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Northern lights glimmer with unexpected trait

Snowy Owl

Retired in 2010, In Memoriam
Northern lights glimmer with unexpected trait

WASHINGTON

An international team of scientists has detected that some of the glow of Earth?s aurora is polarized, an unexpected state for such emissions.​

Measurements of this newfound polarization in the Northern Lights may provide scientists with fresh insights into the composition of Earth?s upper atmosphere, the configuration of its magnetic field, and the energies of particles from the Sun, the researchers say.

If observed on other planets, the phenomenon might also give clues to the shape of the Sun?s magnetic field as it curls around other bodies in the solar system.

When a beam of light is polarized, its electromagnetic waves share a common orientation, say, aligned vertically, or at some other angle.

Until now, scientists thought that light from energized atoms and molecules in planetary upper atmospheres could not be polarized.

The reason is simple: in spite of the low number of particles at the altitudes concerned (above 100 kilometers (60 miles)), there are still numerous collisions between molecules and gas atoms. Those collisions depolarize the emitted light.

Fifty years ago, an Australian researcher, Robert Duncan, claimed to observe what looked like polarization of auroral light, but other scientists found that single observation unconvincing.

To revisit the question, Jean Lilensten of the Laboratory of Planetology of Grenoble, France, and his colleagues studied auroral light with a custom-made telescope during the winters of 2006-2007 and 2007-2008.

They made their observations from Svalbard Island, Norway, which is in the polar region, at a latitude of 79? north.

At the north and south magnetic poles, many charged particles in the solar wind ?a flow of electrically charged matter from the Sun?are captured by the planet?s field and forced to plunge into the atmosphere.

The particles strike atmospheric gases, causing light emissions.

Lilensten and his colleagues observed weak polarization of a red glow that radiates at an altitude of 220 kilometers (140 miles).

The glow results from electrons hitting oxygen atoms. The scientists had suspected that such light might be polarized because Earth?s magnetic field at high latitudes funnels the electrons, aligning the angles at which they penetrate the atmosphere.

The finding of auroral polarization ?opens a new field in planetology,? says Lilensten, who is the lead author of the study. He and his colleagues reported their results on 19 April in Geophysical Research Letters, a publication of the American Geophysical Union, or AGU.

Fluctuations in the polarization measurements can reveal the energy of the particles coming from the Sun when they enter Earth?s atmosphere, Lilensten notes.

The intensity of the polarization gives clues to the composition of the upper atmosphere, particularly with regard to atomic oxygen.

Because polarization is strongest when the telescope points perpendicularly to the magnetic field lines, the measurements also provide a way to determine magnetic field configurations, Lilensten adds.

That could prove especially useful as astronomers train their telescopes on other planetary atmospheres. If polarized emissions are observed there as well, the measurements may enable scientists to understand how the Sun?s magnetic field is distorted by obstacles such as the planets Venus and Mars, which lack intrinsic magnetic fields.


Title: "Polarization in aurorae: A new dimension for space environments studies"

Authors: Jean Lilensten, Mathieu Barth?lemy, Roland Thissen, Cyril Simon, Odile Dutuit: CNRS-UJF, Laboratoire de Plan?tologie de Grenoble, B?timent D de physique, Grenoble, France; Cyril Simon is also at ESTEC, Noordwijk, Netherlands;

J?ran Moen: Department of Physics, University of Oslo, Blindern, Oslo, Norway; and ESTEC, Noordwijk, Netherlands;

Dag A. Lorentzen, Fred Sigernes: Arctic Geophysics, University Centre in Svalbard, Longyearbyen, Svalbard, Norway;

Pierre Olivier Amblard: CNRS-INPG, GIPSA Lab, BP 46, Saint Martin d'H?res, France.

Citation:
Lilensten, J., J. Moen, M. Barth?lemy, R. Thissen, C. Simon, D. A. Lorentzen, O. Dutuit, P. O. Amblard, and F. Sigernes (2008), Polarization in aurorae: A new dimension for space environments studies, Geophys. Res. Lett., 35, L08804, doi:10.1029/2007GL033006.

http://www.eurekalert.org/pub_releases/2008-04/agu-nlg042508.php
 
Re: Northern lights glimmer with unexpected trait

Premi?re observation de la polarisation de la lumi?re dans l?atmosph?re bor?ale

Une ?quipe internationale [1] conduite par un chercheur du CNRS appartenant au Laboratoire de Plan?tologie de Grenoble (LPG : UMR, CNRS ? Universit? Joseph Fourier ; Observatoire des Sciences de l?Univers de Grenoble ? INSU) vient d?observer pour la premi?re fois un ph?nom?ne de polarisation de la lumi?re provenant de la haute atmosph?re bor?ale. Ces observations, r?alis?es dans la zone aurorale, sur l??le de Svalbard en Norv?ge, ouvrent de nouvelles perspectives : analyse fine de la structure atomique de l?oxyg?ne, d?termination des variations de la concentration de l?atmosph?re en fonction de l?activit? solaire, analyse du comportement du champ magn?tique interplan?taire autour de V?nus et Mars, ?

