论文标题

重力波与超导体的相互作用

Interaction of Gravitational Waves with Superconductors

论文作者

Inan, NA, Thompson, JJ, Chiao, RY

论文摘要

将helmholtz分解定理应用于线性的一般相对论,导致了量规不变的公式,其中度量扰动的横向无跟踪部分描述了物质中的重力波。入射在超导体上的重力波可以通过线性伦敦样的成分方程来描述,其特征在于“重力剪切模量”和相应的等离子体频率和穿透深度。电力和磁性引力张量场是根据引力波的应变场定义的。结果表明,在直流极限中,磁性张量场在引力米斯纳(Meissner)效应中以超导体的形式排出。库珀对密度由嵌入弯曲时空中的金茨堡自由能密度描述。离子晶格由量子谐波振荡器建模,该量子振荡器与重力波耦合,并以声子模式的准能量特征值进行特征。该公式预测了动态casimir效应的可能性,因为发现离子晶格声子的零点能通过重力波调节,以“ Weber-bar效应”的量子模拟。在低温极限中应用周期性热力学和Debye模型会导致离子晶格的自由能密度。最后,我们将空间的重力应变与物质应变联系起来,以表明对库珀对密度的重力响应远低于离子晶格。这预测了由于引力波的结果,超导体的电荷分离效果。

Applying the Helmholtz Decomposition theorem to linearized General Relativity leads to a gauge-invariant formulation where the transverse-traceless part of the metric perturbation describes gravitational waves in matter. Gravitational waves incident on a superconductor can be described by a linear London-like constituent equation characterized by a "gravitational shear modulus" and a corresponding plasma frequency and penetration depth. Electric-like and magnetic-like gravitational tensor fields are defined in terms of the strain field of a gravitational wave. It is shown that in the DC limit, the magnetic-like tensor field is expelled from the superconductor in a gravitational Meissner-like effect. The Cooper pair density is described by the GinzburgLandau free energy density embedded in curved spacetime. The ionic lattice is modeled by quantum harmonic oscillators coupled to gravitational waves and characterized by quasi-energy eigenvalues for the phonon modes. The formulation predicts the possibility of a dynamical Casimir effect since the zero-point energy of the ionic lattice phonons is found to be modulated by the gravitational wave, in a quantum analog of a "Weber-bar effect." Applying periodic thermodynamics and the Debye model in the low-temperature limit leads to a free energy density for the ionic lattice. Lastly, we relate the gravitational strain of space to the strain of matter to show that the response to a gravitational wave is far less for the Cooper pair density than for the ionic lattice. This predicts a charge separation effect in the superconductor as a result of the gravitational wave.

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