Enhanced coercivity and emergence of spin cluster glass state in 2D ferromagnetic material Fe3GeTe2
Satyabrata Bera, Suman Kalyan Pradhan, Riju Pal, Buddhadeb Pal, Arnab, Bera, Sk Kalimuddin, Manjil Das, Deep Singha Roy, Hasan Afzal, Atindra Nath, Pal, and Mintu Mondal

TL;DR
This study demonstrates a simple phase engineering method to significantly enhance the coercivity of 2D ferromagnetic Fe3GeTe2 without affecting its Curie temperature, leading to potential applications in spintronics and memory storage.
Contribution
The paper introduces a robust phase engineering approach by altering growth conditions to embed FeTe clusters, greatly increasing coercivity while maintaining magnetic transition temperature.
Findings
Coercivity increased by 7-10 times to approximately 1 kOe.
Embedded FeTe clusters act as pinning centers and anti-phase domains.
Sample retains a Curie temperature around 210K.
Abstract
Two-dimensional (2D) van der Waals (vdW) magnetic materials with high coercivity and high are desired for spintronics and memory storage applications. FeGeTe (F3GT) is one such 2D vdW ferromagnet with a reasonably high , but with a very low coercive field, (100~Oe). Some of the common techniques of enhancing are by introducing pinning centers, defects, stress, doping, etc. They involve the risk of undesirable alteration of other important magnetic properties. Here we propose a very easy, robust, and highly effective method of phase engineering by altering the sample growth conditions to greatly enhance the intrinsic coercivity (7-10 times) of the sample, without compromising its fundamental magnetic properties (210K). The phase-engineered sample (F3GT-2) comprises of parent F3GT phase with a small…
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Taxonomy
Topics2D Materials and Applications · Magnetic properties of thin films · Advanced Condensed Matter Physics
