Resistance hysteresis in paramagnetic tungsten nitride (W5N6)

W Wei-Chen Lin S Sheng-Zong Chen (Department of Physics, National Taiwan University 1 , Taipei 106,) Y Yong-Cheng Lai H Hao-Chen Yeh (Department of Physics, National Taiwan University 3 , Taipei 106,) H Hao-Ting Chin (Molecular Science and Technology Program, Taiwan International Graduate Program, Academia Sinica 4 , Taipei 106,) D Deng-Chi Wang (Department of Physics, National Sun Yat-Sen University 7 , Kaohsiung 804,) M Mu-Chen Shih (Graduate Institute of Applied Physics, National Taiwan University 9 , Taipei 106,) F Feng-Chuan Chuang (Department of Physics, National Sun Yat-sen University 1 , Kaohsiung 80424,) M Mario Hofmann (Department of Physics, National Taiwan University 3 , Taipei 106,) C Chiashain Chuang (Department of Electronic Engineering, Chung Yuan Christian University 2 , Taoyuan City 320,) P Pei-hsun Jiang (Department of Physics, National Taiwan Normal University 13 , Taipei 106,) Y Ya-Ping Hsieh C Chi-Te Liang (Department of Physics, National Taiwan University 1 , Taipei 106,)

Abstract

Two-dimensional (2D) transition metal nitrides (TMNs), which are members of the family of 2D materials, may find practical applications in electronics and optoelectronics because of their superior physical properties. Recently, wafer-scale, single-unit-cell height P62m W5N6, which was difficult to be synthesized in the past, has been grown using a restricted vapor–liquid–solid method. Here, we report experimental evidence for hysteretic magnetoresistance (MR) mediated by temperature in paramagnetic W5N6. Surprisingly, hysteretic MR is weak or even non-existent at millikelvin temperatures where hysteresis is expected to be most pronounced. With increasing temperature, hysteretic behavior becomes the strongest at around 9 K. With further increase in temperature, hysteresis becomes weaker and undetectable at around 26 K. The observed paramagnetism in the Efros–Shklovskii variable range hopping (E–S VRH) regime, where Coulomb interactions are important, provides a paradigm for probing magnetism in 2D TMNs. Importantly, such paramagnetism in TMNs in the E–S VRH regime, which is supported by density functional theory calculations, may find applications in medical imaging, magnetic refrigeration, and magnetic sensing.

Article Details

Volume / Issue Vol. 127, Issue 5
Published August 04, 2025
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (13)

W

Wei-Chen Lin

S

Sheng-Zong Chen

Department of Physics, National Taiwan University 1 , Taipei 106,

Y

Yong-Cheng Lai

H

Hao-Chen Yeh

Department of Physics, National Taiwan University 3 , Taipei 106,

H

Hao-Ting Chin

Molecular Science and Technology Program, Taiwan International Graduate Program, Academia Sinica 4 , Taipei 106,

D

Deng-Chi Wang

Department of Physics, National Sun Yat-Sen University 7 , Kaohsiung 804,

M

Mu-Chen Shih

Graduate Institute of Applied Physics, National Taiwan University 9 , Taipei 106,

F

Feng-Chuan Chuang

Department of Physics, National Sun Yat-sen University 1 , Kaohsiung 80424,

M

Mario Hofmann

Department of Physics, National Taiwan University 3 , Taipei 106,

C

Chiashain Chuang

Department of Electronic Engineering, Chung Yuan Christian University 2 , Taoyuan City 320,

P

Pei-hsun Jiang

Department of Physics, National Taiwan Normal University 13 , Taipei 106,

Y

Ya-Ping Hsieh

C

Chi-Te Liang

Department of Physics, National Taiwan University 1 , Taipei 106,