凝聚态物理
自旋电子学
能斯特效应
Berry连接和曲率
铁磁性
自旋(空气动力学)
霍尔效应
费米能级
自旋霍尔效应
物理
塞贝克系数
热电效应
材料科学
磁矩
电导率
热导率
能斯特方程
热霍尔效应
联轴节(管道)
电阻率和电导率
电子
兴奋剂
量子霍尔效应
量子自旋霍尔效应
电子结构
磁电阻
横截面
作者
Anurodh Sharma,Srivani Javvaji,Lakhansingh Kowachi,ABHIPSHA PATTNAIK,Hrishikesh Sinha,Susaiammal Arokiasamy,Chitimireddy Prashanth,Mitch M. C. Chou,Shiu-Ming Huang,P. Rambabu
标识
DOI:10.1088/1361-648x/ae36da
摘要
The quaternary Heusler compound CoMnCrGa emerges as a highly promising candidate for spintronic and transverse thermoelectric applications, as revealed by comprehensive first-principles calculations. CoMnCrGa stabilizes in the Type-I cubic structure (F4¯3m) with a ferromagnetic ground state. The total magnetic moment of∼1.09μBobeys the Slater-Pauling rule, indicating a nearly half-metallic character corroborated by high electronic spin polarization. Prominent Berry curvature (BC) hotspots near the Fermi level generate substantial anomalous transport responses, including an anomalous Hall conductivity of∼-325.7 S cm-1at -158.8 meV and an anomalous Nernst conductivity (ANC) of∼-0.828 A m-1K-1at -55.6 meV at room temperature. The material also exhibits a remarkably large spin Hall conductivity of∼128(ℏ/e) (S cm-1) at 198.8 meV, driven by strong spin-orbit coupling and localized spin BC. Notably, the ANC demonstrates exceptional tunability and thermal stability, reaching∼0.75 A m-1K-1at room temperature under optimal electron doping (µ = 0.3 eV). The coexistence of robust ferromagnetism, high spin polarization, large spin Hall conductivity, and tunable anomalous Nernst effect positions CoMnCrGa as a premier material for next-generation spintronic and spin-caloritronic devices.
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