Mostrando entradas con la etiqueta Inventor. Mostrar todas las entradas
Mostrando entradas con la etiqueta Inventor. Mostrar todas las entradas

viernes, 16 de mayo de 2014

Un inventor 100% colombiano

César Sierra, investigador de la U. Nacional, creó una tela que mata bacterias y una bolsa para enviar frutas a Europa, entre otros inventos.

César Sierra, químico e investigador de la Universidad Nacional. / Pablo Correa

El colombiano Juan Pablo Hinestroza, profesor en la Universidad de Cornell y experto en textiles inteligentes, cuenta que llevaba dos años y US$1,2 millones invertidos buscando el método para que pequeñas partículas conocidas como MOF (diminutas estructuras porosas) se adhirieran de forma estable a fibras de ropa, pero todos sus esfuerzos habían fracasado. Entonces alguien le habló de César Sierra, químico de la Universidad Nacional, y la suerte del proyecto cambió.

Sierra viajó a Estados Unidos y en tan sólo un mes de trabajo encontró la solución al problema que tenía desesperado a su colega. Patentaron en Estados Unidos la técnica para que las MOF queden adheridas a las fibras textiles. Hoy, varias multinacionales de ropa han mostrado su interés en la técnica, pues es un nuevo paradigma para crear telas con propiedades muy especiales. Por ejemplo fabricar jeans que no huelan cuando estén sucios o ropa interior que pueda durar hasta 45 días sin lavar.

César es el químico más recursivo que he conocido. Es brillante. Ahora creo en milagros después de ver cómo trabajan los científicos en Colombia”, dice Hinestroza. Esta semana los dos científicos colombianos, junto a los investigadores Carlos Soto, Haendel Rodríguez y Cristian Ochoa, firman un artículo publicado por la revista Journal of Applied Polymer en el que dan cuenta de otro invento prometedor: telas que matan bacterias.

Desde hace siglos se sabe que metales como la plata matan bacterias al entrar en contacto con ellas. No está muy clara la cadena de eventos celulares que conduce a la muerte de las bacterias, pero el efecto antibacterial de los metales es incuestionable. Bajo ese principio, Sierra y el grupo de colaboradores de ambas universidades lograron fijar nanopartículas de cobre a una tela y demostraron que el 100% de las bacterias Escherichia coli y Staphylococcus aureus, responsables de buen número de infecciones intrahospitalarias, mueren al entrar en contacto con la tela.

Con telas como estas se podrían fabricar sábanas de hospitales, uniformes de médicos y enfermeras, pijamas para los pacientes, y así reducir el riesgo de infecciones”, explica Sierra. Ahora el reto es lograr extender el efecto bactericida a otras bacterias que pululan en los hospitales. Sierra ya tiene una solución en mente. Cree que si logran que todas las partículas metálicas sean del mismo tamaño, la eficiencia bactericida aumentará y cubrirá un espectro mayor de microorganismos.

Cuando se graduó del colegio que dirigía su abuelo en Barrancabermeja, Sierra tenía dos cosas claras: quería ser militar y por ninguna razón se iba a quedar trabajando en la finca de su familia. Sus planes de ir al ejército se frustraron porque su mamá no lo autorizó. Entonces pensó en estudiar una carrera universitaria y la novia de su hermano, que estudiaba química en la Universidad Industrial de Santander (UIS), se ofreció a ayudarlo. Fue ella la responsable de que se convirtiera en químico, pues compró el formulario de inscripción y sin preguntarle lo anotó en la lista de candidatos a la carrera de química.

Fue amor a primera vista”, confiesa Sierra. En el colegio ya sentía interés por las matemáticas y la física, así que cuando comenzaron las clases sobre los elementos fundamentales de la materia y sus interacciones se sintió en el lugar correcto.

Cuando estaba entrando al último año de la carrera consiguió un trabajo con la multinacional Dow, que lo obligaba a viajar visitando clientes que tuvieran algún problema. Así se fue desarrollando su talento para solucionar situaciones difíciles. Cuando la empresa decidió irse del país, un colega volvió a señalarle el camino, como ya lo había hecho la novia de su hermano: “Usted debería estudiar un doctorado, usted es bueno para eso”.

Consiguió una beca y viajó a Estados Unidos, donde estudió una maestría y un doctorado en la Universidad de Massachusetts. En 2005 regresó a Colombia y, luego de un breve paso por la UIS, ganó un concurso docente en la Universidad Nacional y comenzó a trabajar en el Departamento de Química. Entre sus primeras creaciones está un material que al entrar en contacto con gases como el metano se ilumina; un desarrollo con potencial en la industria minera, pues podría hacer parte de los sistemas de seguridad para mineros.

Pero uno de los inventos que más lo enorgullecen es el desarrollo de un empaque para gulupa, una fruta de la cual Colombia exporta a Asia, Europa y América 3.000 toneladas cada año. Los exportadores colombianos se quejaban porque el largo viaje de casi 35 días que debe hacer la carga por barco hasta sus destinos terminaba arruinando el 25% de las frutas. Para evitar este desastre, los comerciantes se veían obligados a comprar unas bolsas fabricadas en Israel que conservan mejor la fruta, pero cuyo precio por unidad ronda los $400 pesos.

