• 量子电动力学惊人成功引起了一问题

    The incredible success of quantum electrodynamics raises the question.

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  • 分钟时间解释一下量子电动力学现在开始

    Explain quantum electrodynamics in two minutes, starting now.

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  • 利用腔量子动力学计算原子全反射镜面附近自发辐射

    Quantum electrodynamics formulas are applied to calculate the spontaneous emission rate of an excited atom in the vicinity of a perfect reflecting mirror.

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  • 整个方案基于现有量子电动力学技术因此方案可行性的。

    The scheme is in the range of present technology of cavity quantum electrodynamics, thus it is feasible.

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  • 无论是以前成百上千计算基础错误的,亦或是量子动力学理论本身问题

    Either the previously accepted measures upon which hundreds of calculations have been based are wrong, or there is a problem with the theory of quantum electrodynamics itself.

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  • 这个测量值代一个复杂量子电动力学(QED)计算公式然后得到质子半径

    This is then fed into a complicated QED calculation to obtain the radius of the proton.

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  • 量子动力学规范量子理论我们上面已经讨论了这种理论框架中的一些过程

    Quantum electrodynamics, some processes in which we have discussed above, is the prototype quantum field theory.

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  • 最后一种可能也是解释依据富伦的说法,量子电动力学QED存在一些错误

    The least likelybut most exciting explanationaccording to Flowers is that there is something wrong with QED.

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  • 第二章介绍量子动力学实验研究进展,并简单介绍了腔量子电动力学发展前景

    In the second chapter, we present the experimental and theoretical study of cavity quantum electrodynamics and its recent development.

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  • 可能量子电动力学(QED)是正确的,但是他们描述复杂的计算过程中有所疏忽。

    The most likely is that QED is correct, but has been misapplied in what he describes as a "very difficult calculation".

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  • 这项发现促使科学家重新思考他们如何应用量子电动力学(QED)理论或者理论本身需要来一次重大修正

    The finding could mean that physicists need to rethink how they apply the theory of quantum electrodynamics (QED) - or even that the theory itself needs a major overhaul.

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  • 量子电动力学(QED)已经一个脆弱数学基础上待了太久,已经预测实验结果上取得了巨大的成功

    While QED rests on a weak mathematical foundation, it has been extremely successful in predicting the outcome of experiments.

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  • 可以通过纳米结构(接近绝对零度超导)得到强大的相互作用(量子电动力学,CircuitQED)。

    A much stronger interaction can be obtained with nano-structured circuits in which metals like aluminum become superconducting at temperatures just above absolute zero (circuit QED).

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  • 可以通过纳米结构(接近绝对零度超导)得到强大的相互作用(量子电动力学,CircuitQED)。

    A much stronger interaction can be obtained with nano-structured circuits in which metals like aluminum become superconducting at temperatures just above absolute zero (circuit QED).

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