Effect of configuration entropy on magnetocaloric effect of rare earth high-entropy alloy

2021 ◽  
pp. 159918
Author(s):  
S F Lu ◽  
L Ma ◽  
J Wang ◽  
Y S Du ◽  
L Li ◽  
...  
JOM ◽  
2020 ◽  
Vol 72 (6) ◽  
pp. 2332-2339 ◽  
Author(s):  
G. R. Li ◽  
M. Liu ◽  
H. M. Wang ◽  
D. Zhang ◽  
F. Tang ◽  
...  

2019 ◽  
Vol 6 (10) ◽  
pp. 106517 ◽  
Author(s):  
Fengyuan Shu ◽  
Ye Tian ◽  
Sansheng Jiang ◽  
Shaohua Sui ◽  
Xin Zhang ◽  
...  

Author(s):  
Hangboce Yin ◽  
Jia Yan Law ◽  
Yongjiang Huang ◽  
Hongxian Shen ◽  
Sida Jiang ◽  
...  

AbstractNon-equiatomic high-entropy alloys (HEAs), the second-generation multi-phase HEAs, have been recently reported with outstanding properties that surpass the typical limits of conventional alloys and/or the first-generation equiatomic single-phase HEAs. For magnetocaloric HEAs, non-equiatomic (Gd36Tb20Co20Al24)100−xFex microwires, with Curie temperatures up to 108 K, overcome the typical low temperature limit of rare-earth-containing HEAs (which typically concentrate lower than around 60 K). For alloys with x = 2 and 3, they possess some nanocrystals, though very minor, which offers a widening in the Curie temperature distribution. In this work, we further optimize the magnetocaloric responses of x = 3 microwires by microstructural control using the current annealing technique. With this processing method, the precipitation of nanocrystals within the amorphous matrix leads to a phase compositional difference in the microwires. The multi-phase character leads to challenges in rescaling the magnetocaloric curves, which is overcome by using two reference temperatures during the scaling procedure. The phase composition difference increases with increasing current density, whereby within a certain range, the working temperature span broadens and simultaneously offers relative cooling power values that are at least 2-fold larger than many reported conventional magnetocaloric alloys, both single amorphous phase or multi-phase character (amorphous and nanocrystalline). Among the amorphous rare-earth-containing HEAs, our work increases the working temperature beyond the typical <60 K limit while maintaining a comparable magnetocaloric effect. This demonstrates that microstructural control is a feasible way, in addition to appropriate compositional design selection, to optimize the magnetocaloric effect of HEAs.


2021 ◽  
Vol 855 ◽  
pp. 157424
Author(s):  
Jia Yan Law ◽  
Luis M. Moreno-Ramírez ◽  
Álvaro Díaz-García ◽  
Andrés Martín-Cid ◽  
Shintaro Kobayashi ◽  
...  

2017 ◽  
Vol 125 ◽  
pp. 481-489 ◽  
Author(s):  
Y. Yuan ◽  
Y. Wu ◽  
X. Tong ◽  
H. Zhang ◽  
H. Wang ◽  
...  

2021 ◽  
Vol 32 (8) ◽  
pp. 10919-10926
Author(s):  
S. F. Lu ◽  
L. Ma ◽  
G. H. Rao ◽  
J. Wang ◽  
Y. S. Du ◽  
...  

2019 ◽  
Author(s):  
Nirmal Kumar ◽  
Subramanian Nellaiappan ◽  
Ritesh Kumar ◽  
Kirtiman Deo Malviya ◽  
K. G. Pradeep ◽  
...  

<div>Renewable harvesting clean and hydrogen energy using the benefits of novel multicatalytic materials of high entropy alloy (HEA equimolar Cu-Ag-Au-Pt-Pd) from formic acid with minimum energy input has been achieved in the present investigation. The synthesis effect of pristine elements in the HEA drives the electro-oxidation reaction towards non-carbonaceous pathway . The atomistic simulation based on DFT rationalize the distinct lowering of the d-band center for the individual atoms in the HEA as compared to the pristine counterparts. This catalytic activity of the HEA has also been extended to methanol electro-oxidation to show the unique capability of the novel catalyst. The nanostructured HEA, properties using a combination of casting and cry omilling techniques can further be utilized as fuel cell anode in direct formic acid/methanol fuel cells (DFFE).<br></div>


Author(s):  
Janez Dolinšek ◽  
Stanislav Vrtnik ◽  
J. Lužnik ◽  
P. Koželj ◽  
M. Feuerbacher

Sign in / Sign up

Export Citation Format

Share Document