César y sus colaboradores desarrollaron un empaque a mucho menor precio ($10 pesos por unidad), que prolonga la vida de la fruta por más días y que evita su deshidratación. El problema, dos años después, es que no ha sido posible resolver todos los líos jurídicos en Colombia para patentar el invento.

Sierra no deja que esas cosas hagan mella en su optimismo y parece que no va a claudicar en su intento de acercar la investigación académica a los problemas de la industria en el país.

pcorrea@elespectador.com
@pcorrea78

ORIGINAL: El Espectador
Por: Pablo Correa
14 Mayo 2014

domingo, 28 de julio de 2013

Teens seek invention protection

March 20, 2013

Increasingly, young researchers seek patents to defend their innovations against theft
Credit: Stuart Burdford / iStock Photo
Naomi Chetan Shah didn’t think much about the air inside her Portland, Ore., home until she was 11. Then the sixth grader began to wonder why her father and brother always had watery eyes and runny noses. They suffered all year. That seemed to rule out seasonal allergies often caused by the pollen from blooming flowers, trees, grasses and weeds.

It took Naomi until high school to sleuth out what caused her family’s health problems. She even invented a computer program to help others diagnose similar problems. Her project earned her a spot as a finalist in this year’s Intel Science Talent Search (STS). This premier research competition is for students in their last year of high school. The Society for Science & the Public (which also publishes Science News for Kids) developed and runs the prestigious science competition.

While Naomi, now 17, hopes her computer program can help others, she doesn’t want anyone to steal her invention either. So she’s seeking to patent it. Governments offer patents for new inventions. These can include new processes, devices, substances or even plant varieties. Anyone who develops such a novelty can submit an application to the government.

Explainer

What is a patent?
In the United States, the Patent and Trademark Office reviews these applications. If this agency does grant Naomi a patent, it will give her the legal right to keep anyone else from making, using or selling her invention in the United States.

For a young inventor, a patent attests that his or her achievement is unprecedented, says John F. Ritter. He is a patent lawyer in New Jersey, and directs Princeton University’s Office of Technology Licensing.

While adult engineers, scientists and other inventors submit most patent applications, there is no age limit. Many young inventors seek patents to protect their inventions, also known as “intellectual property.” The Patent Office has issued at least one patent to a 5-year-old!

This year, 17 of the INTEL STS semifinalists and finalists, including Naomi, either have applied for a patent or have already received one. Additionally, another 20 semifinalists and finalists plan to seek a patent on their inventions.
Naomi Shah investigated how pollutants in indoor air can trigger allergy symptoms, impacting people’s airways — and ability to breathe. Credit: Chris Ayers Photography/SSP


Their experiences suggest that all students who invent something, even if they don’t participate in a science fair, should at least know about patents. And if they are interested in obtaining a patent, they should apply as early as possible!

Scents and sensibility

Naomi credits the U.S. Environmental Protection Agency for launching her six-year investigation into indoor air. Indoor levels of pollutants may be two to five times higher than outdoor levels, according to the agency. That is significant, since most people spend more than 90 percent of their time indoors. Still, Naomi was surprised to learn that very little research had been conducted on the health risks of indoor air pollution.

So starting in middle school, she learned how to collect air samples. Then, she worked with chemists at nearby Portland State University to analyze those samples. She also learned to measure how well the lung inhales and exhales while we breathe.

By high school, Naomi had collected enough data to identify the source of the respiratory problems that afflicted her father and brother. As part of her family’s Indian heritage, they regularly burned incense and scented candles. That released tiny irritating particles into the air. When the family — at Naomi’s recommendation — burned fewer of these products, the girl’s brother and father suffered less.

The young researcher went on to recruit more people for testing. Naomi also sampled the air inside their homes, schools and workplaces. Her sleuthing revealed several types of air pollutants known to trigger allergy symptoms. These included a family of chemicals known as volatile organic compounds, or VOCs. VOCs include toluene, xylene and styrene, used in building materials, paints, furniture and cleaners. Naomi so far has amassed more than 4 million air samples. She has also collected lung health data from more than 100 volunteers.

While in tenth grade at Portland’s Sunset High School, Naomi wrote a computer program to process her data. One year later, she presented this computer program at science fairs and competitions, pointing out its potential use in predicting how indoor air can affect lung health.

Act fast

Naomi realized she should patent her invention if she was going to make her computer program publicly available. With her father’s help, she began to investigate how to do that. She soon learned it was too late. Presenting her invention at science competitions is a form of publishing, she learned. And U.S. patent law says that once inventors publish, or make public, their inventions, they have only 12 months to start the patent application process. Naomi had missed out.

But all was not lost. By modifying her computer program — making it different, and therefore new — she could seek a patent on the revised version.

