Optical interference on the measurement of film-depth-dependent light absorption spectroscopy and a correction approach

Author:

Lu Guanyu1ORCID,Shen Zichao1ORCID,Wang Hong1ORCID,Bu Laju2ORCID,Lu Guanghao13ORCID

Affiliation:

1. Frontier Institute of Science and Technology, State Key Laboratory of Electrical Insulation and Power Equipment, Xi’an Jiaotong University 1 , Xi’an 710054, China

2. 2School of Chemistry, Xi’an Jiaotong University, Xi’an 710049, China

3. 3Shaanxi Puguang Weishi Co. Ltd., Xi’an 710100, China

Abstract

Organic thin films usually feature vertical phase segregation, and film-depth-dependent light absorption spectroscopy is an emerging characterization method to study the vertical phase separation of active layer films in organic electronics field. However, the interference effects on thin films can lead to optical errors in their characterization results. In this work, the interference effects on fluctuations of peak intensity and peak position of film-depth-dependent light absorption spectroscopy are investigated. Subsequently, a numerical method based on inverse transfer matrix is proposed to obtain the optical constants of the active layer through the film-depth-dependent light absorption spectroscopy. The extinction coefficient error in the non-absorbing wavelength range caused by interference effect is reduced by ∼95% compared with the traditional film-depth-dependent light absorption spectroscopy measurement. Thus, the optical properties of the thin film and quantitative spectrographic analysis based on these optical constants largely avoid the effects of interference including fluctuations of peak intensity and peak position. It is concluded that for many morphologically homogenously films, the spatial (film-depth) resolution of this film-depth-dependent light absorption spectroscopy can be optimized to be <1 nm. Subsequently, this modified film-depth-dependent light absorption spectroscopy approach is employed to simulate the local optical properties within devices with a multilayer architecture.

Funder

National Natural Science Foundation of China

Key Scientific and Technological Innovation Team Project of Shaanxi Province

Publisher

AIP Publishing

Subject

Instrumentation

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