Rare-earth magnetic material and preparation method thereof
A magnetic material and rare earth technology, applied in the field of rare earth magnetic material and its preparation, can solve the problems that have not been seen before, and achieve the effects of easy control of chemical composition, simple preparation method and low cost
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Embodiment 1
[0032] The rare earth magnetic material [Dy] that the present invention relates to 6 L 2 (μ 3 -OH 2 ) 2 (μ 3 -OCH 3 ) 2 (piv) 10 (OCH 3 ) 2 ], wherein L is 3-{[(2-hydroxy-3-methoxyphenyl)methylene]amino}-1,2-propanediol, and piv is trimethylacetic acid.
[0033] [Dy 6 L 2 (μ 3 -OH 2 ) 2 (μ 3 -OCH 3 ) 2 (piv) 10 (OCH 3 ) 2 ] The synthetic method is:
[0034] Weigh the analytically pure DyCl according to the molar ratio of 3:2:1 3 ·6H 2 O, trimethylacetic acid and 3-{[(2-hydroxy-3-methoxyphenyl)methylene]amino}-1,2-propanediol (where DyCl 3 ·6H 2 O is 0.05mmol, i.e. 0.01885g), placed in a beaker, then added a mixed solvent composed of 2mL methanol and 2mL acetonitrile, stirred evenly, then adjusted the pH=6.1 of the solution with analytically pure triethylamine; the resulting mixed solution was transferred to In a Pyrex thick-walled glass tube with a length of about 18 cm, freeze and evacuate the tube with liquid nitrogen, and then place the fused-sealed...
Embodiment 2
[0046] Repeat Example 1, the difference is:
[0047] 1) DyCl 3 ·6H 2 The amount of O is changed to 0.1mmol, which is 0.0377g;
[0048] 2) Change the mixed solvent to consist of 4mL methanol and 4mL acetonitrile;
[0049] 3) adjust the pH value of the solution to 6.6;
[0050] 4) The reaction temperature is controlled at 90°C, and the reaction time is controlled at 24h.
[0051] Structural characterization and infrared characterization were performed on the obtained product, and the target product was determined to be a rare earth magnetic material [Dy 6 L 2 (μ 3 -OH 2 ) 2 (μ 3 -OCH 3 ) 2 (piv) 10 (OCH 3 ) 2 , the characterization of the magnetic properties of the product shows that the rare earth magnetic material obtained at room temperature χ M T is 64.5cm 3 Kmol -1 , as the temperature decreases, χ M T increases gradually and reaches a maximum value of 66.4cm at 60K 3 Kmol -1 , then dropped sharply to 36.8cm 3 Kmol -1 . and χ M –1 The -T curve obeys...
Embodiment 3
[0053] Example 1 was repeated except that the pH of the solution was adjusted to 5.8.
[0054] Structural characterization and infrared characterization were performed on the obtained product, and the target product was determined to be a rare earth magnetic material [Dy 6 L 2 (μ 3 -OH 2 ) 2 (μ 3 -OCH 3 ) 2 (piv) 10 (OCH 3 ) 2 , the characterization of the magnetic properties of the product shows that the rare earth magnetic material obtained at room temperature χ MT is 64.5cm 3 Kmol -1 , as the temperature decreases, χ M T increases gradually and reaches a maximum value of 66.4cm at 60K 3 Kmol -1 , then dropped sharply to 36.8cm 3 Kmol -1 . and χ M –1 The -T curve obeys the Curie-Weiss law, and the Weiss constant is 78.5K and the Curie constant is 2.13cm. 3 Kmol –1 . Positive Weiss constant and χ M The trends of T-T curves all suggest that there is ferromagnetic exchange between dysprosium ions in the molecule, and the overall performance is paramagneti...
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