INTEL STS finalist Catherine Wong was quicker to apply. Soon after Catherine began showing her first invention at science fairs, one of her teachers at Morristown High School in New Jersey recommended that she think about patenting it. For $125, she was able to protect two of her inventions for a year with what are called provisional patents. These are essentially temporary patents. She followed up by applying for a much more expensive standard patent on one of her inventions.

Catherine Wong learned how to build electronic circuits by reading a book. She has created two wireless devices to help doctors and is attempting to patent one of them. Credit: Patrick Thornton/SSP


Catherine, now 17, credits an experience she had while in seventh grade for inspiring the project that landed her in the INTEL STS finals. While visiting a museum exhibit in New York City, called Design for the Other 90%, Catherine learned that most people in the world have little or no access to the products and services available to people in the United States and other industrialized nations. Nearly half of the world has no dependable access to food, clean water or housing.

Explainer

Patent advice from teen inventors

Three years later, Wong enrolled in a high school research science class. While investigating potential projects, she learned that more and more of the world’s people were getting mobile phones. (Today, more than 6 billion people have them!) Catherine decided to create a new type of stethoscope based on the popular handheld communication device.

Such an invention could bring medical help to people living in remote areas with no doctors. The device would work like a regular stethoscope that a doctor places on your chest or back to listen to your heart and lungs. But the device would also work with a cell phone, amplifying the sound enough for a doctor on the other end of the line to hear it clearly, Catherine explains. That way, doctors could diagnose illnesses in faraway patients.

Catherine relied on a book entitled, Make: Electronics, for guidance on how to create the circuits in her “wireless stethoscope.” Once completed, the device was roughly the size of a bar of soap. And what will a doctor hear when it is used? The sound is “much like the drumbeat of your pulse against your ears after a run,” Catherine says.

More recently, Catherine built a second, related device to amplify and record the heart’s electrical activity. It creates a digital record of someone’s heart rate. Both inventions wirelessly transmit the data they pick up from the body to nearby mobile phones.

When time came to apply for a patent for her wireless stethoscope, Catherine quickly learned it could cost tens of thousands of dollars to get needed help from lawyers. Rather than be discouraged, she called roughly 10 patent lawyers before finding a firm that could help her for a more affordable price. Luckily for Catherine, her parents helped by paying the still steep $5,000 bill.

Catherine says that getting her earlier, provisional patent proved useful when the time came to file for a standard patent. “Writing up a provisional patent forces you to break down exactly what you’ve done — the methods, what the benefits are — and to really begin to examine if it is something that is patentable,” she explains.

Avoiding lawyer’s fees

Alison Dana Bick, 19, took a different path to patenting. She invented a way to test for bacterial contamination in drinking water, using common household materials. Rather than apply for a provisional patent, however, Bick went for the whole enchilada. And by filing her own application, she avoided paying expensive fees to lawyers.

It was just that sort of self-reliance that inspired Bick’s invention.
Alison Dana Bick invented a low-cost system to test whether drinking water is contaminated. It uses simple household items, such as cell phones, light and a plastic bag. Credit: Alison Dana Bick

When she was in eighth grade, a major storm hit her hometown of Short Hills, N.J. Afterward, health officials warned the community’s water supply might not be safe to drink. But was it polluted? Bick invented a simple system to evaluate water contamination. It uses a cell phone’s camera, a light (even the light from a second cell phone) and a plastic bag.
  1. First, you fill the bag with water and shine a bright light on it
  2. Next, you take a photo of it. 
  3. Finally, a computer program Bick developed analyzes the photo to determine the concentration of fecal coliform bacteria
These germs point to sewage, which can often taint water following major storms. The project won Bick, now in her second year at Princeton University, a spot as a finalist in the 2011 Intel Science Talent Search.

Bick spent the summer before her final year of high school preparing her patent application. “I want to do research for a living and I thought it would be a great experience to patent this device,” she explains. She relied mainly on information she found online and in a book called Patent It Yourself. She spent less than $200 to file her patent. With its help, and a lot of patience, she has successfully patented her invention.

Of course, inventors don’t have to file for a patent in the country in which they live, notes Haejun “Brian” Cho. The high school senior at Milton Academy, in Milton, Mass., spent the summer after tenth grade in South Korea. There, Brian performed research working with Eric Choi. He’s a materials scientist, mechanical engineer — and family friend. From a laboratory in his apartment, Choi works on a variety of projects, including developing new soaps, using enzymes. Enzymes can remove the pore-blocking oils your skin naturally produces. While working with Choi, Brian invented a process that uses enzymes to replace some of the chemicals used in conventional soaps.

A major challenge is “keeping the enzymes active until they are applied,” explains Brian. That’s because enzymes can easily break down in response to changes in pH or temperature. The teen’s solution was to use microscopic spheres perforated with even tinier holes. Brian first fills the microspheres with the enzyme. Then he coats the little capsules with silicone oil to protect against changes in the environment. After the spheres are blended into soap, the silicone washes away only once it comes into contact with water. That way, the soap releases the enzyme just as you start washing.

