“The distinction between the past, present and future is only a stubbornly persistent illusion” ― Albert Einstein

Universe: A Dream reigning in the veins

Friday, 22 July 2022

James Webb Space Telescope may have spotted the most distant and the oldest known galaxy till date

 


Image of Glass-z13 galaxy captured by JWST


Glass-z13 is the name of the galaxy that has been spotted by Nasa's James Webb Space Telescope (JWST), which scientists believe to be the most distant galaxy known to mankind to date. From a preliminary study, it is estimated that the galaxy was formed 13.5 billion years ago, which is around 300 million years after the Big bang (Big Bang occurred 13.8 billion years ago). This is an improvement of around 100 million years from the farthest known galaxy previously. 

Here we are gazing at the most distant starlight that any human has ever seen. The more distant the body, the more time it takes for the light to reach us. So looking farther deep into space means we are looking back in time. So we are not only looking at the farthest starlight but also these are the oldest photons to reach us. We are practically looking at the galaxy as it was 13.5 billion years ago!! Isn't it amazing!! Thus rightly said by Einstein, "The most comprehensible thing about the universe is that it is incomprehensible!!"

The observation was made in the "early release" data from the observatory's main infrared imager called NIRcam, but the result was not made public in the first set of publications of JWST. It needed some time to translate the data from infrared to visible spectrum, where the galaxy appeared as a blob of red with white in its center. The farther an object is situated from the observer, the farther the light has to travel, and due to the expansion of the universe, the light wavelength is stretched from the visible to the infrared region of the spectrum. This is where JWST specializes. It is well equipped with infrared detectors that are suitable to make observations of very distant objects right till the big bang with unprecedented clarity.

Two separate teams of astronomers, one headed by Mr. Naidu and the other by Marco Castellano have independently taken the observations, analyzed the data, and reached the same conclusions. This is why they are confident about the results they have obtained. Currently, the study is under peer-review in a scientific journal and posted publicly on a preprint server.

The team of scientists believes that they have to conduct a detailed spectroscopic analysis of the data they have obtained to confirm their claim and also extract more knowledge about the galaxy. As of now, they know that the galaxy has a mass of billion suns, which is really surprising considering how soon after the big bang it formed. They also need to confirm the distance of the galaxy that they have claimed. The spectroscopic analysis will also reveal some detailed properties of the galaxy. 

Along with GLASS z-13 they have also found the signature of another galaxy known as GLASS z-11, which is not as ancient as the former but around a similar time scale. JWST is expected to open a new era of astronomy, with records being broken with each observation. We have started to see the results already!! We hope that JWST outperforms its expectations and helps us to reveal the deep-lying secrets of the universe. As of now, our fingers are crossed!!

PC:  NASA/ESA/CSA

By

Prabir Rudra

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Sunday, 17 July 2022

Black Hole: The monster of the Universe

 



A black hole is a region in spacetime where the gravitational pull is so strong, that no matter can escape from it. The gravity in such a region is of such magnitude that not even electromagnetic radiation (light) can escape from it. Theoretically, black holes were predicted from the solutions of the field equations of general relativity, as regions in spacetime with infinite curvature, such that gravity in the region becomes extremely large.




The boundary of a black hole is called the event horizon, which has great significance for a particle falling into the black hole. The event horizon is basically a point of no return for the infalling bodies, because once a particle crosses the event horizon it does not have any possibility of making it back, and is destined to be engulfed by the black hole. For an external observer, the infalling body will appear to fall into the black hole for eternity due to time dilation near the black hole. Time dilation is caused by the extreme gravity of the black hole and the flow of time is slowed down drastically. The object that is falling into the black hole will appear to fall very slowly to an external observer and the event of falling will seem to occur for eternity.




Using quantum field theory in curved spacetime famous cosmologist Stephen Hawking predicted that a particular type of radiation is emitted from the event horizon of a black hole. This radiation is called the Hawking radiation, whose temperature is inversely proportional to the mass. This temperature is of the order of a billionth of a kelvin for stellar black holes due to which it is almost impossible to detect it directly.





Black hole as a Mathematical entity


In 1916Karl Schwarzschild derived the first solution of the Einstein's equations of general relativity which directly showed the presence of a black hole theoretically. For a long time black holes just remained a mathematical curiosity with no physical reality associated with it. With the discovery of neutron stars by Jocelyn Bell Burnell in 1967, new interest was generated in the field of gravitationally collapsing bodies. 

Formation of a black hole


A star at the end of its lifetime undergoes gravitational collapse and forms a white dwarf which is a compact astronomical object. Further collapse from this state will occur if the mass of the white dwarf exceeds 1.4 solar mass (Chandrasekhar limit) and the resulting object will be a highly compact neutron star. If this state is not in equilibrium, then further collapse is a possibility, which will result in a singularity. If the singularity is shrouded by an event horizon, then it is a black hole. The first black hole known to us was Cygnus X-1 identified in 1971.

