Spin Berry points as crucial for ultrafast demagnetization
G. P. Zhang, Y. H. Bai, Thomas F. George

TL;DR
This paper identifies special spin Berry points in the band structure of fcc Ni that cause abrupt spin changes, providing new insight into ultrafast demagnetization and spintronic phenomena.
Contribution
It reveals the critical role of spin Berry points in ultrafast demagnetization and spin dynamics, linking band structure features to spin angular momentum changes.
Findings
Spin Berry points cause abrupt spin angular momentum changes.
These points explain sharp spin moment reductions during demagnetization.
Band structure disrupts smooth spin Berry lines, affecting spin dynamics.
Abstract
Laser-induced ultrafast demagnetization has puzzled researchers around the world for over two decades. Intrinsic complexity in electronic, magnetic, and phononic subsystems is difficult to understand microscopically. So far it is not possible to explain demagnetization using a single mechanism, which suggests a crucial piece of information still missing. In this paper, we return to a fundamental aspect of physics: spin and its change within each band in the entire Brillouin zone. We employ fcc Ni as an example and use an extremely dense {\bf k} mesh to map out spin changes for every band close to the Fermi level along all the high symmetry lines. To our surprise, spin angular momentum at some special {\bf k} points abruptly changes from to simply by moving from one crystal momentum point to the next. This explains why intraband transitions, which the spin…
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