With Choi’s assistance, Brian filed for a South Korean patent. It cost approximately $50 and took just six months to receive. Meanwhile, Brian has won a semifinalist’s slot at the 2013 INTEL STS competition for entirely different research into the materials that remain after the supernova explosion of massive stars.

Firm help

Pavan N. Mehrotra, 18, a finalist in the 2013 INTEL STS competition, also expects to receive a patent. Unlike the other teens we have met so far, Mehrotra didn’t have to even apply. The company where he interned applied for him.
Captain of his school’s varsity soccer team, California native Pavan Mehrotra spent last summer working in a corporate lab where he perfected a fuel cell design. It is now being patented. Credit: P. Mehrotra


Mehrotra lives in Simi Valley, Calif., and attends the Sierra Canyon School in nearby Chatsworth. After his junior year of high school, Mehrotra landed a summer internship with nearby Teledyne Scientific & Imaging. Its researchers develop high technology products, including fuel cells. Fuel cells work by converting chemical energy into electrical energy. The technology has interested Mehrotra since he was in middle school.

As an intern — or student worker given the opportunity to learn and practice professional skills — Mehrotra was assigned to a project seeking to merge two types of fuel cells. One was a microbial fuel cell. It uses yeast and sugar to make electricity. But such fuel cells can’t make that much power by themselves, Mehrotra explains. They generate much more electricity when combined with a second fuel cell, one specifically designed to run on alcohol. Luckily, the yeast in the first fuel cell also makes alcohol.

However, merging the two types of fuel cells created problems. In the first fuel cell, the fermenting yeast didn’t just make alcohol, but other byproducts too. Those wastes fouled an expensive catalyst — or substance that speeds up chemical reactions — in the second fuel cell. That dramatically reduced how much electricity the combined fuel cells would make. Luckily, Mehrotra discovered a solution.

He found inspiration for it in the work he was doing on another Teledyne project. It used special membranes with super-tiny holes in them to remove the salt from seawater. Mehrotra reasoned that such membranes could do work in the combined fuel cell too. They would do double-duty, by allowing the alcohol to pass from the first fuel cell to the second, but blocking any of the bothersome byproducts. Through trial and error, the teen eventually discovered what size holes — or pores — would work best in the membrane.

Mehrotra’s mentor at the company, Rahul Ganguli, helped the teen determine that his solution was truly novel. The company applied to patent the invention, although Mehrotra didn’t know that until after returning to school. Teledyne envisions that the fuel cell will someday generate emergency power for soldiers. In time, it may even power consumer devices.
Pavan Mehrotra created this fuel cell. Devices based on its design may one day generate emergency power for U.S. soldiers. Credit: P. Mehrotra


Ritter, the patent attorney at Princeton, notes that most corporations make their employees (including interns) give up their rights to anything they invent at work. So Mehrotra won’t get any money — called royalties — from companies using the patent. Still, the teen is grateful that Teledyne let him enter his invention in the INTEL STS competition.

Cred — and credit

Adults take teen researchers more seriously if they are seeking to patent their inventions, note the students interviewed for this story. Patents help adults look past the fact that “you’re just a high school student,” Catherine Wong explains. Indeed, her patent application helped establish her credibility with a University of Michigan researcher. She is currently working with him to improve her mobile cardiac device.

Patents also help discourage grown-ups from thinking a teen project addresses “a trivial problem or it’s easily stealable, Catherine continues. And even a provisional patent can protect work from being copied by others researchers who might have heard a student talk about his or her invention, she adds. Adds Naomi Shah: Having a patent application suggests that there are good reasons to have confidence in your data and claims.

Finally, a patent is a surefire way of standing out from other students when applying to college. Bick says she is “sure it definitely helped” her get into Princeton University. Indeed, the 2013 INTEL STS finalists interviewed for this article already have won admission to top-tier schools, including Harvard and Stanford universities. As of this writing, none has formally accepted an offer.

Power Words

catalyst A substance that increases the speed of a chemical reaction.

enzymes Substances in plants and animals that increase the speed of biochemical reactions. For example, enzymes in your stomach help break down the food you eat.

fecal coliform bacteria Microbes present in the feces of all warm-blooded animals and humans. These germs are present in sewage, which can contaminate drinking water during storms.

fuel cell A device that converts chemical energy into electrical energy. The most common fuel is hydrogen, which emits only water vapor as a byproduct.

intellectual property An idea, method, process or written work that you have invented or created — and therefore that you initially own.

membrane A thin sheet of material that allows some substances to pass through it.

microbial fuel cell A device that relies on microbes to initiate a chemical reaction to generate electricity. These devices can use waste materials, including sewage and manure, to produce energy cleanly.

patent A legal document that gives inventors control over how their inventions — including devices, machines, materials, processes and substances — are made, used and sold for a set period of time. Currently, this is 20 years from the date you first file for the patent. The U.S. government only grants patents to inventions shown to be unique.

patent claim Claims are the part of the patent application where the inventor defines his or her invention for legal purposes.

patent pending Anyone who has filed for a provisional or standard patent can legally say they have a patent pending.

provisional patent A relatively quick, inexpensive and simple initial U.S. patent application that establishes when you initially filed for your patent. You must file for a standard patent before a year is up to fully protect your invention.

royalty A payment made in exchange for the use of a patented invention.