After the formation of a black hole


After a black hole is formed it can grow by absorbing the surrounding mass due to its immense gravitational pull. Supermassive black holes (millions of solar masses) can absorb stars or even other black holes. The presence of a black hole is generally inferred by the way it interacts with the surrounding matter and electromagnetic radiation. Any infalling matter in the black hole forms an accretion disk which is enormously heated due to friction. Stars which are in the close vicinity of a black hole will be shredded and engulfed by it, whereas stars which are at a considerable distance will orbit the black hole. The mass of the black hole and its location can be inferred from the orbit of these stars. It is believed that supermassive black holes exists at the centres of most galaxies. There is a radio source at the heart of our galaxy Milky Way known as the Sagittarius A*. It is believed that it houses a supermassive black hole of 4.3 million solar masses.

Recent Advancement


On February 11, 2016 gravitational waves due to a black hole merger was recorded by the LIGO and Virgo scientific collaboration. On April 10, 2019 the first direct image of a black hole was recorded by the Event Horizon telescope. It was situated in the M87 galaxy around 50 million lightyears away from us. Till date gravitational lensing is possibly the best method to infer the presence of a black hole. Although only around 20 black holes have been detected so far, it is expected that there are hundreds of millions of such monsters roaming in the universe. Having an encounter with such a thing is not going to be a pleasant experience at all!!

By
Prabir Rudra

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Tuesday, 12 July 2022

NASA releases the first image taken by the James Webb Space Telescope : The farthest that humanity has ever seen



PC:  NASA, ESA, CSA

Finally, the moment has arrived!! Nasa has released the first image taken by the James Webb Space Telescope (JWST). The deepest and the sharpest infrared image is known as Webb's First Deep Field. The image focuses on the galaxy cluster SMACS J0723.3-7327 which lies around 4.6 billion light-years away from us. Since the mass of the galaxy cluster is huge, it distorts spacetime in such a way that objects behind the cluster are magnified. As a result, some distant galaxies lying behind these clusters are visible in the image. That's the aura of gravitational lensing!!

This is the farthest that humanity has ever seen-the deepest and the sharpest view of the cosmos till date. Each bright dot in the image, barring the very bright ones, represents a galaxy. The slice of the vast universe focused in the image, covers a patch of sky approximately the size of a grain of sand held at arm's length by someone on the ground!! Isn't it amazing!!! Intimidating indeed!!

The image was the result of a day-long observation with the JWST. US President Joe Biden unveiled the image during an event in the White House on Monday, July 11, 2022. This image surpasses all previous records held by the images from Hubble Space Telescope. But the scientists believe that this is just the beginning of a new era in infrared astronomy-The JWST era. 

By
Prabir Rudra
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Monday, 11 July 2022

The wait is coming to an end: NASA is all set to release its James Webb Space Telescope's first images on 12th July, 2022





Nasa is going to release its James Webb Space Telescope's (JWST) first full-colour images on 12th July 2022. This will mark a new dawn in space science with this revolutionary apparatus going online. We will get enhanced eyes through which we will be able to look deep into space and peer deep into time, right to the dawn of the universe. A time to rejoice for everybody associated with space science!! A time to thrill and wait for the release.

It will be just like an unveiling in an exhibition, drawing the curtain in a photo gallery. All the fine-tuning and adjustment that was necessary have been done and the device is all set to give results in some hours. Nasa will not only release the pictures of different astronomical subjects which are currently being studied by JWST but also give us spectroscopic data from the newly operational observatory.

Nasa has released a list of five celestial subjects which will be studied by JWST as its debut assignment. This list is populated by two nebulae (gas clouds that form nurseries for new stars) and two galaxy clusters. The idea is to look far and look back in time!! Among the data to be published, there is also the spectroscopic analysis of the atmosphere of an exoplanet. This exoplanet is 1100 lightyears away from Earth and roughly half the mass of Jupiter.  




Although all the subjects listed above have been known to us for a long time, there is an expectation of a different level with JWST. JWST will study its subject in the infrared spectrum and it is believed that its results will be 100 times more sensitive than its predecessor, the Hubble space telescope




Considering all these, it is expected that JWST will revolutionize astronomy providing us the first glimpse of the infant galaxies which date back to just 100 million years after the Big Bang, 13.8 billion years ago. The creation of the universe might just be in front of our eyes!! The very thought gives goosebumps indeed!!! 


So the countdown has begun and it is just a wait for a few more hours before JWST starts revealing before us some of the deep secrets of the universe. The live broadcast begins at 10.30 a.m. EDT on Tuesday, July 12, 2022, from the Goddard Space fight center in Greenbelt, Maryland. The released images will be simultaneously made available on various social media sites and also on Nasa's website at  https://www.nasa.gov/webbfirstimages.

