TY - JOUR
T1 - Synergetic effect of functionalized few-layered graphene on structural, magnetic and electrical conductivity properties of CoCuFeNi high entropy alloys
AU - Küçükelyas, Burak
AU - Çaha, İhsan
AU - Kaykılarlı, Cantekin
AU - Peters, James Caleb
AU - Solak, Nuri
AU - Uzunsoy, Deniz
AU - Gürmen, Sebahattin
N1 - Publisher Copyright:
© 2025
PY - 2025/4/5
Y1 - 2025/4/5
N2 - This research investigates the integration of functionalized few-layered graphene (FG) into CoCuFeNi high entropy alloys (HEAs), uncovering notable improvements in their structural, magnetic, and electrical properties. By utilizing a functionalization technique with Triton X-100 as a surfactant, the study addresses graphene agglomeration, enhancing FG dispersion within HEAs during the mechanical alloying (MA) process. The impact of different FG concentrations (0.2 %, 1 %, 2 %, 10 % by weight) on HEA properties was examined. FG incorporation refined the microstructure, reducing crystallite size from 19.48 nm to 9.30 nm at 2 wt% FG, while higher concentrations led to a dual-phase FCC and BCC structure. Magnetic properties were modified, with coercivity increasing from 8.53 Oe in the base alloy to 144 Oe at 10 wt% FG, and saturation magnetization decreasing from 90.22 emu/g to 61.48 emu/g. Electrical conductivity also improved. These enhancements indicate the utility of FG-enriched HEAs in applications demanding robust microstructural refinement, magnetic properties, and high electrical conductivity.
AB - This research investigates the integration of functionalized few-layered graphene (FG) into CoCuFeNi high entropy alloys (HEAs), uncovering notable improvements in their structural, magnetic, and electrical properties. By utilizing a functionalization technique with Triton X-100 as a surfactant, the study addresses graphene agglomeration, enhancing FG dispersion within HEAs during the mechanical alloying (MA) process. The impact of different FG concentrations (0.2 %, 1 %, 2 %, 10 % by weight) on HEA properties was examined. FG incorporation refined the microstructure, reducing crystallite size from 19.48 nm to 9.30 nm at 2 wt% FG, while higher concentrations led to a dual-phase FCC and BCC structure. Magnetic properties were modified, with coercivity increasing from 8.53 Oe in the base alloy to 144 Oe at 10 wt% FG, and saturation magnetization decreasing from 90.22 emu/g to 61.48 emu/g. Electrical conductivity also improved. These enhancements indicate the utility of FG-enriched HEAs in applications demanding robust microstructural refinement, magnetic properties, and high electrical conductivity.
KW - Electrical conductivity
KW - Functionalized few-layered graphene
KW - High entropy alloys
KW - Magnetic properties
KW - Mechanical alloying
UR - https://www.scopus.com/pages/publications/85219694483
U2 - 10.1016/j.jallcom.2025.179594
DO - 10.1016/j.jallcom.2025.179594
M3 - Article
AN - SCOPUS:85219694483
SN - 0925-8388
VL - 1021
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 179594
ER -