U.S. Patent Office The federal government agency in charge of U.S. patents.

volatile organic compounds Chemicals whose properties make them liable to escape into the air. They are often chemicals that you can smell in the air.

Word Find (click here to print puzzle)


miércoles, 10 de julio de 2013

Why Nikola Tesla was the greatest geek who ever lived!

ORIGINAL: The Oatmeal





















*Wardenclyffe photo via DamnInteresting.com









FAQ (read this before emailing us)
  • Why not Kickstarter?
    Two reasons: 1. Kickstarter doesn't allow charities 2. Indiegogo was wonderful to work with during my last fundraiser so I decided to stick with them.
  • What happens if we don't raise the entire $850,000?
    The Indiegogo campaign is set up as a flexible funding campaign, so no matter how much we raise it will still go to the non-profit and toward making an offer on the property. $1.6M is the asking price, but we're hoping to buy it for less and then use the remainder of the money renovating the property.
  • What happens if we raise more than we need, or if you make a lower bid on the property and there's money left over?
    Any money left over will be spent renovating the property and put toward turning it into a Tesla Museum.
  • If this is a success, can you build a museum right away? What happens next?
    The property the laboratory is on is a bit of mess. It needs to be cleaned up, restored, and there's a ton of work to be done to actually turn this into something worthy of Tesla's legacy. The money we're raising is simply to secure the property so no one can ever mess with it and guarantee that it's a historic site. It opens up years and years of time to figure out how to build a proper Nikola Tesla museum.
    However, I would love to have some kind of Nikola Tesla festival on the property on July 10th of 2013 (Nikola Tesla Day), and have some kind of zany Tesla-coil-BBQ-cookout.
  • Who is handling the money?
    The Indiegogo campaign is linked directly to the bank account of Tesla Science Center at Wardenclyffe, formerly known as Friends of Science East, Inc. It is a 501(c)3 not-for-profit organization registered with the State of New York. You can read more about them and their board of directors here: Tesla Science Center at Wardenclyffe.
  • I want to make a donation!
    You can donate on this Indiegogo page.
  • I want to become a corporate sponsor of this project!
    Contact the Tesla Science Center at Wardenclyffe
  • I want to do an interview or I have a media inquiry about this campaign
    Contact us
Additional notes from the author:
  • Also, this Badass of the week by Ben Thompson is what originally inspired me to write a comic about Tesla. Ben's also got a book out which is packed full of awesome.
  • There's an old movie from the 80s on Netflix Instant Queue right now about Tesla: The Secret of Nikola Tesla. It's corny and full of bad acting, but it paints a fairly accurate depiction of his life.
  • The drunk history of Tesla is quite awesome, too.
  • History.com has a great article about Edison and how his douchebaggery had a chokehold on American cinema.
  • X-rays: just to clarify, Tesla did not discover x-rays, but he was one of the early pioneers in its research.
  • Cryogenic engineering: I'm referring to the cryogenic engineering that has to do with using liquified air to cool a coil and reduce its electrical resistance (Patent No. 11,865), not freezing people and waking them up in the future so they can fight Wesley Snipes.
  • Transistor: Tesla's influence on the modern transistor can be found in patents 723,188 and 725,605. (a better explanation here)
  • Radio: Tesla was the nicest geek ever until he decided to sue Marconi a few years later. 8 months after Tesla died, the U.S. Supreme Court overturned Marconi's patents on the invention of radio. So Tesla eventually won that battle, although he was dead by then.
  • Tesla VS Edison: I could write a novel on the differences between Tesla and Edison, but seeing as how this comic is already huge I decided to leave many things out. For instance, Edison killed cats and dogs, but Tesla loved animals and had a cat as a child. Originally Tesla wanted to be a poet, but after getting zapped by static electricity from his kitty he was inspired to study the effects of electricity. One could vaguely construe that Tesla's cat was responsible for the second industrial revolution, which arguably makes it the most awesome cat who ever lived.
  • Edison believed that fossil fuels were the future and that there were enough resources in South America to provide for the next 50,000 years. Tesla believed that renewable energy sources like hydroelectric, solar, and wind power were the future. This is remarkable because in the 1890s there was no such thing as "going green," so Tesla's ideas on conservation were very forward-thinking at the time.
  • Lastly, a big thank you to Jane C. Daugherty for proofreading this article for me. If you want to learn things from the most awesome librarian this side of the North American tectonic plate, follow her on Twitter.

