Vyas Anand, Aliyu Ahmed
Division of Science, Engineering and Health Studies, SPEED, The Hong Kong Polytechnic University, Hong Kong, China.
Department of Chemical Engineering, Federal University Wukari, Taraba State, Nigeria.
Heliyon. 2023 Feb 3;9(2):e13461. doi: 10.1016/j.heliyon.2023.e13461. eCollection 2023 Feb.
This study successfully deposited Si-doped CrN coatings onto Si (100) substrate by direct current magnetron sputtering. The concentration of Si in the CrSiN coatings was varied by changing the Si target current during deposition. The microstructural and mechanical properties were determined by employing X-ray diffraction, X-ray photoelectron spectroscopy, atomic force microscopy, and nanoindentation test. According to the results, the coating with 3.3 at.% Si contents (CrSiN-2) show an increase and decrease in the crystallite size and coating surface roughness, respectively, leading to solid solution hardening with an optimum hardness and elastic modulus of 21.37 GPa and 205.68 GPa, respectively. With continued Si addition, the coating roughness increased and the mechanical properties gradually decreased and attained 184.08 GPa and 18.95 GPa for the elastic modulus and hardness of the coating with a maximum Si concentration of 9.2 at.% (CrSiN-5).
本研究通过直流磁控溅射成功地在Si(100)衬底上沉积了掺硅CrN涂层。在沉积过程中,通过改变硅靶电流来改变CrSiN涂层中硅的浓度。采用X射线衍射、X射线光电子能谱、原子力显微镜和纳米压痕试验来测定其微观结构和力学性能。结果表明,硅含量为3.3 at.%的涂层(CrSiN-2)的微晶尺寸增大,涂层表面粗糙度减小,分别导致固溶强化,其最佳硬度和弹性模量分别为21.37 GPa和205.68 GPa。随着硅含量的继续增加,涂层粗糙度增大,力学性能逐渐下降,对于硅最大浓度为9.2 at.%的涂层(CrSiN-5),其弹性模量和硬度分别达到184.08 GPa和18.95 GPa。