Enhanced Magnetism & Time - Stable Remanence at the Interface of Hematite and Carbon Nanotubes
Aakanksha Kapoor, Arka Bikash Dey, Charu Garg, Ashna Bajpai

TL;DR
This study demonstrates that encapsulating hematite within carbon nanotubes significantly enhances magnetization and stabilizes remanent magnetization at room temperature, revealing novel interface effects and potential for advanced magnetic materials.
Contribution
The paper introduces a new method of enhancing and stabilizing remanent magnetization at room temperature through CNT encapsulation of hematite, highlighting interface-driven magnetic phenomena.
Findings
Encapsulation inside CNT increases magnetization and remanent magnetization.
Remanent magnetization remains stable over time at room temperature.
Lattice anomalies at the interface confirm novel interface effects.
Abstract
The interface of two dissimilar materials is well known for surprises in condensed matter, and provides avenues for rich physics as well as seeds for future technological advancements. We present some exciting magnetization (M) and remnant magnetization () results, which conclusively arise at the interface of two highly functional materials, namely the graphitic shells of a carbon nanotube (CNT) and -FeO, a Dzyaloshinskii-Moriya Interaction (DMI) driven weak ferromagnet (WFM) and piezomagnet (PzM). We show that the encapsulation inside CNT leads to a very significant enhancement in M and correspondingly in , a time- stable part of the remanence, exclusive to the WFM phase. Up to 70% of in-field magnetization is retained in the form of at the room temperature. Lattice parameter of CNT around the Morin transition of the encapsulate exhibits a clear anomaly,…
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