En astronomie, les observations sont presque exclusivement bas?es sur l?analyse de la lumi?re ?mise ou diffus?e par le corps ?tudi?. Un des param?tres de la lumi?re couramment utilis? est sa ? polarisation ?, qui mesure la mani?re dont varie le champ ?lectrique associ? ? l?onde lumineuse le long de son trajet. Observer la polarisation permet d?affiner les caract?ristiques de la source de lumi?re et de son environnement.

Jusqu?ici, les scientifiques pensaient que la lumi?re ?mise dans les hautes atmosph?res plan?taires (aurores bor?ales) ne pouvait pas ?tre polaris?e. La raison en est simple : en d?pit du faible nombre de particules aux altitudes concern?es (sup?rieures ? 100 kilom?tres), il y a encore de nombreuses collisions entre les mol?cules et atomes de gaz. Ces collisions ont pour effet de d?polariser la lumi?re ?mise.

Il y a 50 ans un chercheur australien, Robert Duncan, r?ussit ? observer une seule fois ce qui semblait ?tre un ph?nom?ne de polarisation, mais la communaut? dans son ensemble rejeta cette unique observation.

Les chercheurs du Laboratoire de Plan?tologie de Grenoble ont reconsid?r? le probl?me. Le Soleil ?met en permanence des particules ?lectris?es ?nerg?tiques : le vent solaire. Dans ce flot incessant, les particules qui se trouvent ? proximit? de la Terre sont captur?es par son champ magn?tique, et contraintes de p?n?trer dans son atmosph?re aux p?les nord et sud. L?, elles heurtent les mol?cules de gaz qui s?excitent d?abord, puis se d?sexcitent en ?mettant de la lumi?re. Cette lumi?re va alors garder en m?moire les caract?ristiques du processus d?excitation. Au-dessus de 100 kilom?tres d?altitude, on trouve de l?azote et de l?oxyg?ne mol?culaires et de l?oxyg?ne atomique. Celui-ci ?met une lumi?re intense qui est essentiellement rouge vers 220 Km d?altitude.

On voit principalement deux couleurs sur ces aurores, dues ? l?oxyg?ne atomique : le vert et le rouge dont on a d?couvert la polarisation. On distingue aussi Mars, les Ple?ades, et une partie de l?antenne de 42 m?tres [2].

Les astrophysiciens de Grenoble pensent que ce rayonnement rouge a les bonnes caract?ristiques pour ?tre polaris?. Pour cela, il faut que les ?lectrons du vent solaire, qui heurtent l?oxyg?ne, arrivent selon un angle homog?ne. C?est le champ magn?tique qui joue ce r?le d?entonnoir pour les ?lectrons, en harmonisant leur angle de p?n?tration dans la haute atmosph?re.

Ils ont d?velopp? une collaboration avec des coll?gues d?Oslo et de Svalbard pour mener ? bien une campagne d?observation. L??le de Svalbard, ? 79? de latitude nord, a ?t? choisie car ce site permet des observations en continu pendant la nuit polaire en hiver. Un petit t?lescope a ?t? construit par les Norv?giens pour r?aliser l?observation. Les observations ont ?t? conduites en d?cembre 2006-janvier 2007, et en d?cembre 2007-janvier 2008 avec un nouveau t?lescope plus performant.

Pendant plusieurs nuits, ces chercheurs ont mis en ?vidence une lumi?re faiblement, mais indubitablement polaris?e. Les param?tres de la polarisation varient, et cette variation donne des informations sur l??nergie des particules issues du Soleil au moment o? elles entrent dans l?atmosph?re. L?intensit? de la polarisation t?moigne de la composition de la haute atmosph?re, et en particulier la proportion d?oxyg?ne atomique qu?elle contient. Cette polarisation s?observe essentiellement lorsque le t?lescope pointe perpendiculairement au champ magn?tique de la Terre. Ainsi, l?angle d?observation, dans lequel la polarisation est maximale, indique comment le champ magn?tique est configur?.

