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

sábado, 31 de agosto de 2013

Exploring the impossible

ORIGINAL: FNAL
Don Lincoln
Friday, Aug. 30

German physicist Werner Heisenberg realized that, in the subatomic world, energy doesn't have to be conserved. This realization led physicists to understand that high-intensity particle beams, such as those planned for future Fermilab Intensity Frontier research experiments, could probe phenomena not accessible with the high-energy beams at the LHC
One of the most rock-solid principles of physics is the conservation of energy, which simply means that energy can neither be created nor destroyed. Energy can slosh around and change forms. It can convert from the potential energy of a drawn bow to the kinetic energy of an arrow in flight to the sound energy of the "thwack" as the arrow hits its target. If you learn nothing else in a physics class, you learn that energy is conserved.

Thus it may be a little disconcerting to later learn that this principle isn't quite as cut and dried as you were originally taught. In the quantum realm, energy conservation isn't absolute. It turns out that in the world of the ultra-small, energy can not be conserved as long as the time that it isn't conserved is brief. Further, the greater the unconserved energy, the shorter the time during which this weird state of affairs can happen.

To understand how this works, think about how you might go about lending money to a fiscally unreliable friend. If he asked to borrow a dollar, you'd give him the money and not worry too much about when you'd get it back. The loan is small, and if you didn't see the money for a long time, it would probably be OK. On the other hand, if you loaned him $100, you might want to be repaid in a week or so. If you loaned him $100,000, you'd probably want to get that money back right away.

The subatomic universe is the same way, constantly borrowing and paying back energy. Most of the time, these "energy loans" are small. Big ones are rare and very short-lived. The key word here is "rare."

While the leviathan LHC at CERN can study high energies through pure brute force, there is another way to investigate high-energy phenomena: Study lots and lots of lower-energy collisions in the hopes of finding one "in the act" of temporarily borrowing a lot of energy from the vacuum of the universe. If you are lucky, you can see some very high-energy phenomena this way.

Fermilab's shift from experiments using high-energy beams to those using high-intensity beams plays right into this approach. The best way to see rare phenomena is to study lots and lots of interactions, and the best way to do that is to use extremely high-intensity beams.

Although the energy books have to be balanced at the end of the day, or, more appropriately, at the end of the collision, very rare phenomena can pop up due to the occasional rare borrowing of lots of energy. In fact, it is virtually certain that future experiments at Fermilab using low-energy, high-intensity beams will be able to make some physical measurements that are beyond the reach of the LHC.

—Don Lincoln

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lunes, 12 de noviembre de 2012

Uncertainty Principle

ORIGINAL: The Big View


At a time when Einstein had gained international recognition, quantum theory culminated in the late 1920’s statement of the Uncertainty Principle, which says that the more precisely the position of a particle is determined, the less precisely the momentum is known in this instant, and vice versa. The above phrasing of the principle is a succinct version of the mathematically precise uncertainty relation that Heisenberg published in 1927. Since the momentum of a particle is the product of its mass and velocity, the principle is sometimes stated differently, however, its meaning remains the same: The act of measuring one magnitude of a particle, be it its mass, its velocity, or its position, causes the other magnitudes to blur. This is not due to imprecise measurements. Technology is advanced enough to hypothetically yield correct measurements. The blurring of these magnitudes is a fundamental property of nature.

The uncertainty relation describes the "blur" between the measurable quantities of a particle in mathematical terms. Like much of the math in quantum theory, it is not for the faint of heart, which is to say it is completely unintelligible to most people. Therefore we restrict ourselves to a brief account on the underlying ideas and how they developed into the "Copenhagen Interpretation", which Niels Bohr and Werner Heisenberg jointly elaborated as a complete and consistent view of quantum mechanics (the Copenhagen Interpretation refers to Bohr's place of birth).

Heisenberg: "What Schrödinger writes about the visualisability of his theory [...] is crap."

Around 1925 there were two competing mathematical theories that both attempted to explain electron orbits. Matrix mechanics developed by Heisenberg interprets the electron as a particle with quantum behaviour. It is based on sophisticated matrix computations, which introduce discontinuities and quantum jumps. In contrast, wave mechanics developed by Erwin Schrödinger interprets the electron as an energy wave. Because wave mechanics entails more familiar concepts and equations, it quickly gained popularity among scientists.