From 10.30 a.m. EDT, the live coverage of the image release broadcast will air on NASA TV, the NASA app, and also on NASA's website. The public can also watch this live on various social media sites like Facebook, Twitter, YouTube, Twitch, and Daily Motion. At 12 p.m. following the live broadcast, NASA and its partners (ESA & CSA) will hold a joint briefing at NASA Goddard. The briefing will be live-streamed on NASA TV, the NASA app, and the NASA's website.


By,

Prabir Rudra

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Friday, 1 July 2022

Dark Matter: An Unsolved Mystery

 




As the name suggests, dark matter is an invisible form of matter that is supposed to fill a substantial part of the universe and is responsible for driving some critical cosmological events. One thing is certain, it is not in the form of stars or planets that we can see around us. From the observations, it is estimated that 85 % of the total matter content of the universe must be dark matter. Along with dark energy, it forms 95 % of the total mass-energy content.

Why is it dark?

Dark matter seems to have no interactions with the electromagnetic field, which implies that it does not emit, reflect or absorb light. This is the reason why it is totally invisible to us and hence aptly termed dark matter.





Then how is it detected and what role does it play in the dynamics of the universe?

Observations from the evolution of galaxies suggest that the galaxy dynamics would be quite different if it is governed by the presence of the matter that we see in the universe (visible matter). The galaxy rotation curves (path of motion) would be quite different if gravitational interaction emerged from visible matter only. Many galaxies would never have formed if it was only due to the contributions of normal matter. Simply we need more matter to generate the necessary gravity such that the observed galaxy dynamics can be explained!! To put it in another way, we need around 27 % of matter to explain the observations, but the normal matter is far less than that.

So it is quite understandable that there is a missing link in the picture. Either our observations are faulty or there is some form of matter that is totally eluding our vision, but playing a significant role in the structure formation and evolution of galaxies. This invisible form of matter that generates sufficient gravitational interaction to sustain the galaxy dynamics is dark matter. We cannot see it, but we can feel its presence due to the role played by it. There are other scientific pieces of evidence of the presence of dark matter such as gravitational lensing (bending of light in a gravitational field), Cosmic microwave background radiation (which is a relic of the Big Bang), etc.

What is dark matter made of?  

It is now well known that dark matter has minimal interactions with visible matter & radiation, which is the basic reason behind its mysterious nature. It remains secluded without intermingling with other components of the universe but reveals its presence only through gravitational interaction. So naturally, a question arises regarding the chemical composition of dark matter. In simpler terms, one would like to know what is dark matter made of. This question is not yet answered by the scientific community, but extensive research is underway. It is believed that dark matter is made up of some new kind of elementary particle that is yet to be discovered. 




 

Speculations:

Dark matter is sometimes argued to be some form of antimatter (matter composed of antiparticles of the corresponding particles in the ordinary matter), but this is not correct. The reason is, that we do not see the unique gamma rays that are supposed to form when matter annihilates with antimatter. Some people argue that dark matter can be black holes, which are themselves mysterious invisible objects, and share some common properties. But this is not true either, because black holes are centers of gravitational lensing due to their enormous gravitational pull. If dark matter was present in the form of black holes we would have seen far more gravitational lensing phenomena than we actually see in the universe. As of now, we believe that dark matter must be made up of some exotic particles which are yet to find their places in the periodic table and, about which our knowledge is extremely limited.


By Prabir Rudra


#darkmatter #galaxy #galaxyrotationcurve #cosmology #blackhole #darkenergy #visiblematter #gravitationallensing #CMBR #bigbang #spacetime #spacetimerecipe #gravity #astrophysics

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Dark Energy: The greatest puzzle of modern cosmology

 



At the turn of the last century, observations from Supernova Type Ia confirmed the fact that our universe has entered a phase of accelerated expansion. Two separate teams respectively working on the Supernova cosmology project and the high-Z supernova search team reached this result independently in 1998. They were respectively headed by Saul Perlmutter and Brian P. Schmidt & Adam Riess.  This came as a shocking discovery to the scientific community since the outcome defied our orthodox understanding of the dynamics of the universe.

It is clearly known that gravitational interaction is attractive in nature. So an expanding universe that originated from the Big Bang would tend to slow down due to gravity interacting between the objects such as planets, stars, galaxies, etc. Thus a decelerated expansion of the universe will slowly bring the universe to a halt before the contraction phase sets in. But the discovery of accelerated expansion totally defies this idea, and we are left wondering about the mechanism that is responsible for this strange phenomenon.

It was clear to the scientific community that in order to explain this phenomenon theoretically, we will have to introduce a repulsive (anti-gravitational) interaction, which will counterbalance and even dominate the attractive gravitational interaction. But this repulsion will not jump out of nowhere, and there should be some source for it. So what is needed is basically a matter field that can sustain a repulsive interaction. This matter field is exactly what we term Dark Energy which is a hypothetical matter fluid with negative pressure.




