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反应磁控溅射TiN/AlON纳米多层膜的微结构与显微硬度
引用本文:黄碧龙,吴昕蔚,孔明,李戈扬.反应磁控溅射TiN/AlON纳米多层膜的微结构与显微硬度[J].金属学报,2008,44(2):193-197.
作者姓名:黄碧龙  吴昕蔚  孔明  李戈扬
作者单位:上海交通大学金属基复合材料国家重点实验室,上海,200030
摘    要:采用Ti靶和Al2O3靶在Ar、 N2混合气氛中进行反应磁控溅射的方法,制备了一系列不同AlON层厚度的TiN/AlON纳米多层膜,利用EDS、XRD、HRTEM和微力学探针研究了AlON的形成条件以及AlON调制层厚的改变对多层膜生长方式和显微硬度的影响.结果表明,在Ar、N2混合气氛中对Al2O3进行溅射,N原子会部分取代Al2O3中的O原子,形成非晶态的AlON化合物.在TiN/AION纳米多层膜中,由于TiN晶体层的模板效应,AlON层在厚度小于0.6 nm时被强制晶化并与TiN形成共格外延生长结构,多层膜显示出最高硬度达40.5 Gpa的超硬效应;进一步增加AlON的层厚,其生长模式由晶态向非晶态转变,破坏了多层膜的共格外延生长结构,多层膜的硬度随之降低.

关 键 词:TiN/AlON纳米多层膜  外延生长  非晶晶化  显微硬度  反应磁控溅射
文章编号:0412-1961(2008)02-0193-05
收稿时间:2007-06-14
修稿时间:2007-09-24

Microstructures and Mechanical Properties of TiN/AlON Nanomultilayers synthesized by Reactive Magnetron Sputtering
HUANG Bilong,WU Xinwei,KONG Ming,LI Geyang.Microstructures and Mechanical Properties of TiN/AlON Nanomultilayers synthesized by Reactive Magnetron Sputtering[J].Acta Metallurgica Sinica,2008,44(2):193-197.
Authors:HUANG Bilong  WU Xinwei  KONG Ming  LI Geyang
Abstract:Ti and Al2O3 targets are used to prepare a series of TiN/AlON nanomultilayers in the gas mixture of Ar and N2 with reactive magnetron sputtering method. The formation conditions of AlON and the effects of thickness of AlON on microstructures and mechanical properties of the multilayers are evaluated and characterized by EDS, XRD, HRTEM and nanoindentation. The investigations show that O atom in Al2O3 will be partially replaced by N atom when sputtering Al2O3 target in the gas mixture of Ar and N2, forming amorphous AlON. In TiN/AlON nanomultilayers, when thickness of AlON is less than 0.6 nm, AlON, due to the template effect of TiN crystal layer, is forced to crystallize and grow epitaxially on TiN, and the multilayers begin to show superhardness effect with a highest HV value of 40.5 GPa. With further increase of the thickness of AlON, its growth mode changes from crystal to amorphous, therefore the epitaxial structure of multilayeres was destroyed and the hardness of multilayers decreased.
Keywords:TiN/AlON nanomultilayers  epitaxial growth  crystallization  micro-hardness  reactive magnetron sputtering
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