Park JungHun, Park Yuhyun, Choi Sunkun, Lee Zhuo Feng, Sim Gi-Dong
Department of Mechanical Engineering, Korea Advanced Institute of Science and Technology 291, Daehak-ro, Yuseong-gu, Daejeon 34141, Republic of Korea.
Nanoscale. 2024 Jun 27;16(25):12050-12059. doi: 10.1039/d4nr01033g.
This research addresses the fatigue behavior of freestanding nickel-molybdenum-tungsten (Ni-Mo-W) thin films with high-density planar faults. The as-deposited Ni-Mo-W thin films demonstrate an unprecedented fatigue life, withstanding over a million cycles at a Goodman stress amplitude () of 2190 MPa - nearly 80% of the tensile strength. The texture, columnar grain width, planar fault configuration (spacing and orientation), and tensile strength were unchanged after annealing at 500 °C for 24 hours, and the film endured over 2 × 10 cycles at of 1050 MPa. The fatigue life of annealed Ni-Mo-W thin films is comparable to those of nanocrystalline Ni-based alloys, but has deteriorated significantly compared to that of the as-deposited films. The high fatigue strength of Ni-Mo-W thin films is ascribed to extremely dense planar faults suppressing fatigue crack initiation, and planar fault-dislocation interaction and grain boundary plasticity are proposed as mechanisms responsible for the fatigue failure. Provisionally the latter is a more convincing account of the experimental results, in which changes in the grain boundary characteristics after annealing cause higher susceptibility to stress concentration during cyclic loading. The fatigue behavior revealed in this work consolidates the thermal and mechanical reliability of Ni-Mo-W thin films for potential nano-structural applications.
本研究探讨了具有高密度平面缺陷的独立式镍 - 钼 - 钨(Ni - Mo - W)薄膜的疲劳行为。沉积态的Ni - Mo - W薄膜展现出前所未有的疲劳寿命,在古德曼应力幅值()为2190 MPa时能承受超过一百万次循环——接近抗拉强度的80%。在500°C退火24小时后,薄膜的织构、柱状晶粒宽度、平面缺陷组态(间距和取向)以及抗拉强度均未改变,并且该薄膜在应力幅值为1050 MPa时能承受超过2×10次循环。退火后的Ni - Mo - W薄膜的疲劳寿命与纳米晶镍基合金相当,但与沉积态薄膜相比显著降低。Ni - Mo - W薄膜的高疲劳强度归因于极其密集的平面缺陷抑制了疲劳裂纹萌生,并且平面缺陷 - 位错相互作用和晶界塑性被认为是导致疲劳失效的机制。暂时而言,后者对实验结果的解释更具说服力,其中退火后晶界特性的变化导致循环加载期间对应力集中的更高敏感性。这项工作中揭示的疲劳行为巩固了Ni - Mo - W薄膜在潜在纳米结构应用中的热可靠性和机械可靠性。