Observations suggest that our universe is basically filled with three major components, namely normal or visible matter, dark energy, and dark matter. It is really very strange that normal matter (which includes all the visible entities around us) accounts for the smallest portion of the universe, which is around 6 %. Around 26 % of the universe is considered to be dark matter and the rest around 68% is dark energy. So it is evident that the present universe is dominated by dark energy and its queer exotic properties affect the universe at the cosmological scales, thus driving the accelerated expansion.

The density of dark energy is very low, estimated at around 7 x 10^ (-30) gm per cubic cm. This is considerably low compared to that of visible matter and dark matter, but still, it plays a major role in shaping the dynamics of the universe due to its uniformity across space. From the general relativistic point of view, Einstein’s field equations become inconsistent with the observations at the cosmological scales. This basically means that general relativity in its original form cannot account for the accelerated expansion of the universe in its framework. So we need to introduce modifications to the field equations in order to address this issue. The right-hand side of Einstein’s field equations comprises the matter fields, which can be modified by introducing dark energy. Such modifications have been attempted and found to be consistent with the observations.

There are basically two broadly proposed forms of dark energy, the cosmological constant and the scalar fields such as quintessence. The cosmological constant represents the constant vacuum energy density filling the space homogeneously, whereas scalar fields involve dynamic quantities, whose energy densities vary in space and time.

Cosmological inflation is an enormous and exponential expansion that took place just after the Big Bang. Dark energy can not only explain the dynamics of the late-time accelerated expansion of the universe but can also satisfactorily account for the early-time inflationary evolution of the universe. Alan Guth and Alexei Starobinsky in 1980 proposed that a matter field with negative pressure (similar to that of dark energy) can drive the cosmic inflationary mechanism in the early universe.

In physical cosmology, dark energy is studied extensively to explain cosmological observations and derive a proper cosmological model of the universe. This will ultimately help us get a description of the large-scale structure and the dynamics of the universe. Proper knowledge of dark energy will help us answer critical questions regarding the origin, structure, evolution, and ultimate fate of the universe. As of now we are still shrouded by the darkness of dark energy and trying to find our way out of the puzzle.


By Prabir Rudra


#darkenergy #cosmology #universe #cosmicexpansion #gravity #relativity #spacetime #spacetimerecipe #darkmatter #cosmicinflation


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Wednesday, 29 June 2022

James Webb Space Telescope (JWST): Our eyes in space

 



James Webb Space Telescope (JWST) is soon going to be our eyes in space, giving us information regarding the old and distant objects, which were beyond the capability of the Hubble Space Telescope (HST). JWST is primarily designed for the purpose of infrared astronomy. In contrast to HST, which operated in the frequency range of near-ultraviolet, visible, and near-infrared (0.1 to 1.7 micrometre), JWST will make observations in a lower frequency range, visible range to mid-infrared range (0.6 to 28.3 micrometre). These enhanced capabilities to work in lower frequency and higher wavelengths are expected to provide JWST the necessary thrust that is required to observe deep into time and space. Due to this, it is expected to observe the first stars and the formation of the first galaxies, which was almost beyond the capabilities of HST. It is also expected that JWST can provide us with a detailed atmospheric characterization of the potentially habitable exoplanets, which is vital from the point of view of sustaining human civilization.

The development of JWST was led by the National Aeronautics and Space Administration (NASA) in collaboration with the European Space Agency (ESA) and the Canadian SpaceAgency (CSA). The telescope was launched on an ESA Ariane 5 rocket from the Kourou, French Guiana on 25th December, 2021 at 12:20 UTC. The telescope entered orbit in January, 2022, and presently it is undergoing testing and alignment, which is expected to be over by June, 2022. It is expected to be operational from July, 2022 after which we will understand the true potential of the telescope which is considered to be a huge thermal camera by the scientific community. The telescope is named after James E. Webb, who was an administrator of NASA from 1961 to 1968, during which NASA presented us with some of the famous space programs like the Apollo, Mercury, and Gemini. The telescope is currently operated by the Space telescope science institute in Baltimore, USA.




The development of JWST began as early as 1996, when it was evident that we soon needed something better than the HST, to make serious advances in astronomy and space science. The initial planning was to launch the telescope in 2007, with a cost budget of 500 million US dollars. As expected, there were delays due to scientific and technological issues, budget issues, accidents during deployment, the COVID-19 pandemic, etc. Finally, the construction of JWST was completed in 2016 with a huge cost overrun of 9.7 billion US dollars. Followed by 5 years of extensive testing, the telescope is finally in its orbit and on the verge of being operational soon. This marks one of the greatest astronomical advances that we ever made. JWST is expected to present us with powerful eyes that will unearth important information hidden by the cosmological distances. It is expected to substantially alleviate our limitations to look deep into space and time. With proper data and information, we will be able to understand our universe better and fine-tune our theories by removing the presently existing issues. As of now, we wait eagerly for JWST to be operational and live up to its expectations. NASA has officially scheduled the release of the first official scientific images taken by the JWST on 12th July, 2022 at 10:30 am EDT (1430 GMT).

