Bluesky Facebook Reddit Email

Experiment unveils Berry curvature mechanism for linear positive magnetoresistance

11.07.22 | Chinese Academy of Sciences Headquarters

Apple iPhone 17 Pro

Apple iPhone 17 Pro delivers top performance and advanced cameras for field documentation, data collection, and secure research communications.


In a recent study, scientists from the Institute of Physics of the Chinese Academy of Sciences, in collaboration with scientists from Dresden, Halle, and others have established a physical model of Berry-curvature-dominated linear positive magnetoresistance (LPMR), providing experimental evidence for this mechanism.

Relevant results were published on PNAS on Nov. 2.

Berry curvature, the pseudomagnetic field in momentum space, is the origin of many transport phenomena including chiral anomaly and intrinsic anomalous transverse transport properties. In topological materials, Berry curvature is extremely large because of special band structures, e.g., Dirac nodes, Weyl nodes, and nodal lines.

LPMR is a transport phenomenon whereby longitudinal resistance of a material varies linearly and positively with magnetic field. Although large LPMR has been widely reported in topological materials, the explanations for it in topological materials are ambiguous.

In view of this, researchers in LIU's group and their collaborators investigated the relation between Berry curvature and LPMR based on a topological material candidate, cobalt disulfide (CoS 2 ).

Their study showed that, in theory, the slope of LPMR is proportional to the average of the Berry curvature around the Fermi surface.

They proposed temperature-dependent anomalous Hall conductivity and LPMR equations based on a 3D-Weyl-node model. The experimental data of CoS 2 and other topological materials reported previously can be fitted to the theoretical temperature-dependent equations, which is evidence for Berry-curvature-dominated LPMR.

This study unveils the relationship between Berry curvature and LPMR, thus facilitating the understanding and functional design of LPMR materials for magnetic sensing or information storage.

This work was supported by the National Science Foundation of China, the Ministry of Science and Technology of China, and CAS.

Proceedings of the National Academy of Sciences

10.1073/pnas.220850511

Experimental study

Not applicable

Scaling of Berry-curvature monopole dominated large linear positive magnetoresistance

2-Nov-2022

Keywords

Article Information

Contact Information

LIU Enke
Institute of Physics
ekliu@iphy.ac.cn

Source

How to Cite This Article

APA:
Chinese Academy of Sciences Headquarters. (2022, November 7). Experiment unveils Berry curvature mechanism for linear positive magnetoresistance. Brightsurf News. https://www.brightsurf.com/news/8J43NJYL/experiment-unveils-berry-curvature-mechanism-for-linear-positive-magnetoresistance.html
MLA:
"Experiment unveils Berry curvature mechanism for linear positive magnetoresistance." Brightsurf News, Nov. 7 2022, https://www.brightsurf.com/news/8J43NJYL/experiment-unveils-berry-curvature-mechanism-for-linear-positive-magnetoresistance.html.