Spin Casimir Effect in Non-collinear Quantum Antiferromagnets
Z. Z. Du, H. M. Liu, Y. L. Xie, Q. H. Wang, J. -M. Liu

TL;DR
This paper investigates the spin Casimir effect in non-collinear quantum antiferromagnets, revealing its impact on magnetic order stability and introducing a self-consistent spin-wave method to analyze quantum phase diagrams.
Contribution
It develops a self-consistent spin-wave expansion approach to address divergences caused by the spin Casimir effect in non-collinear antiferromagnets.
Findings
Spiral order stability is limited to 0.5<α<1.2.
Spin Casimir effect causes instability beyond α>1.2.
Method aids in estimating exchange parameters and phase diagrams.
Abstract
The Casimir effect is a general phenomenon in physics, which arises when the vacuum fluctuation of an arbitrary field is modified by static or slowly varying boundary. However, its spin version is rarely addressed, mainly due to the fact that a macroscopic boundary in quantum spin systems is hard to define. In this article, we explore the spin Casimir effect induced by the zero-point fluctuation of spin waves in a general non-collinear ordered quantum antiferromagnet. This spin Casimir effect results in a spin torque between local spins and further causes various singular and divergent results in the framework of spin-wave theory, which invalidate the standard expansion procedure. To avoid this dilemma, we develop a self-consistent spin-wave expansion approach, which preserves the spin-wave expansion away from singularities and divergence. A detailed spin-wave analysis of the…
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