4.6 Article

Ultrasensitive magnetostrictive responses at the pre-transitional rhombohedral side of ferromagnetic morphotropic phase boundary

期刊

JOURNAL OF MATERIALS SCIENCE
卷 56, 期 2, 页码 1713-1729

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SPRINGER
DOI: 10.1007/s10853-020-05300-3

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资金

  1. Natural Science Foundation of China [51701091]
  2. Innovation Team of Higher Educational Science and Technology Program in Shandong Province [2019KJA025]
  3. U.S. Department of Energy, Office of Basic Energy Sciences, Division of Materials Sciences and Engineering [DE-FG02-07ER46417]

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By proposing a design strategy to achieve ultra-sensitive magnetoelastic response at the pre-transitional rhombohedral side of ferromagnetic MPB, utilizing light-rare-earth and transition metal dopants, this study demonstrated an ultrahigh magnetoelastic response in multi-component Laves phase compounds, making it a strong candidate for magnetostriction applications.
The morphotropic phase boundary (MPB) has been utilized extensively in ferroelectrics and recently been extended to ferromagnets, especially for the magnetostrictive materials. Here, guided by phenomenological theories and phase-field simulations, we proposed a design strategy for obtaining the ultrasensitive magnetoelastic response at the pre-transitional rhombohedral side of ferromagnetic MPB, by further flattening the energy landscape while maintaining large intrinsic magnetostriction. To validate this, we judiciously introduced the light-rare-earth-based Tb0.1Pr0.9 system to the Co-doped Tb0.27Dy0.73Fe2 alloy, as Tb0.1Pr0.9 is an anisotropy compensation system with large intrinsic strains and the transition metal dopant of Co tends to optimize the magnetostriction. Phase-field modeling was used to determine the detailed magnetic domain evolution of the investigated multi-component Laves phase compounds, the results of which were compared with experimental results. At room temperature, an ultrahigh magnetoelastic response d(33) was found in Tb0.253Dy0.657Pr0.09(Fe0.9Co0.1)(2) recompensation system especially at low fields, which is superior to that of the commercial Tb0.27Dy0.73Fe2 (Terfenol-D) polycrystal. The ultrahigh magnetostrictive sensitivity, together with low raw material cost makes it one of the strongest candidates for magnetostriction applications. [GRAPHICS] .

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