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首页> 外文期刊>Physical Review, A >Influence of the chemical potential on the Casimir-Polder interaction between an atom and gapped graphene or a graphene-coated substrate
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Influence of the chemical potential on the Casimir-Polder interaction between an atom and gapped graphene or a graphene-coated substrate

机译:化学电位对原子和盖石墨烯或石墨烯涂覆的基材之间的Casimir-Bolder相互作用的影响

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摘要

We present a formalism based on first principles of quantum electrodynamics at nonzero temperature which permits us to calculate the Casimir-Polder interaction between an atom and a graphene sheet with arbitrary mass gap and chemical potential, including graphene-coated substrates. The free energy and force of the Casimir-Polder interaction are expressed via the polarization tensor of graphene in (2 + 1)-dimensional space-time in the framework of the Dirac model. The obtained expressions are used to investigate the influence of the chemical potential of graphene on the Casimir-Polder interaction. Computations are performed for an atom of metastable helium interacting with either a freestanding graphene sheet or a graphene-coated substrate made of amorphous silica. It is shown that the impacts of the nonzero chemical potential and the mass gap on the Casimir-Polder interaction are in opposite directions, by increasing and decreasing the magnitudes of the free energy and force, respectively. It turns out, however, that the temperature-dependent part of the Casimir-Polder interaction is decreased by a nonzero chemical potential, whereas the mass gap increases it compared to the case of undoped, gapless graphene. The physical explanation for these effects is provided. Numerical computations of the Casimir-Polder interaction are performed at various temperatures and atom-graphene separations.
机译:我们基于非零温度的量子电动动力学的第一个原理提出了一种形式主义,允许我们计算原子与具有任意质量差距和化学电位的石墨烯片之间的Casimir-Bolder相互作用,包括石墨烯涂覆的基材。 Casimir-Bolder相互作用的自由能量和力通过在DIRAC模型的框架中的(2 + 1) - 二维空间时间中的石墨烯的偏振张量表示。所获得的表达用于研究石墨烯的化学电位对Casimir-Bolder相互作用的影响。对与由独立石墨烯片或由非晶二氧化硅制成的石墨烯涂覆的基材相互作用的亚稳氦的原子进行计算。结果表明,通过增加和降低自由能量和力的幅度,不含非零化学电位和质量间隙对Casimir-Bolder相互作用的影响。然而,事实证明,通过非零化学电位,Casimir-Bolder相互作用的温度依赖性部分降低,而质量间隙与未掺杂的无透明的无间隙石墨烯的情况相比增加。提供了这些效果的物理解释。在各种温度和原子 - 石墨烯分离的情况下进行Casimir-Bolder相互作用的数值计算。

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