Development of graphene process control by industrial optical spectroscopy setup

被引:3
作者
Fursenko, O. [1 ]
Lukosius, M. [1 ]
Lupina, G. [1 ]
Bauer, J. [2 ]
Villringer, C. [2 ]
Mai, A. [1 ]
机构
[1] IHP, Technol Pk 25, D-15236 Frankfurt, Oder, Germany
[2] Tech Univ Appl Sci, Hochschulring 1, D-15745 Wildau, Germany
来源
MODELING ASPECTS IN OPTICAL METROLOGY VI | 2017年 / 10330卷
关键词
graphene; spectroscopic ellipsometry; reflectometry; optical metrology; AFM; HIGH-QUALITY;
D O I
10.1117/12.2269603
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The successful integration of graphene into microelectronic devices depends strongly on the availability of fast and nondestructive characterization methods of graphene grown by CVD on large diameter production wafers [1-3] which are in the interest of the semiconductor industry. Here, a high-throughput optical metrology method for measuring the thickness and uniformity of large-area graphene sheets is demonstrated. The method is based on the combination of spectroscopic ellipsometry and normal incidence reflectometry in UV-Vis wavelength range (200-800 nm) with small light spots (similar to 30 mu m(2)) realized in wafer optical metrology tool. In the first step graphene layers were transferred on a SiO2/Si substrate in order to determine the optical constants of graphene by the combination of multi-angle ellipsometry and reflectometry. Then these data were used for the development of a process control recipe of CVD graphene on 200 mm Ge(100)/Si(100) wafers. The graphene layer quality was additionally monitored by Raman spectroscopy. Atomic force microscopy measurements were performed for micro topography evaluation. In consequence, a robust recipe for unambiguous thickness monitoring of all components of a multilayer film stack, including graphene, surface residuals or interface layer underneath graphene and surface roughness is developed. Optical monitoring of graphene thickness uniformity over a wafer has shown an excellent long term stability (s = 0.004 nm) regardless of the growth of interfacial GeO2 and surface roughness. The sensitivity of the optical identification of graphene during microelectronic processing was evaluated. This optical metrology technique with combined data collection exhibit a fast and highly precise method allowing one an unambiguous detection of graphene after transferring as well as after the CVD deposition process on a Ge(100)/Si(100) wafer. This approach is well suited for industrial applications due to its repeatability and flexibility.
引用
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页数:10
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