{"id":3808,"date":"2020-01-17T00:55:00","date_gmt":"2020-01-16T23:55:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/iodine-may-slow-ozone-layer-recovery.html"},"modified":"2020-01-17T00:55:00","modified_gmt":"2020-01-16T23:55:00","slug":"iodine-may-slow-ozone-layer-recovery","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/iodine-may-slow-ozone-layer-recovery\/","title":{"rendered":"Iodine May Slow Ozone Layer Recovery"},"content":{"rendered":"<p>Air pollution and iodine from the ocean contribute to damage of Earth&rsquo;s ozone layer.<\/p>\n<p> <!--more--> <\/p>\n<p>A new paper quantifying small levels of iodine in Earth&rsquo;s stratosphere could help explain why some of the planet&rsquo;s protective ozone layer isn&rsquo;t healing as fast as expected. The paper posits a set of connections that link air pollution near Earth&rsquo;s surface to ozone destruction much higher in the atmosphere. That higher-level ozone protects the planet&rsquo;s surface from radiation that can cause skin cancer and damage crops.<\/p>\n<p>&ldquo;The impact is maybe 1.5 to 2 percent less ozone,&rdquo; said lead author Theodore Koenig, a postdoctoral researcher at CIRES and the University of Colorado Boulder, referring to ozone in the lower part of the ozone layer, around Earth&rsquo;s tropics and temperate zones. &ldquo;That may sound small, but it&rsquo;s important,&rdquo; he said. A slightly thinner ozone layer means more UVB radiation can get through to Earth&rsquo;s surface.&nbsp;<\/p>\n<p>Koenig&rsquo;s paper, the first &ldquo;quantitative detection&rdquo; of iodine in the stratosphere, is published this week in the<span>&nbsp;<\/span><a href=\"https:\/\/www.pnas.org\/portal\/front-matter?utm_medium=ppc&amp;utm_campaign=front-matter&amp;utm_term=pnas&amp;utm_source=adwords&amp;hsa_net=adwords&amp;hsa_ad=328556293343&amp;hsa_cam=259674732&amp;hsa_kw=pnas&amp;hsa_ver=3&amp;hsa_tgt=kwd-155213620&amp;hsa_mt=b&amp;hsa_grp=15229081452&amp;hsa_src=g&amp;hsa_acc=5151310061&amp;gclid=EAIaIQobChMI7oT8h_Hn5gIVw8DACh1fwgAKEAAYASAAEgKpmfD_BwE\" target=\"_blank\" rel=\"noopener noreferrer\"><em>Proceedings of the National Academy of Sciences<\/em><\/a>, with co-authors from CIRES, CU Boulder and other institutions.&nbsp;<\/p>\n<p>Chemicals once used widely in refrigeration, spray cans and solvents can eat away at Earth&rsquo;s ozone layer. After scientists discovered the stratospheric &ldquo;ozone hole&rdquo; in the 1980s, nations around the world signed the international Montreal Protocol agreement to protect the ozone layer, limiting the emission of ozone-depleting chemicals.<\/p>\n<p>&ldquo;The ozone layer is starting to show early signs of recovery in the<span>&nbsp;<\/span><em>upper<\/em>stratosphere, but ozone in the<span>&nbsp;<\/span><em>lower<\/em><span>&nbsp;<\/span>stratosphere continues to decline for unclear reasons,&rdquo; said Rainer Volkamer, a CIRES Fellow, CU Boulder professor of chemistry and corresponding author of the new assessment. &ldquo;Before now, the decline was thought to be due to changes in how air mixes between the troposphere and stratosphere. Our measurements show there is also a chemical explanation, due to iodine from oceans. What I find exciting is that iodine changes ozone by just enough to provide a plausible explanation for why ozone in the lower stratosphere continues to decline.&#8221;&nbsp;<\/p>\n<p>For the new work, Volkamer and his colleagues pored through data from several recent atmospheric research campaigns involving National Science Foundation&nbsp;and NASA research aircraft, and which included instruments that could pick up tiny amounts of iodine and other so-called halogens in the lower stratosphere during the daytime. Halogens, which also include chlorine and bromine, are key to ozone destruction.<\/p>\n<p>It&rsquo;s been tricky to get data from this part of the atmosphere, Koenig said. &ldquo;We knew there was some iodine there, but we couldn&rsquo;t pin numbers on it until now.