欢迎登录材料期刊网

材料期刊网

高级检索

通过离子注入技术对单晶硅表面进行氩离子注入处理,利用纳米压痕仪及其附件研究了单晶硅表面在离子注入前,后的微观力学性能和变形机理,并用透射电子显微镜研究了改性层的微观结构.研究结果表明:一定剂量的氩离子注入使单晶硅表面的断裂韧性得到改善, 提高了其在纳米划痕过程中的失效负荷.原因是氩离子的注入使单晶硅表面形成了硅的微晶态与非晶态共存的混合态结构的改性层,改善了单晶硅的微观力学性能.

The nano-scratch behaviors of Ar+ implanted single-crystal silicon were investigated by a nano indenter system, the micro-structure of the implanted layer was analyzed with TEM. The results show that Ar+ implantation of single-crystal silicon increases the critical load, the best dose is 1×1016ions/cm2. The mixed structure of micro-crystal and amorphous silicon is formed on the surface of Ar+ implanted single-crystal silicon. This contributes to increasing the ability of plastic deformation and to increasing the fracture toughness of single-crystal silicon.

参考文献

[1] Muhlstein C L, Howe R T, Ritchie R O. Mechanics of Materials, 2004, 36: 13--33.
[2] Shrotriya P, Allameh S M, Soboyejo W O. Mechanics of Materials, 2004, 36: 35--44.
[3] Xu T, Tian J, Xue Q J. J Physics D: Applied Physics, 2000, 33: 426--429.
[4] Xu T, Lu J J, Xue Q J. Materials Science and Engineering A, 2000, 284: 51--55.
[5] Miyamoto T, Miyake S, Kaneko. Wear, 1993, 162-163: 733--738.
[6] Lu J J, Xu T, Xue Q J, et al. Thin Solid Films, 2002, 416: 153--159.
[7] Yan J, Syoji K, Tamaki J. Some observations on the wear of diamond tools in ultra-precision cutting of single-crystal silicon[C]. In: Proceedings of
14th International Conference on Wear of Materials, Washington D C, USA, 2003.
[8] 黄立业, 徐可为, 吕坚(HUANG li-Ye, et al). 无机材料学报(Journal of Inorganic Materials), 2001, 16 (5): 1004--1008.
[9] Li X D, Bhushan B. Surface and Coatings Technology, 2003, 163-164: 521--526.
[10] White C W, Mchargue C J, Sklad P S, et al. Materials Scince Reports, 1989, 4: 141--146.
[11] Hioki T, Itoh A, Ohkubo M, et al. J Mater Sci., 1986, 21: 1321--1326.
[12] 关振铎. 无机材料的物理性能. 北京: 清华大学出版社, 1992. 3--16.
[13] Li X D, Bhushan B. Ultramicroscopy, 2003, 97 (1-4): 481--494.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%