We conclude the article with some of the salient features of JWST that makes it an instrument of hope for not only the scientists but mankind as a whole.

1) Mission duration:  5.5 years (primary mission), 10 years (planned), 20 years (expected).

2) Manufacturer: Northrop Grumman Corporation, Ball Aerospace & Technologies Corporation, L3Harris Technologies.

3) Mass of JWST when launched:  6161.4 kg  (13584 lb)

4) Dimensions:  20.197 m by 14.162 m  (66.26 ft by 46.46 ft)

5) Power:  2kW

6) Type:  Korsch telescope (minimum aberrations and wide field of view)

7) Primary mirror: 18 hexagonal mirror segments made of gold-plated beryllium.

8) Diameter: 6.5 m (21 ft.) (nearly three times that of HST)

9) Focal length: 131.4 m (431 ft.)

10) Focal ratio:  f / 20.2

11) Collecting area: 25.4 sq. m. (273 sq. ft.)

12) Wavelengths:  0.6 to 28.3 micrometre (Orange to mid-infrared).

13) Temperature:  Below 50 K (-223 degree centigrade,  -370 degree Fahrenheit) (very cold)

14) Location: deployed in a solar orbit near the Sun-Earth L2 Lagrange point about 1.5 million kilometres (930000 miles) from Earth.

15) Shield: 5-layer kite-shaped sun-shield protecting it from warming.


#jameswebb #telescope #spacetelescope #astronomy #astrophysics #cosmology #jameswebbspacetelescope #infrared #jwst #infraredastronomy


By Prabir Rudra



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Thursday, 11 April 2019

First ever Image of a Black Hole captured by Astronomers: Finally Karl Schwarzschild's super idea has a visible form.

   
First Image of a Black Hole captured by Event Horizon Telescope
First Image of a Black Hole captured by Event Horizon Telescope


A dark core surrounded by a flame-orange halo of hot gas and plasma: thats what the first ever image of a black hole (BH) looked like when it was captured by the astronomers for the first time today on 10th April, 2019.  There was a great build up to the event during the last few days when a lot of speculations were floating in the air. Different types of opinions were given on this by different people. Some believed, some did not. It was finally announced during a simultaneous press conference in Brussels, Shanghai, Tokyo, Washington, Santiago and Taipei. The image is of a super-massive BH 50 million lightyears away in a galaxy named M87.

Black holes are star devouring monsters scattered throughout the universe. It is a highly compact object having immense gravitational pull such that even light cannot escape its gravity. According to American physicist John Archibald Wheeler "A black hole is a point in space where matter is so compressed so as to create a gravity field from where even light (with so much energy) cannot escape". These are formed as a final state of gravitational collapse of massive stars. This is the reason why it is very difficult to capture the image of a BH.

In fact the image that was recorded actually captured the surrounding mass (white hot gas and plasma) that it collected in an accretion procedure forming a luminous disc called the accretion disc. It did not record the interior of the black hole. In that sense it could only record the black hole shadow and not the black hole itself.


The image was recorded by the Event Horizon telescope installed specifically for this purpose.  Now it is the turn of Sagittarius A*, the black hole at the centre of our own galaxy, Milky way. Compared to M87, Sagittarius A* is just 26000 lightyears from Earth and is the next target of the Event Horizon telescope. Given its relatively shorter distance from Earth it is assumed that we will receive images of greater precision and clarity. In fact according to the reports the images already received from Sagittarius A* were blurred and lacked clarity due to its high activity. 

During the last two weeks eight telescopes positioned at Hawaii, Arizona, Spain, Mexico, Chile and the south pole zeroed in on M87 and Sagittarius A*. It was like a system of telescopes knit together to form a giant virtual observatory around 12000 kilometers across the globe. This image has been analyzed in six different studies by around 200 experts from 60 different institutions all over the world and was published in Astrophysical Journal Letters on 10th April, 2019.

There are obviously various technical procedures that had to be undertaken in this project. Actually what the telescopes recorded were astrophysical data which were simulated into the image of the black hole. In fact four different groups independently undertook this work of getting the image from the data and all the four finally produced the same image. The event marked the dream come true for many famous astrophysicists who never thought that they will be able to see the image of a black hole in their lifetime. 

Finally its another test passed by Einstein's General Relativity. This along with the discovery of Gravitational waves are the major advances in astronomy that we have made in the present decade and more importantly both upholds the flag of General Relativity.
Today is a time for celebration for astrophysicists and black hole lovers all over the world. Finally Karl Schwarzschild's super idea has a visible form.