&nbsp;This is a result of technological advancement: Our instruments just kept getting a little bit better and eventually, it was enough to make measurements.&rdquo;&nbsp;&nbsp;<\/p>\n<p>The amount of iodine they picked up in the lower stratosphere is tiny, similar to adding a few bottles of water to the Great Salt Lake.&nbsp;But iodine is extremely effective at destroying ozone, and generally speaking, the amount the scientists measured is enough to explain the level of ozone destruction in the lower stratosphere.&nbsp;<\/p>\n<p>So where did the iodine come from? Strangely it seems to be a result of air pollution down here at the surface of the planet, the new assessment reports.&nbsp;<\/p>\n<p>Ozone at Earth&rsquo;s surface is a pollutant, one that is regulated in the United States and elsewhere because it can harm people&rsquo;s lungs. And when ozone pollution interacts chemically with the surface of oceans, it can &ldquo;pull&rdquo; naturally occurring iodine up into the atmosphere. Other studies have shown that in the lower atmosphere, iodine levels have roughly tripled in concentration since 1950.<\/p>\n<p>So some of that iodine is apparently making it up into the stratosphere, where it can trigger ozone depletion, Koenig said. &ldquo;This should not diminish the success story of the Montreal Protocol, but still, it is important. The lower stratosphere should have improved already, not gotten worse.&rdquo;&nbsp;<\/p>\n<p>&ldquo;There&rsquo;s something going on resulting in deterioration. Our hypothesis is that ozone at the surface is destroying ozone in the stratosphere,&rdquo; Koenig added.<\/p>\n<p>It will be important to study the hypothesis in greater detail, Koenig and his co-authors said. If ozone pollution at Earth&rsquo;s surface increases, for example, could it trigger even more lower-stratosphere ozone layer destruction?&nbsp;<\/p>\n<p>Co-author Pedro Campuzano-Jost, a CIRES research associate, said the success of the research project is partly due to the unique scope of NASA&rsquo;s ATom (<a href=\"https:\/\/www.nasa.gov\/content\/earth-expeditions-atom\" target=\"_blank\" rel=\"noopener noreferrer\">Atmospheric Tomography<\/a>) mission, which flew a research aircraft across the globe; and NSF&rsquo;s CONTRAST (<a href=\"http:\/\/Convective Transport of Active Species in the Tropics\" target=\"_blank\" rel=\"noopener noreferrer\">Convective Transport of Active Species in the Tropics)<\/a><span>&nbsp;<\/span>mission, which detected iodine oxide radicals in the stratosphere.<\/p>\n<p>&ldquo;Half of the places we went had never been sampled before for aerosols,&rdquo; Campuzano-Jost said, and that is the kind of opportunity that leads to new discoveries.&nbsp;<\/p>\n<p>Volkamer and his colleagues hope to successfully pitch a new mission to study iodine chemistry in greater detail, to better understand the future of Earth&rsquo;s protective ozone layer.<\/p>\n<h5 class=\"green\">Source<\/h5>\n<p><span><a href=\"https:\/\/cires.colorado.edu\" target=\"_blank\" rel=\"noopener noreferrer\">Cooperative Institute for Research in Environmental Sciences | 2020<\/a><\/span><\/p>\n<div class=\"shariff shariff-align-flex-start shariff-widget-align-flex-start\"><div class=\"ShariffHeadline\">Diese Meldung teilen<\/div><ul class=\"shariff-buttons theme-round orientation-horizontal buttonsize-medium\"><li class=\"shariff-button facebook shariff-nocustomcolor\" style=\"background-color:#4273c8;border-radius:1%\"><a href=\"https:\/\/www.facebook.com\/sharer\/sharer.php?u=https%3A%2F%2Fwww.sonnenseite.com%2Fen%2Fscience%2Fiodine-may-slow-ozone-layer-recovery%2F\" title=\"Bei Facebook teilen\" aria-label=\"Bei Facebook teilen\" role=\"button\" rel=\"nofollow\" class=\"shariff-link\" style=\";border-radius:1%; 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