No Nobel for Nikola

ORIGINAL: OBR Review
9th July 2013
Add caption
Many who remember him would call him insane. Many, a prodigious Prometheus. Larry Page, founder of Google, calls him his hero. He amazed the US patenting office and raised hairs at Wall Street, but never successfully commercialised his inventions nor received the proper recognition for many of his greatest creations

Although never winning the Nobel Prize, Nikola Tesla, a Serb born engineer of meagre beginnings, still deserves honourable mention in the Nobel Prize series for several reasons. His alternating current system for one still keeps the world alight to the present day. His other inventions and theories on radar, remote control, X-rays, radio transmission and more, all represent engineering feats of revolutionary capacity, opening new vistas of scientific advancement since their inception. Further, due to a revival of public fame over recent decades, Tesla has probably received more funding and support from the public today than he ever did when seeking it at the time of building his inventions. The most famous funding failure was the Wardenclyffe tower .
Tesla Broadcast Tower 1904. Wikipedia
It was designed by Tesla as a broadcasting system able to provide electricity to the world wirelessly, which had been dismantled before its completion in 1917. One quantifying example of Tesla’s current fan base is from crowd sourcing – a highly popular method for raising funds from online communities. In 2012, Matthew Inman, creator of the comic website ‘The Oatmeal’, raised more than half a million pounds in less than a week to build a Tesla museum on his old New York laboratory grounds where the Wardenclyffe tower once was (see Oatmeal’s campaign website- ‘Let’s Build a Goddamn Tesla Museum’).

War of the currents
Many have speculated as to why Tesla never won the Nobel Prize, but it is believed to have a lot to do with his fierce rivalry with Tomas Edison. This was known as ‘the war of the currents’. Reasons for their rivalry amongst others were their approaches to how electricity should be carried. Edison, who unlike Tesla was a businessman at heart, promoted a system of electrical power distribution known as direct current (DC). This electric distribution, via his company the ‘Edison Illuminating Company’, was aimed to capitalise on his earlier invention of the incandescent light bulb. However DC’s rule as the standard electric distribution system was short lived. Tesla’s refinement of alternating current (AC) eventually lead to this method of power distribution being selected as the new global standard.
Tesla’s patent for his alternating motor. AC vs. DC


Rumour has it that Tesla conceptualised the application of AC in 1882 at the age of 24 when he was walking in a Budapest park and was struck by the image of a functioning AC electric induction motor. Tesla realised, based on Faraday’s Law of electromagnetic induction, that if one can rotate a magnetic field around a stationary wire coil, AC voltage can be produced across the wire. This means AC current switches the direction of charge repeatedly in cycles, as opposed to DC which is unidirectional. So in the famous cartoon for example, when Jerry hands Tom a DC live wire, Tom is unable to let go. Whereas if Jerry were to hand him an AC wire, due to the rapid reversal of current, Tom would have enough time to relax his muscles and pull away.

The winning factor AC has over DC, regardless of its potential dangers, (see Edison’s efforts to electrocute a circus elephant with AC) is its transmission of electricity. Unlike DC, AC uses transformers, which means high voltages can be used to compensate for the increased resistance over long distances. These voltages can then be transformed back to domestic voltages without the use of thick cables or cumbersome local generators, which are required with DC. Presently, 21st century technology is changing this playing arena significantly, potentially leading to a comeback for DC. Indeed, the Three Gorges dam in China is the largest power plant in the world and uses high-voltage DC transmission.


Nobel rumours
Legend has it, if Edison were to be awarded first the Nobel prize for physics, then Tesla would refuse an offer (and vice versa). People claimed this refusal of allowing the other scientist to be awarded the Nobel prize, or to share the award between them, meant that neither would win the accolade. The closest Tesla got to receiving Nobel recognition was for his efforts toward radio communication. However, this was awarded in 1909 to Guglielmo Marconi for his work on the same topic (he was the first to signal the letter ‘s’ in morse code over the Atlantic using wireless transmission in 1901). Ironically before knowing Marconi was to receive the Nobel Prize, Tesla’s response to Marconi’s achievement was ‘Marconi is a good fellow. Let him continue. He is using seventeen of my patents.’ It was realised more than three decades later though that Tesla’s patent history meant he should have in fact been included in winning the aforementioned prize.

Tesla’s legacy
Before developing a passion for inventing, Tesla was a poet, writing pieces such as “Fragments of Olympian Gossip” a jestful portrayal of the science of his day. His imagination as an extreme visual thinker, allowed him to cast, analyse and modify blueprint after blueprint in his mind of the next great invention. Unfortunately at the end of his years, his eccentricities became better known than his new engineering visions. Tesla was known to be highly reclusive, have a famously high regard for pigeons and further, be someone unafraid of speaking out about his views on extraterrestrial life. In his letter to New York Times in 1909, ‘How to signal to Mars’, he writes ‘Of all the evidence of narrow mindedness and folly, I know of no greater than the stupid belief that this little planet is singled out to be the seat of life, and that all other heavenly bodies are fiery masses or lumps of ice. Most certainly, some planets are not inhabited, but others are, and among these there must exist life under all conditions and phases of development.

Although Tesla never won a Nobel Prize, he should still be classed as one of the greatest thinkers of the 20th century. His unconventional methods were indeed inspiring. For example, he proposed wireless energy transmission using electrical energy captured from the earth’s ionosphere- an upper part of the atmosphere where the aurora borealis occurs. In 2003, inspired by Tesla’s original AC motor design, Elon Musk-also founder of SpaceX and PayPal, cofounded the new electric sports car company ‘Tesla Motors’. A silicon valley based company, now set to create waves with the avant-garde concept of designing vehicles environmental friendly yet still of high performance.

