论文标题

现场理论函数重归其化组形式主义,用于非Fermi液体及其在二维中的反铁磁量子临界金属中的应用

Field-theoretic functional renormalization group formalism for non-Fermi liquids and its application to the antiferromagnetic quantum critical metal in two dimensions

论文作者

Borges, Francisco, Borissov, Anton, Singh, Ashutosh, Schlief, Andres, Lee, Sung-Sik

论文摘要

为了捕获有效场理论中金属的通用低能物理学,由于存在固有尺度(Fermi Momenta),因此必须概括规模不变性和可重新范围的场理论的通常概念。在本文中,我们开发了一种现场理论的官能化群形式,用于非弗米液体的全低能有效野外理论,其中包括费米表面周围的所有无间隙模式。形式主义应用于在两个空间尺寸的抗铁磁量子临界点上产生的非纤维液体。在耦合函数的空间中,相互作用的固定点与动量无关的耦合和消失的嵌套角出现。在与非零嵌套角变形的理论中,耦合函数在低能量下以裸嵌套角的控制获得了通用动量轮廓,然后在低能极限下流向超导状态。超导不稳定性是不可避免的,因为冷淡的电子足够连贯,以至于易受配对的敏感,最终会受到重新规定的有吸引力的相互作用,并通过嵌套角度设定的最小强度。尽管不可避免的超导不稳定,但具有排斥性或弱吸引力的裸露角度和裸露的四个弗斯耦合的理论必须经过该区域,由于靠近非Fermi液体液体固定点,因此RG流动缓慢。瓶颈区域控制着正常状态的缩放行为以及从非Fermi液体到超导性的准全途径。在嵌套角度很小的极限中,非Fermi液体缩放缩放在超导过渡温度上方的大型能量尺度上决定了物理。

To capture the universal low-energy physics of metals within effective field theories, one has to generalize the usual notion of scale invariance and renormalizable field theory due to the presence of intrinsic scales (Fermi momenta). In this paper, we develop a field-theoretic functional renormalization group formalism for full low-energy effective field theories of non-Fermi liquids that include all gapless modes around the Fermi surface. The formalism is applied to the non-Fermi liquid that arises at the antiferromagnetic quantum critical point in two space dimensions. In the space of coupling functions, an interacting fixed point arises at a point with momentum-independent couplings and vanishing nesting angle. In theories deformed with non-zero nesting angles, coupling functions acquire universal momentum profiles controlled by the bare nesting angles at low energies before flowing to superconducting states in the low-energy limit. The superconducting instability is unavoidable because lukewarm electrons that are coherent enough to be susceptible to pairing end up being subject to a renormalized attractive interaction with its minimum strength set by the nesting angle. Despite the inevitable superconducting instability, theories with small bare nesting angles and bare four-fermion couplings that are repulsive or weakly attractive must pass through the region with slow RG flow due to the proximity to the non-Fermi liquid fixed point. The bottleneck region controls the scaling behaviours of the normal state and the quasi-universal pathway from the non-Fermi liquid to superconductivity. In the limit that the nesting angle is small, the non-Fermi liquid scaling dictates the physics over a large window of energy scale above the superconducting transition temperature.

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