Image Courtesy:  NASA

By Prabir Rudra
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Thursday, 4 April 2019

The Amazing Journey of E=mc2 : The Most Famous Equation of the World



More than a hundred years back a deceptively simple formula revealed a hidden unity buried deep in the fabric of the Universe. It connects energy with matter and the speed of light and was discovered by none other than the genius of Albert Einstein in 1905. When we think about E=mc2, we have this vision of an old white haired Einstein. But E=mc2 is not about an old Einstein. It is about a young, energetic and dynamic Einstein whose curiosity knew no bounds. 




The most famous equation of the World
The most famous equation of the World

Albert Einstein


                                                                          A young Albert Einstein


The half inch equation may seem to be so simple at the first look, but it is just a deception. Einstein in a stunning insight united the works of many who have come before him, scientists who fought and even died to form each sides of the equation. This is a story of those people who fought for the truth in spite of resistance and finally unveiled the secrets of nature. The story started long before Einstein with the discovery of E.


E is for Energy

London, England, early nineteenth century:

At that time scientists thought in terms of ‘Force’, ‘Pressure’, etc. They never had any idea about ‘Energy’ which could bring all these quantities under a single umbrella. Nobody knew that a lonely man’s quest for knowledge was going change the direction of science forever.

Michael Faraday was the son of a blacksmith who was lucky to work for a book binder as an apprentice. He never had the opportunity to acquire any elementary education. But he had an unending thirst for knowledge. He read all the books that reached him in the book binder’s shop. He wanted to escape from trade which he found vicious and selfish and wanted to become a servant of science, which he thought makes its pursuers amiable and liberal. He was determined to break free from his daily toil. 



Michael Faraday
19th century scientists were real celebrities of their time and getting a ticket to their lectures was very tough. Moreover at that time science was supposed to be a commodity of the so called gentleman, which Faraday was not. He got lucky when one of his customers got impressed with him and gave him a ticket to a lecture of the great chemist Sir Humphry Davy. Faraday never knew that this was going to change his life forever. 


Humphry Davy


                                                     Sir Humphry Davy



He was highly impressed with Davy’s lecture and became his ardent follower. His real opportunity came when Davy met with an accident while working in his laboratory, which severely damaged one of his eyes. In such a crisis, Davy appointed Faraday as one of his laboratory assistant. This opened the doors of knowledge to Faraday and he eagerly absorbed all that Davy deigned to impart. But who would have ever thought that in time the pupil would surpass the master.

Battery was newly invented at that time and as a result electricity was the order of the day. It was recorded by various scientists including Davy that a magnetic compass placed in the vicinity of a current carrying wire showed deflections.  How could electricity have any connection with magnetism, which were thought to be totally separate subjects at that time!!! Everybody was surprised and nobody could give any explanation to the observed phenomenon. Faraday speculated that perhaps some sort of electrical force is emanating outwards from the wire which was responsible for moving the magnet. This came as a shock to the scientific society nearly 300 years back because the prevailing concept at that time was that electricity flows through a wire and not sideways or out of it.

Electricity creating magnetism


Electricity creating magnetism






Lines of Forces
But Faraday was determined to reach the heart of the problem and unveil the truth. In a great leap of imagination he turned the problem in its head. Instead of an electrified wire moving a magnetic compass he wanted to know whether a static magnet could move a wire. This became the experiment of the century: The invention of the Electric motor. Although he did not understand at that time, he invented a new kind of physics. He had actually invented an over-arching principle. The chemicals in the battery had been transformed into electricity in the wire which would combine with a magnet to produce motion of the wire. Behind all these various forces there was a common ENERGY.




The set up of Electric Motor


The set up of Electric Motor

The achievements of the son of a blacksmith was opposed by many including his own master Davy. Davy was the elected president of the Royal society of London at that time. He accused Faraday of plagiarism (which was proved wrong)  and asked Faraday to put down his application seeking to be a member of the society. Faraday refused to do so and was soon elected a member of the Royal society on basis of his contributions to science. Davy died 5 years later, a victim of his many gaseous (specially laughing gas, N2O) inhalations. He was truly a great scientist of his time and had a few inventions to his name, but history will record his greatest invention as Michael Faraday.

With the passage of time Faraday’s world of invisible forces would lead to a whole new understanding of energy. He had actually shown that electricity and magnetism were not different entities (as it was thought to be at that time) but are forces that can be clubbed together into what is known as Electro-magnetism. He had started what Einstein would call the great revolution of unification.

Electromagnetic fields

Electromagnetic fields


M is for Mass

Paris, France, late eighteenth century:


King Louis XV was at the throne of France. But this was the era when the ancient absolute power of the monarchy was starting to be challenged by the common men. The French Revolution was lurking in the corner. It was the era of enlightenment which reflected that the development of humanity lies in science.