It seems great admirers of Tesla, like Elon Musk (Tesla Motors, SpaceX) and Larry Page (Google) have taken on board the failures of Tesla, realising, like Edison, you need to profit to innovate, so you can innovate some more. The question now, when one considers the current technological advances, the global energy demands and the effects on nature and climate by man, is- who will be the next great Tesla, to transform our technology age with a new way of thinking?

jueves, 27 de junio de 2013

Dean Kamen on Inventions & The Utility of the Future

ORIGINAL: IBM Labs

Earlier this month IBM Research hosted the inaugural Smarter Energy Research Institute Conference (SERI) where current energy and utility members from across the globe came to share and demonstrate prototype applications that represent the beginning of the next generation of analytics for the utility industry. The Institute is a collaborative consortium with a select group of energy companies with the goal of accelerating innovation across the utilities industry.

Dean Kamen, IBM
Famed inventor and creator of the Segway Personal Transporter, Dean Kamen, delivered the keynote address to attendees during the first day of the conference, where he shared details on his latest invention, as well as his mission to build the next generation of inventors by inspiring today's students to explore science and mathematics.

The IBM Research team met with Kamen before the conference to get his views on a range of topics including
  • how imagination is the most valuable thing that an inventor has
  • his pursuit of an innovative solution to provide drinkable water to the two billion humans currently living without it and how it works; and  
  • what the utility of the future may look like.

lunes, 3 de junio de 2013

Popular Scientist. Aydogan Ozcan (LUCAS Inventor)

ORIGINAL: UCLA MAGAZINE
By Robin Keats
Apr 1, 2013


UCLA Associate Professor of Electrical and Bioengineering Aydogan Ozcan is one of the world's "Brilliant 10" scientists, as proclaimed by Popular Science magazine. Ozcan is the director of the Bio-and Nano-Photonics Laboratory at the UCLA Henry Samueli School of Engineering and Applied Science, where he leads a team of students in creating breakthrough—and inexpensive—technological devices that bring the frontiers of medicine to ordinary individuals.
Photo by: Clara Richmond.
We could begin with any one of more than a dozen startlingly original inventions to frame the contributions of Aydogan Ozcan, but let's start with the crowd-sourced bio-game he and his team of researchers created to diagnose malaria. One thousand online gamers from around the world were directed to identify, then "kill" or "bank," infected red-blood cells that appeared on their screens as electronic images. Their success rate at identifying the disease was very comparable to that of medical experts. This decidedly non-expert methodology is designed for use in developing nations where hugely expensive diagnostic equipment is unavailable.

And then there is BigFoot, the name Ozcan gave to the monitoring software he pioneered that allows diabetes patients and others with chronic foot ailments to track their conditions at home using a conventional flatbed scanner and a PC.

These are just two of an apparently endless lineup of incredible ideas that spring from the mind of the 34-year-old scientist who already holds 22 patents, with more than 15 pending, for inventions in wide-field and lens-less imaging, nonlinear and fiber optics, critical coherence tomography and nanoscopy.

Ozcan's self-described "prize child," though, is LUCAS, an acronym for "Lens-less, Ultra-wide-field blood Cell monitoring Array platform based on Shadow imaging." It turns a cell phone into a diagnostic device by clipping on a gadget that combines an LED light, a spatial filter and a slot for a medical slide. Information is gathered by the device, which sends it off to diagnosticians anywhere in the world. Bring LUCAS into the jungle where people get little or no medical attention, and voila! Expert diagnosis.

Through the device, millions of people in such remote areas as sub-Saharan Africa who would otherwise go undiagnosed will be screened or monitored for malaria, and eventually for tuberculosis and HIV. It will also help prevent waterborne illnesses that kill about 5 million people a year. And the cost to clip LUCAS onto your cell phone? Five to 10 bucks.

No 'Aha' Moment
Ozcan was born in Istanbul, Turkey, in 1978. His father was a government worker, his mother a housewife. His education began in the small, Black Sea city of Sinope, which also gave the world Diogenes, founder of Cynic philosophy. "My family moved around a lot," he says. "Five different schools for the five years of elementary school we have in Turkey ... I think those moves caused me to develop skills that have helped me quickly adapt to things."

Ozcan went to Bilkent University in Ankara for his bachelor's degree. He earned a master's degree and Ph.D. at Stanford University, followed by two years in Boston on the research faculty of Harvard Medical School's Wellman Center for Photomedicine. Ozcan joined UCLA as an assistant professor in 2007.

What turned him onto scientific innovation? "There was," he says, "no 'aha' moment." But as early as his freshman year in high school, "the idea of proving something and learning the framework of proofs was so unique," he recalls. "That's when I said 'I love it' [and] thought I'd be in a profession that allows for the creation of useful things.
Add caption
For his breakthrough medical diagnostic inventions, Ozcan has been honored by NASA, the U.S. Department of State, the Gates Foundation, National Geographic and Popular Mechanics, among other institutions and publications. In the photo above, he is holding a prototype of his LUCAS device in his lab.