Schrödinger and Heisenberg were no too fond of each other's competing works. Schrödinger says about matrix mechanics: "I knew of [Heisenberg's] theory, of course, but I felt discouraged, not to say repelled, by the methods of transcendental algebra, which appeared difficult to me, and by the lack of visualisability." Heisenberg's comment on wave mechanics was: "The more I think about the physical portion of Schrödinger's theory, the more repulsive I find it. [...] What Schrödinger writes about the visualisability of his theory 'is probably not quite right,' in other words it's crap."

The Copenhagen Interpretation.
Despite the differences, Schrödinger published a proof in 1926, which showed that the results of matrix and wave mechanics are equivalent; they were in fact the same theory. According to the Copenhagen Interpretation, the wave and particle pictures of the atom, or the visual and causal representations, are "complementary" to each other. That is, they are mutually exclusive, yet jointly essential for a complete description of quantum events. Obviously in an experiment in the everyday world an object cannot be both a wave and a particle at the same time; it must be either one or the other, depending on the situation. In later refinements of this interpretation, the wave function of the unobserved object is a mixture of both, the wave and particle pictures, until the experimenter chooses what to observe in a given experiment.

The German physicist Werner Heisenberg (1901-1976) received the Nobel Prize in physics in 1932 for his work in nuclear physics and quantum theory. The paper on the uncertainty relation is his most important contribution to physics.

Werner Heisenberg
Heisenberg impressed his teachers with his ambition and brilliance. He never produced other grades than straight A's, except on one occasion: During his doctorate, professor Wien of the university of Munich gave him an F in experimental physics, because he handled the laboratory equipment clumsily. Reportedly this left Heisenberg so disconcerted that he did not speak to anyone for days. 

Fate had it that a few years later, Heisenberg demonstrated the very limitations of experimental physics, which unquestionably constituted a setback for its advocates, including Professor Wien.

The observer becomes part of the observed system.

The notion of the observer becoming a part of the observed system is fundamentally new in physics. In quantum physics, the observer is no longer external and neutral, but through the act of measurement he becomes himself a part of observed reality. This marks the end of the neutrality of the experimenter. It also has huge implications on the epistemology of science: certain facts are no longer objectifiable in quantum theory. If in an exact science, such as physics, the outcome of an experiment depends on the view of the observer, then what does this imply for other fields of human knowledge? It would seem that in any faculty of science, there are different interpretations of the same phenomena. More often than occasionally, these interpretations are in conflict with each other. Does this mean that ultimate truth is unknowable?

The results of quantum theory, and particularly of Heisenberg's work, left scientists puzzled. Many felt that quantum theory had somehow "missed the point". At least Albert Einstein did so. He was an outspoken critic of quantum mechanics and is often quoted on his comment regarding the Uncertainty Principle: "The Old One (God) doesn't play dice." He also said: "I like to believe that the moon is still there even if we don't look at it." In particular, Einstein was convinced that electrons do have definite orbits, even if we cannot observe them. In a conversation with Heisenberg he said:

A conversation between Einstein and Heisenberg.
Heisenberg: "One cannot observe the electron orbits inside the atom. [...] but since it is reasonable to consider only those quantities in a theory that can be measured, it seemed natural to me to introduce them only as entities, as representatives of electron orbits, so to speak."

Einstein: "But you don't seriously believe that only observable quantities should be considered in a physical theory?"

"I thought this was the very idea that your Relativity Theory is based on?" Heisenberg asked in surprise.

"Perhaps I used this kind of reasoning," replied Einstein, "but it is nonsense nevertheless. [...] In reality the opposite is true: only the theory decides what can be observed."

(translated from "Der Teil und das Ganze" by W. Heisenberg)

We can easily see the rift between Einstein's intuitive and Heisenberg's empirical approach. Although Einstein's argumentation appears tricky, it is clear that he believes in a reality independent of what we can observe, which is in essence the view of realism. Kant's "thing in itself" comes to mind. - In contrast, Heisenberg believes that reality is what can be observed. If there are different observations, there must be different realities, which depend on the observer. Insofar Heisenberg can be regarded as an advocate of philosophical idealism, which states that the objects of perception are identical with the ideas we have about them. The idealist view denies that any particular thing has an independent real essence outside of consciousness.

viernes, 18 de noviembre de 2011

Físicos europeos dicen que confirmar el resultado de partículas más rápidas que la luz. Continúa el escepticismo.

ORIGINAL: Deutsche Welle
11/18/2011


Los físicos han creído que nada puede viajar más rápido que la luz 
Los científicos dicen que los nuevos experimentos han replicado su resultado superluminal inicial. Sin embargo, la comunidad científica parece  escéptica en reacionar a revertir la teoría especial de la relatividad de Albert Einstein.