Il reste maintenant ? pousser l?analyse des mesures de polarisation pour avoir des informations sur le vent solaire, la composition atmosph?rique ou la configuration du champ magn?tique. Avec cette observation, l?atmosph?re devient un laboratoire naturel qui devrait permettre de mieux comprendre diff?rents ph?nom?nes. Une meilleure compr?hension du m?canisme de la polarisation de la lumi?re ?mise par des atomes comme l?oxyg?ne. Une indication sur les variations de concentration de l?atmosph?re qui jouent un r?le important sur les satellites en orbite basse : ils sont soumis ? une friction atmosph?rique qui fait varier leurs orbites, en particulier lors d??v?nements solaires ?ruptifs. Mais la d?tection de la polarisation ?mise dans la haute atmosph?re terrestre s?applique aussi ? d?autres atmosph?res plan?taires. Le Soleil ne propage pas seulement ses particules et sa lumi?re dans l?espace, il propage ?galement son champ magn?tique, qu?on appelle ? interplan?taire ?. On comprend mal comment celui-ci s?enroule autour des obstacles qu?il rencontre, comme les plan?tes sans champ magn?tique intrins?que, V?nus ou Mars. Puisque la polarisation a une direction privil?gi?e perpendiculaire au champ magn?tique, sa mesure autour de ces plan?tes nous permettra de r?pondre ? cette interrogation.

Ainsi, cette d?couverte ouvre un champ nouveau pour la plan?tologie. La polarisation du rayonnement atmosph?rique ajoutera sans aucun doute une nouvelle fa?on d?aborder et de d?crire les environnements spatiaux des plan?tes.

Bibliographie

Jean Lilensten, J?ran Moen, Mathieu Barth?lemy, Roland Thissen, Cyril Simon, Dag A. Lorentzen, Odile Dutuit, Pierre Olivier Amblard, Fred Sigernes, Polarization in aurorae : a new dimension for space environments studies, Accepted in Geoph. Res.Lett., 2008

[1] Jean Lilensten, Mathieu Barth?lemy, Roland Thissen, Odile Dutuit (Laboratoire de Plan?tologie de Grenoble : CNRS ? Universit? Joseph Fourier - Observatoire des Sciences de l?Univers de Grenoble ? INSU) ; Cyril Simon (LPG, ESTEC) ; Joran Moen (D?partement de Physique, Universit? d?Oslo, ESTEC) ; Dag A. Lorentzen (University Centre in Svalbard) ; Pierre Olivier Amblard (GIPSA, CNRS, Institut National Polytechnique de Grenoble, Universit?s de Grenoble 1 et 3) ; Fred Sigernes (Universit? Nordique de Svalbard)

[2] credits photo G.Gronoff / LPG


derni?re mise ? jour avril 2008

http://www-lpg.obs.ujf-grenoble.fr/spip.php?article101
 
Re: Northern lights glimmer with unexpected trait

amera captures Northern Lights, Southern Lights

NASA satellite snaps both displays simultaneously for the first time

David Perlman, Chronicle Science Editor
Saturday, October 27, 2001



Giant flares erupting on the surface of the sun for the past month are causing vivid displays of the Northern Lights, but few who live above the equator are aware that those same magnetic storms cause equally striking Southern Lights as well.
Now a robot NASA satellite called Polar, flying in a looping orbit around the Earth, has photographed both displays simultaneously -- the first time they have ever been captured in space images with such clarity.
The shimmering curtains of green and sometimes red high in the sky are known as the aurora borealis over the Northern Hemisphere, while over the southern polar regions they are called the aurora australis. The two events are virtually mirror images of each other, and scientists call them "conjugate" events.
To space physicist John B. Sigwarth at the University of Iowa, who helped design and build the satellite's main camera, the images of the two auroras pose an intriguing mystery because theories have always held that the details of both should be exactly the same.
"Yet we're already finding slight differences in their intensity, and we don't understand why," Sigwarth said yesterday. "It's an exciting puzzle, and because we've just now gotten the data, we've got work to do."
Solar flares are erupting frequently because the sun's electrical activity is at the peak of its 11-year cycle.
The flares are the most violent events in the solar system, erupting with the energy of millions of hydrogen bombs at temperatures that can reach 200 million degrees Fahrenheit.
They send out waves of electrically charged particles, and when those particles reach the gases of Earth's upper atmosphere, they interact with the planet's magnetic fields to create the geomagnetic storms that can disrupt satellite communications, black out radio signals, and cause power surges that threaten electricity grids.
The glow of the auroras is caused when the atoms and molecules of the upper atmosphere are struck by the electrically charged particles that stream out from the sun's violent eruptions. The Earth's magnetic field then guides the particles into the polar regions, where they enter the atmosphere to create the ghostly colors that lighten the far northern and southern skies at night.
http://www.sfgate.com/cgi-bin/article.cgi?file=/c/a/2001/10/27/MN233616.DTL&type=printable
 
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