AI Article Synopsis

  • - The research explores the electronic and magnetic traits of Li(ZnMn)As with defects due to the substitution of Zn for As, using advanced first-principles computational methods.
  • - It was found that the antisite defect caused by Zn substitution creates d-sp hybrid orbitals, influencing the magnetic interactions and leading to p-type characteristics in the compound.
  • - The study highlights a new type of dilute magnetic semiconductor with adjustable carrier properties, enhancing the understanding of ferromagnetic coupling mechanisms within the material.

Article Abstract

The electronic structure and magnetic properties of Li(ZnMn)As with antisite defects have been investigated by using first-principles calculations within the Perdew-Burke-Ernzerhof generalized gradient approximation. The cation antisite defect induced by Zn substitution for As was considered. Mn-3d, As-4p, Zn-4s, and Zn-4p were involved in the formation of d-sp hybrid orbitals, which enhanced the non-localized properties of Mn-3d electrons and provided a channel of Mn(↑)-As(↓)-Zn(↓)-Mn(↑) for indirect exchange of electrons between the magnetic ions. The antisite defect of Zn-substituted As belonged to the acceptor doping, rendering the compound p-type characteristics. The existence of the extra free hole carriers regulated the magnetic ordering transition. The ferromagnetic coupling between the Mn magnetic dopants was more favorable in the system with an antisite defect. In this paper, a novel type of dilute magnetic semiconductor with controllable carriers was designed and the mechanism of ferromagnetic coupling was revealed, which provided a theoretical reference for the subsequent studies.

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Source
http://dx.doi.org/10.1039/d3cp01511dDOI Listing

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