The crystal structure, and magnetic and magnetocaloric properties of rapidly solidified Ni0.895Cr0.105MnGe1.05 melt-spun ribbons is reported. The ribbon samples crystallize into a single-phase hexagonal Ni2In-type structure at room temperature. The as-quenched ribbons showed a second order magnetic transition at 192 ± 1 K at μoH = 5 mT. A magnetic-field-induced transition from an antiferromagnetic (AFM)-like to a ferromagnetic (FM) state of martensite structure was observed in annealed ribbons below the temperature of the martensitic transformation (TM ∼ 245 ± 1 K). The annealed ribbons undergo a first-order magnetostructural transition (MST) with a large maximum reversible magnetic entropy change of ΔSM = 16.1 J kg−1 K−1 (this is about a f...
As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their stru...
We present the thermal dependence of the magnetic entropy change ΔSM(T) across the martensitic trans...
We present the thermal dependence of the magnetic entropy change ΔSM(T) across the martensitic trans...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their stru...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
We report the magnetic and magnetocaloric properties of rapidly solidified Ni0.895Cr0.105MnGe1.05 me...
The microstructure, magnetic and magnetocaloric properties are investigated in the melt-spun and ann...
Melt spun Ni50-xMn37+xIn13 (2 <= x <= 5) ribbons were investigated for the structure, microstructure...
Structural transformation, microstructure and magnetocaloric effect (MCE) were investigated in melt-...
The present investigation addresses the magnetocaloric behaviour in a series of Ni77-XMnXGa23 (x = 2...
"As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their str...
"Alloy ribbons of nominal composition MnNiGe1.05 were produced using the melt-spinning technique. As...
As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their stru...
We present the thermal dependence of the magnetic entropy change ΔSM(T) across the martensitic trans...
We present the thermal dependence of the magnetic entropy change ΔSM(T) across the martensitic trans...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their stru...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
We report a large magnetic entropy change associated with a high-temperature martensitic transformat...
We report the magnetic and magnetocaloric properties of rapidly solidified Ni0.895Cr0.105MnGe1.05 me...
The microstructure, magnetic and magnetocaloric properties are investigated in the melt-spun and ann...
Melt spun Ni50-xMn37+xIn13 (2 <= x <= 5) ribbons were investigated for the structure, microstructure...
Structural transformation, microstructure and magnetocaloric effect (MCE) were investigated in melt-...
The present investigation addresses the magnetocaloric behaviour in a series of Ni77-XMnXGa23 (x = 2...
"As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their str...
"Alloy ribbons of nominal composition MnNiGe1.05 were produced using the melt-spinning technique. As...
As-solidified Ni48Co2Mn35In15 ribbons were prepared through the melt-spinning method, and their stru...
We present the thermal dependence of the magnetic entropy change ΔSM(T) across the martensitic trans...
We present the thermal dependence of the magnetic entropy change ΔSM(T) across the martensitic trans...