El equipo de físicos europeos afirmaron haber medido una partícula más rápido que la luz en septiembre, dice nuevas pruebas han confirmado los resultados de su primer experimento.

En un resultado que podría tener un profundo impacto en el mundo de la física, los científicos del Proyecto de oscilación con el aparato de seguimiento de emulsión (OPERA) afirmaron haber detectado que los neutrinos mueve más rápido que la velocidad de la luz normalmente aceptada.

Los neutrinos,  partículas sub-atómicas fundamentales que siguen siendo un misterio para los físicos de partículas, se han creado y lanzado desde un acelerador de partículas del CERN, en las afueras de Ginebra, a un detector en el laboratorio del Gran Sasso en Italia, 723 kilómetros (450 millas) de distancia.

El equipo de Opera encontró con que sus neutrinos han recorrido 300.006 kilometros por segundo, lo que está justo por encima de la velocidad establecida de la luz, que suele ser medido a 299.792 kilometros por segundo. La teoría especial de la relatividad de Einstein dice que nada puede viajar más rápido que la luz.

Reduciendo el tiempo de pulso

Una cuestión en que muchos escépticos se centran es en la duración relativamente larga de los pulsos de protones que crean los neutrinos que el detector italiano recibe. En los nuevos experimentos de ejecución el mes pasado, el CERN redujo el tiempo de los pulsos de protones de 10,5 microsegundos a tres microsegundos. En el nuevo experimento, los neutrinos todavía viajaban más rápido que la velocidad de la luz.

El experimento lanza neutrinos del CERN, en Suiza, a otro laboratorio en Italia 
Pero incluso con esta nueva confirmación, los propios físicos no están muy dispuestos a aceptar plenamente estos resultados.

"A pesar de la importancia general de la medida que aquí y la estabilidad de los análisis, el impacto potencialmente grande sobre el resultado que motiva la continuación de nuestros estudios con el fin de investigar los posibles efectos sistémicos aún se desconoce que podría explicar la anomalía observada", escribieron los autores en la conclusión del documento, que fue publicado en la página web ArXiv.org poco antes de medianoche, la noche del jueves, hora del meridiano de Greenwich. "Deliberadamente no intente ninguna interpretación teórica o fenomenológica de los resultados."

Precaución prevalece

De acuerdo con la naturaleza, una revista científica altamente respetada, muchos miembros del equipo de Opera que inicialmente se negó a firmar sus nombres en el papel han subido a bordo. Que incluye Caren Hagner, un profesor de física en la Universidad de Hamburgo, que había sido uno de los miembros más escépticos del grupo.

"No puede haber un error en la medida de la distancia, o la medición del tiempo, o - ya que el uso de métodos estadísticos para separar, para medir el tiempo de vuelo de los neutrinos - también podría dar lugar a algunos efectos estadísticos desagradable", que dijo a Deutsche Welle, en septiembre.

Después del experimento nuevo y mejorado la precisión y aumentó el análisis estadístico, dijo Hagner naturaleza que tiene "mucha más confianza" en los nuevos resultados.

Sin embargo, muchos científicos prudentes a menudo citan Carl Sagan, un gigante entre los astrofísicos del siglo 20, que una vez dijo: ". Afirmaciones extraordinarias requieren pruebas extraordinarias"


Los físicos no se atreven a poner de cabeza la teoría de Einstein, que dice que nada es más rápido que la luz

"Una medida tan delicada y llevar una implicación profunda en la física requiere un extraordinario nivel de escrutinio", dijo Fernando Ferroni, presidente del Instituto Italiano de Física Nuclear, en un comunicado publicado el viernes.

Los resultados del estudio comparativo en Estados Unidos de América se esperan en el 2012

Sin embargo, los físicos de todo el mundo están de acuerdo en que la verdadera prueba vendrá cuando contraparte del CERN en los Estados Unidos, Fermilab, lleva a cabo un experimento similar en su aparato fuera de Chicago, conocido como MINOS.

"En OPERA la observación de un retardo de tiempo similar con una estructura de haces diferentes sólo indica que no hay problema con la estructura de lotes de la haces, sino que no ayuda a entender si hay un retraso sistemático que ha pasado por alto", co-portavoz de MINOS Jenny Thomas , dijo en una entrevista con la agencia France Presse.

Los representantes de MINOS añadieron que pueden tener los resultados preliminares para comparar con el experimento OPERA principios del próximo año.

Autor: Cyrus Farivar (AFP, la naturaleza, Reuters)
Editor: Sam Edmonds