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Mn_(1.35)Fe_(0.65)P_(0.45)Si_(0.55)B_x合金的磁热效应 被引量:6

Magnetocaloric Effect of Mn_(1.35)Fe_(0.65)P_(0.45)Si_(0.55)B_x Alloys
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摘要 对Mn1.35Fe0.65P0.45Si0.55Bx(x=0,0.01,0.02,0.03,0.04)合金的结构和磁热效应(MCE)进行了研究。XRD分析结果表明:Mn1.35Fe0.65P0.45Si0.55Bx(x=0,0.01,0.02,0.03,0.04)的合金均为Fe2P型六角结构,空间群为P6-2 m,并随着B元素(原子分数)的增加,晶格常数a增大,c/a减小,晶胞体积V略有减小。磁性测量表明:随着B元素(原子分数)的增加,Curie温度(Tc)从228K升高到315K,热滞(ΔThys)变化不大。0~1.5T外磁场下最大磁熵变(-ΔSmax M)下降,分别为3.6,2.5,2.0,1.7,1.9J/(kg·K)。 Structure and magnetocaloric effect(MCE)of the Mn1.35Fe0.65P0.45Si0.55Bx(x= 0, 0.01, 0.02, 0.03 and 0.04, atomic fraction)alloys have been investigated. XRD result shows that the Mn1.35Fe0.65P0.45Si0.55Bx(x= 0, 0.01, 0.02, 0.03 and 0.04) alloys mainly consist of the Fe2 P-type hexagonal structure phase with space group P62 m. With increasing x lattice parameter a increases while lattice parameter c decreases, unit cell volume V de- creases slightly. The magnetic measurements show that the Curie temperature increases from 228 to 315 K, while the thermal hysteresis has little change. The maximum magnetic entropy change, in a magnetic field change of 0-- 1.5 T, decrease slightly with increasing boron content and their values are 3.6, 2.5, 2.0, 1.7 and 1.9 J/(kg· K), respectively
出处 《金属功能材料》 CAS 2014年第1期5-8,共4页 Metallic Functional Materials
基金 国家自然科学基金资助(项目号51161016)
关键词 居里温度 磁热效应 热滞 相变 磁熵变 Curie temperature^magnetocaloric effect ~ thermal hysteresis ~ phase transition magnetic entropy
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  • 1黄焦宏,金培育,刘金荣,徐来自,张久兴.磁热效应的直接测量与测量仪器[J].稀有金属,2005,29(4):584-586. 被引量:15
  • 2宫继成 等.中国稀土学报,2007,28(4):34-34.
  • 3Liu X D, et al. [J]. Applied Physics A, 2006, 82, 339.
  • 4Inoue J, Shimizu M. [J]. Physics F: Metal Physics, 1998, 18: 2487.
  • 5Palstral T T M, et al.[J]. Magnetism and Magnetic Material , 1983, 3(36):290.
  • 6Hu F X, et al.[J]. Applied Physics Letters, 2001, 78 (23): 3675.
  • 7Annaorazov M P, et al. [J]. Applied Physics Letters, 1996, 79:1689.
  • 8Pecharsky A O, et al. [J]. Journal of Applied Physics, 2003, 93:4722.
  • 9Felix C, et al. [J]. Applied Physics Letters, 2005, 86:262504.
  • 10TegusO, et al. [J]. Nature, 2002, 415:150.

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  • 1黄焦宏,金培育,刘金荣,徐来自,张久兴.磁热效应的直接测量与测量仪器[J].稀有金属,2005,29(4):584-586. 被引量:15
  • 2耿遥祥,特古斯,张贵锋,董闯.Mn<sub>1.3</sub>Fe<sub>0.7</sub>P<sub>0.45</sub>Si<sub>0.55</sub>化合物的热滞与磁热效应[J].稀有金属材料与工程,2012,41(S2):384-387. 被引量:1
  • 3生利英,谢红卫,徐来自,黄焦宏.Gd_(3+x)Al_(2-x)系合金磁热效应的直接测量[J].金属功能材料,2006,13(1):17-19. 被引量:2
  • 4虞觉奇,易文质.二元合金状态图集[M].上海科学技术出版社,1980:42.
  • 5O. Tegus, E. Bruck, K. H. J. Buschow, et al. Transition-met- al-based magnetic refrigerants for room-temperature applications [J]. Nature, 2002, 415(10): 150.
  • 6A. Fujita, S. Fujieda, K. Fukamichi, et al. Itinerant-electron metamagnetic transition and large magnetovolume effects in La (Fe.Sil)3 compounds [J]. Phys. Rev. B, 2002, 6501(1): 4410.
  • 7H. Fengxia, S. Baogen, S. Jirong, et al. Influence of negative lattice expansion and metamagnetie transition on magnetic entro- py change in the compound LaFeil.4 Sii.6 [J]. Appl. Phys. Lett. , 2001,78(23) :3675.
  • 8Wada H, Tanabe Y. Giant magnetocaloric effect of MnAs x Sbx[J]. Appl. Phys. Lett. , 2001, 79(20):3302.
  • 9S. fujieda, A. fujita, K. fukamichi. Large magnetocalorie effect in La ( Fex Sil- ) 1 itinerant-electron metamagnetic compounds [J]. ApplPhysLett,2002,81(7):1276.
  • 10A. Fujita, S. Fujieda, Y. Hasegawa, et al. Itinerant-electron metamagnetic transition and large magnetocaloric effects in La (F%.Sil )13 compounds and their hydrides [J]. Phys. Rev. B, 2003,67(10) : 4416.

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