Teaching Invention "Being a scientist and going to the frontier of knowledge requires a lot of dedication, a lot of small things put together," he says. "I insist that my students know that those who are successful in this profession are the ones who learn how to cope with failures. You improve from rejection; you write a new manuscript; you try again. Some people would say, 'It's enough.' I won't play that game."

It has to be that way, Ozcan says of his role as an educator. "Within the school of engineering, the function of a professor is to create new information and new technologies. You also have to train the next generation of engineers and scientists, so that new know-how is continually created to make life simpler."

Ozcan adds, "The definition of engineering, for me, is to make life simpler and better. That's the most important thing that differentiates an engineer's mind from that of a physicist. A physicist is looking at interesting questions, but not how a combination of disciplines could be applied to create things that will enhance life. That's the intersection of science and engineering and I want to be, professionally, at that juncture. Engineers need to be very multidisciplinary. That's what I stress in my lab."

Creating Invention

The man whose world involves complex technologies like optics, photonics and imaging has a simple vision of his own future as an innovator. "It's like a single picture," he says. "You can give yourself 10 or 15 years to paint it, but then it's going to be something you can admire. That's how I take my career. I'm in the middle of that picture now [with] the expansion of the cell phone into an array of telemedicine tools."

Cell phones, he points out, have better graphics processors than IBM supercomputers had in the late 1980s. "There are already 5 billion cell phones in use," he explains. "We manufacture 2 billion of them every year … There will be more of them everywhere on the planet."

With this phenomenal global network of smart gadgets, he points out, computation is almost free.

"Because cell-phone use is so ubiquitous and inexpensive," he adds, "I can rely on it … to design new microscopes and micro-analysis tools that look at bodily fluids using technology attached to the cell phone or running on it."

The "Nano Internet" and Beyond
The young scientist's next challenge is already obvious to him. He foresees spending the next decade or so building the "Nano Internet," which he describes as "the development of these personal micro-analysis tools [that] give us something more valuable than the tools themselves."

What he envisions are millions of his tiny devices interconnecting and streaming personal health information in real time, from brainwaves to blood-pressure counts.

"If my lab and others like it do our work well," he predicts, "then we'll have this kind of Nano Internet. The opportunities that lie ahead of us, with our eyes, with our information, channeled into the micro and Nano worlds."

These and other trails yet unimagined will be blazed from Westwood. "UCLA maintains and extends such vision," says Ozcan. "It's got everything I need to fulfill whatever I dream."

lunes, 15 de octubre de 2012

Why Nikola Tesla was the greatest geek who ever lived - The Oatmeal

ORIGINAL: The Oatmeal













Additional notes from the author: 

  • If you want to learn more about Tesla, I highly recommend reading Tesla: Man Out of Time
  • Also, this Badass of the week by Ben Thompson is what originally inspired me to write a comic about Tesla. Ben's also got a book out which is packed full of awesome. 
  • There's an old movie from the 80s on Netflix Instant Queue right now about Tesla: The Secret of Nikola Tesla. It's corny and full of bad acting, but it paints a fairly accurate depiction of his life. 
  • The drunk history of Tesla is quite awesome, too. 
  • History.com has a great article about Edison and how his douchebaggery had a chokehold on American cinema. 
  • X-rays: just to clarify, Tesla did not discover x-rays, but he was one of the early pioneers in its research. 
  • Cryogenic engineering: I'm referring to the cryogenic engineering that has to do with using liquified air to cool a coil and reduce its electrical resistance (Patent No. 11,865), not freezing people and waking them up in the future so they can fight Wesley Snipes. 
  • Transistor: Tesla's influence on the modern transistor can be found in patents 723,188 and 725,605. (a better explanation here
  • Radio: Tesla was the nicest geek ever until he decided to sue Marconi a few years later. 8 months after Tesla died, the U.S. Supreme Court overturned Marconi's patents on the invention of radio. So Tesla eventually won that battle, although he was dead by then. 
  • Tesla VS Edison: I could write a novel on the differences between Tesla and Edison, but seeing as how this comic is already huge I decided to leave many things out. For instance, Edison killed cats and dogs, but Tesla loved animals and had a cat as a child. Originally Tesla wanted to be a poet, but after getting zapped by static electricity from his kitty he was inspired to study the effects of electricity. One could vaguely construe that Tesla's cat was responsible for the second industrial revolution, which arguably makes it the most awesome cat who ever lived. 
  • Edison believed that fossil fuels were the future and that there were enough resources in South America to provide for the next 50,000 years. Tesla believed that renewable energy sources like hydroelectric, solar, and wind power were the future. This is remarkable because in the 1890s there was no such thing as "going green," so Tesla's ideas on conservation were very forward-thinking at the time. 
  • Lastly, a big thank you to Jane C. Daugherty for proofreading this article for me. If you want to learn things from the most awesome librarian this side of the North American tectonic plate, follow her on Twitter.