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Parallel temperatures in supersonic beams:Ultracooling of light atoms seeded in a heavier carrier gas

机译:超声束中的平行温度:重载气中种子的轻原子的超冷

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Supersonic expansion is a very powerful tool to produce an atomic beam with a well defined velocity and,by seeding a test gas in such an expansion,the energy of the test gas can be transferred,at least partially,to the very-low-temperature carrier gas.The case usually studied is the one of a heavy gas seeded in a light carrier gas and,in this case,the parallel temperature of the seeded gas is always larger than the one of the carrier gas.In the present paper,we study the opposite case which has received less attention:when a light gas is seeded in a heavier carrier gas,the parallel temperature can be substantially lower for the seeded gas than for the carrier gas.This effect has been first observed by Campargue and co-workers in 2000,in the case of atomic oxygen seeded in argon.In the present paper,we develop a theoretical analysis of this effect,in the high dilution limit,and we compare our theoretical results to several experimental observations,including a set of measurements we have made on a beam of lithium seeded in argon.The agreement between theory and experiments is good.
机译:超音速膨胀是产生具有确定速度的原子束的非常强大的工具,通过在这种膨胀中注入测试气体,测试气体的能量可以至少部分地转移到极低温下通常研究的案例是在轻载气中注入的重气之一,在这种情况下,注入气的平行温度始终比载气中的平行气高。研究一种相反的情况,这种情况很少受到关注:当在较重的载气中注入轻质气体时,播种气体的平行温度可能比载气中的平行温度低得多。这种影响首先由Campargue和2000年,在氩气中注入原子氧的情况下,本文进行了理论分析。在高稀释极限下,我们将理论结果与包括一组测量值在内的几个实验观察结果进行了比较。我们有在氩气中注入锂离子束制成。理论与实验之间的一致性很好。

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