he magnetic shape-memory alloy Ni–Mn–Ga shows, in monocrystalline form, a reversible magnetic-field-induced strain (MFIS) up to 10%. This strain, which is produced by twin boundaries moving solely by internal stresses generated by magnetic anisotropy energy1, 2, 3, 4, can be used in actuators, sensors and energy-harvesting devices5, 6, 7. Compared with monocrystalline Ni–Mn–Ga, fine-grained Ni–Mn–Ga is much easier to process but shows near-zero MFIS because twin boundary motion is inhibited by constraints imposed by grain boundaries8, 9, 10. Recently, we showed that partial removal of these constraints, by introducing pores with sizes similar to grains, resulted in MFIS values of 0.12% in polycrystalline Ni–Mn–Ga foams11, close to those of ...
The off-stoichiometric Ni2MnGa Heusler alloy is a magnetic shape-memory alloy capable of reversible ...
Ferromagnetic Ni2MnGa-based alloys play an important role in technological fields, such as smart act...
Polycrystalline Ni–Mn–Ga samples were directionally solidified and trained in order to lower the twi...
he magnetic shape-memory alloy Ni–Mn–Ga shows, in monocrystalline form, a reversible magnetic-field-...
The magnetic shape memory alloy Ni Mn Ga shows, in monocrystalline form, a reversible magnetic field...
Recently, we have shown that a polycrystalline Ni–Mn–Ga magnetic shape-memory alloy, when containing...
Monocrystalline Ni–Mn–Ga alloys show magnetic-field-induced strains (MFIS) of up to 10% as a result ...
Porosity in polycrystalline Ni–Mn–Ga alloys reduces internal constraints imposed by grain boundaries...
Grain boundaries hinder twin boundary motion in magnetic shape-memory alloys and suppress magnetic-f...
Magnetic shape memory alloys display magnetic-field-induced strain (MFIS) of up to 10% as single cry...
Foams with 55% and 76% open porosity were produced from a Ni-Mn-Ga magnetic shape-memory alloy by re...
Ferromagnetic Ni–Mn–Ga shape memory alloys with large magnetic-field-induced strains are promising c...
Grain boundaries hinder twin boundary motion in magnetic shape memory alloys and suppress magnetic f...
The off-stoichiometric Ni2MnGa Heusler alloy is a magnetic shape-memory alloy capable of reversible ...
Ferromagnetic Ni2MnGa-based alloys play an important role in technological fields, such as smart act...
Polycrystalline Ni–Mn–Ga samples were directionally solidified and trained in order to lower the twi...
he magnetic shape-memory alloy Ni–Mn–Ga shows, in monocrystalline form, a reversible magnetic-field-...
The magnetic shape memory alloy Ni Mn Ga shows, in monocrystalline form, a reversible magnetic field...
Recently, we have shown that a polycrystalline Ni–Mn–Ga magnetic shape-memory alloy, when containing...
Monocrystalline Ni–Mn–Ga alloys show magnetic-field-induced strains (MFIS) of up to 10% as a result ...
Porosity in polycrystalline Ni–Mn–Ga alloys reduces internal constraints imposed by grain boundaries...
Grain boundaries hinder twin boundary motion in magnetic shape-memory alloys and suppress magnetic-f...
Magnetic shape memory alloys display magnetic-field-induced strain (MFIS) of up to 10% as single cry...
Foams with 55% and 76% open porosity were produced from a Ni-Mn-Ga magnetic shape-memory alloy by re...
Ferromagnetic Ni–Mn–Ga shape memory alloys with large magnetic-field-induced strains are promising c...
Grain boundaries hinder twin boundary motion in magnetic shape memory alloys and suppress magnetic f...
The off-stoichiometric Ni2MnGa Heusler alloy is a magnetic shape-memory alloy capable of reversible ...
Ferromagnetic Ni2MnGa-based alloys play an important role in technological fields, such as smart act...
Polycrystalline Ni–Mn–Ga samples were directionally solidified and trained in order to lower the twi...