论文标题

超过拓扑bogoliubov fermi表面超过Landau超级流速度极限

Exceeding the Landau superflow speed limit with topological Bogoliubov Fermi surfaces

论文作者

Autti, S., Mäkinen, J. T., Rysti, J., Volovik, G. E., Zavjalov, V. V., Eltsov, V. B.

论文摘要

拓扑系统的一个共同特性是拓扑保护的零能激励的出现。在超导体或超流体中,这种状态将Landau提出的无耗散流量的关键速度设置为耗散流量的关键速度$ v _ {\ mathrm {cl}} $归零。我们通过实验检查稳定的SuperFlow是否在P-Wave Superfluid $^3 $ HE的极性相中是否可能进行,该$^3 $ HE在Bogoliubov Quasiparticles的能量谱中具有狄拉克节点线。流体是由整个低温恒温器的旋转驱动的,超级流崩溃被视为单量子或半量子涡旋的外观。使用在流体中产生的少量木胶的弛豫率检测到涡旋。尽管Landau临界速度为零值,但发现极相中的超流量稳定至有限的临界速度$ v _ {\ rm c} \大约0.2 \,$ cm/s。我们建议,超过$ v _ {\ mathrm {cl}} $的稳定性,但低于$ v _ {\ rm c} $以下是通过将流动诱导的准粒子累积到动量空间中的口袋中提供的,并由Bogoliubov Fermi fermi表面限制。在极相中,该表面具有非平凡的拓扑结构,其中包括两个伪 - 韦尔点。在临界速度上方形成的涡流被强烈固定在狭窄的基质中,用于稳定极相,因此即使外部驱动器将其稳定,也可以保持稳定的宏观超级流。

A common property of topological systems is the appearance of topologically protected zero-energy excitations. In a superconductor or superfluid such states set the critical velocity of dissipationless flow $v_{\mathrm{cL}}$, proposed by Landau, to zero. We check experimentally whether stable superflow is nevertheless possible in the polar phase of p-wave superfluid $^3$He, which features a Dirac node line in the energy spectrum of Bogoliubov quasiparticles. The fluid is driven by rotation of the whole cryostat, and superflow breakdown is seen as the appearance of single- or half-quantum vortices. Vortices are detected using the relaxation rate of a Bose-Einstein condensate of magnons, created within the fluid. The superflow in the polar phase is found to be stable up to a finite critical velocity $v_{\rm c}\approx 0.2\,$cm/s, despite the zero value of the Landau critical velocity. We suggest that the stability of the superflow above $v_{\mathrm{cL}}$ but below $v_{\rm c}$ is provided by the accumulation of the flow-induced quasiparticles into pockets in the momentum space, bounded by Bogoliubov Fermi surfaces. In the polar phase this surface has non-trivial topology which includes two pseudo-Weyl points. Vortices forming above the critical velocity are strongly pinned in the confining matrix, used to stabilize the polar phase, and hence stable macroscopic superflow can be maintained even when the external drive is brought to zero.

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