Add BrightSurf on Google Email

Beyond (Ga,Mn)As: µSR reveals microscopic magnetic behaviors of next-generation bulk diluted ferromagnetic semiconductor Li(Zn,Mn)As

08.25.26 | Materials Futures
Apple iPhone 17 Pro

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


Background: Traditional III-V diluted ferromagnetic semiconductor (Ga,Mn)As remains the benchmark platform for semiconductor spintronics, e.g., a new generation of low-power, high-efficiency electronic computer integrating storage and computing, yet it suffers critical drawbacks: mandatory thin-film synthesis via molecular beam epitaxy, air instability, coupled spin-charge doping that complicates mechanism disentanglement, and unfeasible bulk neutron scattering characterization. Proposed in 2007 and successfully synthesized as bulk crystals in 2011, Li(Zn,Mn)As is an isostructural cubic F-43m I-II-V DMS featuring fully decoupled spin doping (Mn²⁺ substituting Zn²⁺) and charge doping (excess Li carriers). Unlike (Ga,Mn)As, bulk polycrystalline Li(Zn,Mn)As is chemically stable in ambient air, making it ideal for local-probe microscopic magnetic characterization. Prior work confirmed ferromagnetic ordering emerges only under simultaneous carrier and Mn spin co-doping, yet the microscopic evolution from paramagnetism to long-range ferromagnetism, intrinsic magnetic ground state nature, and critical spin dynamics near Curie temperature ( T C ) remained unquantified until this µSR investigation.

The Solution: The research team performed zero-field (ZF), weak transverse-field (wTF) and longitudinal-field (LF) µSR experiments at TRIUMF National Laboratory (Canada) on four compositional variants of Li 1+y (Zn 1-x Mn x )As spanning undoped paramagnetic reference to high-Mn ferromagnetic samples. A refined global fitting framework integrating Lorentzian Kubo-Toyabe stretched exponential models was developed to separate static ordered magnetic volume fraction ( f M ) and dynamic spin fluctuation contributions across full temperature and magnetic field windows, overcoming limitations of truncated time-window analysis adopted in earlier DMS µSR studies. Three definitive, quantitative experimental advances emerge from the work:

“For over the past 15 years, the field lacked direct microscopic quantification of how magnetic order nucleates and expands within Li(Zn,Mn)As, the flagship bulk DMS that decouples spin and charge doping,” pointed by the team. “Muons act as atomic-scale local magnetic sensors sensitive to both static internal field distributions and fast spin fluctuations; our multi-field µSR design allowed us to disentangle static vs dynamic contributions that ZF/wTF spectroscopy alone cannot isolate. The 5% Mn percolation threshold we measured provides a concrete experimental benchmark to validate BMP overlap percolation theories, while the absence of critical spin fluctuations near T C forces us to revisit standard assumptions about second-order magnetic phase transitions in heavily disordered dilute ferromagnets. Our scaling analysis linking static µSR relaxation rate a s and T C unifies magnetic interaction mechanisms across all cubic F-43m DMS and related systems, establishing a universal metric to evaluate magnetic homogeneity in future spintronic candidate materials.”

The Future : The team clarifies that bound magnetic polaron theory offers partial qualitative interpretation for the observed doping-dependent magnetic evolution, yet cannot fully account for the suppressed critical dynamics at the paramagnet-ferromagnet transition. Follow-up research directions outlined in the paper include high-resolution transport, heat capacity and magnetization hysteresis measurements to resolve the true order of the magnetic phase transition, fine-grained Mn doping series to refine the percolation threshold value, and extension of LF-µSR characterization to high- T C BaZn 2 As 2 -family bulk DMS single crystals. Long-term translational goals include designing Li(Zn,Mn)As-based heterostructures that exploit controllable magnetic phase separation for low-power spintronic device prototypes, alongside in-situ µSR experiments under electric field or pressure stimuli to dynamically tune ferromagnetic ordering.

The Impact : This work represents the first systematic microscopic investigation utilizing µSR to elucidate the magnetic ground states, phase evolution, and critical spin dynamics of both homogeneous and inhomogeneous ferromagnetic phases within the next generation DMS Li(Zn,Mn)As system, alongside a direct side-by-side comparison of these two regimes under a unified physical framework. This study further validates both the applicable scope and inherent limitations of the phenomenological bound magnetic polaron (BMP) model. Methodologically, this research establishes the first full-spectrum quantitative fitting protocol for wTF-µSR measurements on DMSs, delivering a standardized analytical benchmark for follow-up related investigations.


The research has been recently published in the online edition of Materials Futures , a prominent international journal in the field of interdisciplinary materials science research.

Citation: Guoqiang Zhao, Zheng Deng, Baosen Min, Timothy Ziman, Gang Su, Bo Gu, Changqing Jin, Yasutomo J Uemura. Magnetic ground state, evolution, and critical dynamics in the new generation diluted ferromagnetic semiconductors Li(Zn,Mn)As: a μ SR perspective[J]. Materials Futures , 2026, 5(4): 045201. DOI: 10.1088/2752-5724/ae84ef

Materials Futures

10.1088/2752-5724/ae84ef

Magnetic ground state, evolution, and critical dynamics in the new generation diluted ferromagnetic semiconductors Li(Zn,Mn)As: a μSR perspective

17-Jul-2026

Keywords

Article Information

Contact Information

Yan He
Dongguan Institute of Materials Science and Technology, CAS
heyan@dimst.ac.cn

Source

This article is based on a news release from Materials Futures. BrightSurf curates and republishes science news from research institutions worldwide; the original release is linked below.

How to Cite This Article

APA:
Materials Futures. (2026, August 25). Beyond (Ga,Mn)As: µSR reveals microscopic magnetic behaviors of next-generation bulk diluted ferromagnetic semiconductor Li(Zn,Mn)As. Brightsurf News. https://www.brightsurf.com/news/8OMP5OE1/beyond-gamnas-sr-reveals-microscopic-magnetic-behaviors-of-next-generation-bulk-diluted-ferromagnetic-semiconductor-liznmnas.html
MLA:
"Beyond (Ga,Mn)As: µSR reveals microscopic magnetic behaviors of next-generation bulk diluted ferromagnetic semiconductor Li(Zn,Mn)As." Brightsurf News, Aug. 25 2026, https://www.brightsurf.com/news/8OMP5OE1/beyond-gamnas-sr-reveals-microscopic-magnetic-behaviors-of-next-generation-bulk-diluted-ferromagnetic-semiconductor-liznmnas.html.