. When light from the Sun hits particles or molecules, some of the photons's paths are disrupted, and the various photons scatter about randomly. And blue photons have the tiniest wavelengths of all visible light, so they tend to get scattered more than green or yellow photons, and especially more than orange or red photons.

This is called Raleigh scattering, or elastic scattering. The photons that scatter shoot off on other, random paths, but they don't change their frequency and wavelength. In other words, a photon of blue light stays a photon of blue light.

In 1923, a physicist predicted that a few photons would scatter in another way. They would scatter by excitation – in other words, they would change frequency and wavelength, either gaining or losing energy. A photon of blue light might become a photon of red, or vice versa.

In the diagram above, the incoming Sun's light is yellow,
as is the Raleigh-scattered light. The two pink arrows
show the Raman-scattered light.

In the diagram above, the green laser shines through a crystal.
Some of the light is scattered. Most of the scattered light is
still green (Raleigh - elastic), but a bit of it is now pink
 (Raman - inelastic).


On this date in 1928, Raman and K. S. Krishnan discovered the predicted behavior. Only about one photon in 10 million changes wavelength as it scatters, but they were able to observe it as light passed through a liquid.

(Actually, two Soviet scientists discovered this same sort of scattering as light traveled through crystals about a week before Raman and Krishnan's discovery! The reason that the “effect” is named after Raman – and the reason that Raman and Krishnan share a Nobel Prize for the discovery – is that the Indian scientists published their findings before the Russian scientists did.)

In 1928, the Raman effect seemed important to scientists, especially those in the field of spectroscopy (the study of light that has been emitted from, reflected from, or shone through a gas, liquid, or solid). But I don't know that the Raman effect had much...um...effect on the rest of us. However, these days there are a lot of utilities in many different fields. Here's a practical one: a Raman scanner is a hand held device used to detect drugs, explosives, hazardous chemicals, gases, and so forth. It is used by narcotics squads, airport security, forensic detectives, and security experts.


For more...

Check out this article on other Indian scientists.



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