Antoine Lavoisier was an aristocratic wealthy young man who had a passion for science. He was not a scientist by profession. He was actually the head of tax enforcements in Paris. Lavoisier had an idea of building a great wall around the city and to tax every commodity that came in or went out through the wall. These political and economic activities enabled him to fund his scientific research. 

Antoine Lavoisier

Antoine Lavoisier



He was obsessed with matter and wanted to study and classify all its types. He had a great ambition to demonstrate that nature is a closed system: that in any transformation no amount of matter (mass) is ever gained or lost. He conducted an experiment where he heated water and produced its constituent hydrogen and oxygen gases. Then he combined the gases and got back water again. In the whole process he demonstrated that the total initial mass of the reactants was equal to the total final mass of all the products and successfully showed that no amount of matter was gained or lost during the transformation. 




Lavoisier's Experiment


Lavoisier's Experiment
To confirm this he conducted numerable other experiments which demanded accuracy. For this he had to commission very sensitive expensive apparatus which became possible only because of his position as a tax collector.  He became obsessed with accuracy. His experiments showed that forms of matter may change with transformations like solid, liquid or gas. Wood may become ash and smoke, metals may rust, solids may become liquid, but matter, the tiny atoms that make up all substances are never lost. This eventually laid the foundations of the law of conservation of mass.

On the other hand his methods of tax exactions was making the poor common people very angry. With the explosion of the French Revolution aristocrats like Lavoisier started losing their heads at the guillotine. After all, he was the despised tax collector who was always seen as an enemy of the common people. He was accused of tax fraud and adulteration of tobacco. Finally Lavoisier was denounced by a failed scientist turned radical journalist Jean-Paul Marat (whose scientific findings was once rejected by Lavoisier due to lack of proper scientific evidence) and was executed in front of the public at the guillotine on 8th May, 1794.


French Revolution
French Revolution
guillotine


Guillotine

Lavoisier was a great chemist of his time and is aptly known as the father of modern chemistry. His greatest accomplishment lies in changing science from a qualitative to a quantitative one. His findings with mass is central to the discovery of E= mc2.


C is for the speed of light


C stands for ‘Celeretas’ (latin word for swiftness). Since light travels with an incredible speed of 670 million miles per hour it was always considered as something which will be beyond the realm of human understanding. It was almost 100 years after Lavoisier that the world witnessed a young and energetic Einstein attending classes in the Zurich polytechnic, Switzerland. He was never an ideal student for his teachers. All he cared for in this world were Physics, Mathematics, Philosophy and his violin. All other things made absolutely no sense to him.

By that time everything that physically existed have been classified into two groups. One is matter, the building blocks of the universe and the other one is Energy, which excites matter. But nobody ever thought of any connection between the two entities. It was Einstein’s relentless pursuit of light that will bring about a revolution in science. With light he would re-invent the universe and find a hidden pathway that will unite energy and matter.

By the time Einstein arrived to the scene the speed of light have already been computed, but nobody actually knew what it was. One man whom we have already met was ready to make an educative guess on this. Michael Faraday became Professor Faraday after the death of Sir Humphry Davy. He became popular as a scientist and was known for his great experimentations. His concepts of invisible lines of forces that gave rise to electro-magnetism was still difficult for the people to digest. Now he was ready with another outrageous proposal. He proposed that light is actually one form of these vibrating lines of electro-magnetism. But as it happens everytime with science, nobody believed in him.

For 15 years Faraday struggled to convince the people that light was actually an electromagnetic wave but what he lacked was the knowledge of advanced mathematics that will back up his idea. Eventually a man by the name of James Clerk Maxwell came to his rescue. Maxwell not only believed in Faraday’s visions but also had the mathematical skills to prove Faraday right.



James Clerk Maxwell

James Clerk Maxwell
Maxwell in his calculations showed that the interlinking between electricity and magnetism can only happen at a particular speed, 670 million miles per hour. It was the speed of light. He had proved Faraday right. Electricity and magnetism woven together as electro-magnetism in its visible form was nothing but light itself.

Einstein with his never ending pursuit of light was slowly and unknowingly moving towards the link that would connect Energy with matter. He was studying rigorously the electro-magnetic theory of light that Maxwell had already proven. But one last mathematical ingredient that Einstein would need was the everyday process of squaring.




2 is for squared

Chateau Cirey, France, Early eighteenth century


For this we have go back more than a hundred years back, even before Lavoisier. At that time there was no idea how to quantify motion. All that existed was Galileo’s works and Isaac Newton’s Principia. Nobody ever thought that a crucial contribution to this subject will come from a very unusual source.

At that time King Louis XIV was at the throne of France. One of his courtyards had a daughter by the name of Emily Du Chatelet. She was a very intelligent young woman having an inclination towards science. In her tragic and short life she had a great impact on physics. She published many works of scientific research including a translation of Newton’s Principia in french which is still the standard text in France. She did all these at a time when science was considered to be a male commodity. She was ahead of any other woman of her time or even anyone upto hundred years later.

