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						<h1 itemprop="headline">QUSCOPE and CQOM Seminar - Howard Wiseman, Griffith University, Queensland, Australia: The Heisenberg limit for laser coherence</h1>
						
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														Fredag 10. maj 2019,
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														&nbsp;kl. 10:15 -  11:00
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													<p class="news-event__info__item__ical-link"><a href="/aktuelt/nyhed/artikel/quscope-and-cqom-seminar-howard-wiseman-griffith-university-queensland-australia-the-heisenber?tx_news_pi1%5Bformat%5D=ical&amp;type=9819&amp;cHash=c4b0a2df6740e9b7d2bcaab59a5befd1">Tilføj til kalender</a></p>
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														<span itemprop="name">Grete Flarup</span>
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									<p><em>Abstract:&nbsp;</em></p>
<p>To quantify quantum optical coherence requires both the particle- and wave-natures of light. For an ideal laser beam, it can be thought of roughly as the number of photons emitted consecutively into the beam with the same phase. This number,&nbsp;C, can be much larger than&nbsp;μ, the number of photons in the laser itself. The limit on&nbsp;C&nbsp;for an ideal laser was thought to be of order&nbsp;μ<sup>2</sup>. Here, assuming nothing about the laser operation, only that it produces a beam with&nbsp;properties close to those&nbsp;of an ideal laser beam, and that it does not have external sources or stores of coherence, we derive an upper bound:&nbsp;C&nbsp;=&nbsp;O(μ<sup>4</sup>). Moreover, using&nbsp;the matrix product states method, we find a model that achieves this scaling.&nbsp;Thus&nbsp;C&nbsp;=&nbsp;O(μ<sup>2</sup>)&nbsp;is only a standard quantum limit; the ultimate quantum limit,&nbsp;or Heisenberg limit, is quadratically better.</p>
<p><em>Coffee/tea and bread rolls from 10:00</em></p>
								
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