Emily Du Chatelet


                                                      Emily Du Chatelet





She was married to a general in the French army at the age nineteen and had three children. She ran a busy household and simultaneously pursued her passion for science. Emily took lessons from one of the greatest mathematicians of that time Pierre de Maupertuis, who was expert on Newton. She also had an affair with Voltaire, who was France’s greatest poet and a fierce critic of the king and the church. 



Voltaire was in prison twice and was exiled to England where he learned a lot about Newton. When he came back to France, he again got into problems with the king. At that time Emily hid him in her country home in Chateau. Far from Paris Emily and Voltaire turned her house into a centre of learning and culture along with the support of her husband (who mostly remained away busy with his duties at the army). 


Voltaire


 Voltaire




Newton stated that the the energy (force with which masses collide) is very simply mass of the object times its velocity. On the other hand a German scientist, Gottfried Wilhelm Leibniz had a different view to this. He believed that a moving object has a kind of inner spirit (which he called ‘vis viva’, latin word for living force). In his theory Leibniz was convinced that the energy of a moving body must be its mass times its velocity squared

But defying Newton and convincing the people against Newton’s theory in those days was almost an impossible task. This was where Emily came into the picture. She was highly convinced that Leibniz’s theory was correct, but the support for Newton was overwhelming. What she needed was proof in favour of Leibniz. 

Gottfried Wilhelm Leibniz

Gottfried Wilhelm Leibniz 

Finally she came across the experiments of a Dutch scientist, Willem’s Gravesande which showed that the observations indeed favour Leibniz. Gravesande’s experiment comprised of simply dropping lead balls into a pan of clay from a certain calculated height. 

His experiments showed that when we double the speed of the drop by increasing the height then the ball goes four times more deep into the clay rather than twice, thus giving evidence in favour of squaring the speed. Emily published the result in her famous book ‘Institutions De Physique’.  It is quite understandable that the work was not at all acceptable for the academy at that time.

All her life Emily tried to rise above the limitations placed on her gender. In the end it was an affair with a young soldier that brought about her demise. She conceived at an advanced age of forty-three which was considered to be dangerous in the 18th century. Finally she died six days after giving birth to her fourth child. 

Emily Du Chatelet’s conviction in the idea that the energy of an object is the function of the square of its velocity sent shockwaves through the academic society. It took hundred years after her death for the idea to be completely accepted, probably just in time for Einstein.


Einstein and his BIG idea 


By the time Einstein arrived in the scene it was all set for him to provide the final thrust towards framing the equation. All the quantities of the equation were already developed by the people who came before him. The timing was so perfect for him that it seemed to be God’s wish. Now all he had to do was to find a way to unify the physical quantities to produce the equation.

Einstein was not the so called good obedient student in the class as it was stated earlier. He had the least interest in attending classes which he said was boring. All he was interested in was light. As a result of this his professors in Zurich polytechnic did not like him at all and neither did they give him any recommendations for an academic position. He married his classmate Mileva Maric and had a child. 

Bern, Switzerland, 1905: 


After passing out of the Zurich Polytechnic in 1900, Einstein had to take a low paying job as a clerk in a patent office in Bern, Switzerland in order to run his house. After completing his daily work he had enough time at the office to think about science. He was relentlessly pursuing his question of light which he had now been thinking for ten years. Light became his obsession. His wife started complaining because his low wage made it difficult to run the house. His friends advised him to find a better job so that he could provide more comfort to his family. But Einstein had no effect of these on him. He wanted to know how God created the universe.

In a stunning insight he turned everything upside down. He changed the way how people thought about the universe. In Einstein’s universe one true constant was the speed of light and the other quantities can be bent so as to match the constant speed. In his amazing world neither space nor time were absolute quantities. This idea produced his paper on the Special Theory of Relativity

Some time earlier that same year he had already published his paper on Photoelectric effect which later won him the Nobel prize. He had also published a work on the structure of atom that same year (known as his miracle year). But he was not done yet. In one last great 1905 paper he would propose an even deeper unity. As his ten year journey with light was drawing to an end he noticed another strange connection between energy, mass and light.

He finds out that energy and mass are not at all separate entities but different forms of the same thing. As a result they can be converted into one another. Mass can be transformed into energy and vice versa. In fact all the matter that we see around us are huge reservoirs of nothing but energy. These masses are formed by the condensation of huge amounts of energy. So when these are annihilated, they give rise to huge amount of energy. With this clear idea in his mind Einstein calculated his way through to the most famous equation of the world, E=mc2. 

With four familiar notes in the scale of nature this patent clerk had composed a totally fresh melody- the culmination of his ten year journey into light. Irrespective of how far we reach in our scientific quest in the time to come, Einstein and his E=mc2 will keep whispering through the ages.


By Prabir Rudra






























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