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High-Speed THz Time-of-Flight Imaging with Reflective Opticsoa mark
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Publication Year
2023-01-01
Publisher
MDPI
Citation
Sensors, Vol.23
Keyword
nondestructive testingterahertz imagingtime-of-flight
Mesh Keyword
High frequency componentsHigh SpeedHigher-frequency componentsLongitudinal resolutionPackaged chipsReflective opticsTerahertz imagingTHz antennaTime-of flightTime-of-flight imagingImaging, Three-DimensionalOptics and PhotonicsWater
All Science Classification Codes (ASJC)
Analytical ChemistryInformation SystemsBiochemistryAtomic and Molecular Physics, and OpticsInstrumentationElectrical and Electronic Engineering
Abstract
In this study, we develop a 3D THz time-of-flight (TOF) imaging technique by using reflective optics to preserve the high-frequency components from a THz antenna. We use an Fe:InGaAs/InAlAs emitter containing relatively high-frequency components. THz-TOF imaging with asynchronous optical sampling (ASOPS) enables the rapid scanning of 100 Hz/scan with a time delay span of 100 ps. We characterize the transverse resolution using knife edge tests for a focal length of 5; the Rayleigh resolution has been measured at 1.0 mm at the focal plane. Conversely, the longitudinal resolution is determined by the temporal pulse width, confirmed with various gap structures enclosed by a quartz substrate. The phase analysis reveals that reflected waves from the top interface exhibit a phase shift when the gap is filled by high-indexed materials such as water but shows in-phase behavior when it is filled with air and low-indexed material. Our imaging tool was effective for inspecting the packaged chip with high lateral and longitudinal resolution. Importantly, the phase information in 2D and 3D images is shown to be a powerful tool in identifying the defect—in particular, delamination in the chip—which tends to be detrimental to the packaged chip’s stability.
ISSN
1424-8220
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/33210
DOI
https://doi.org/10.3390/s23020873
Fulltext

Type
Article
Funding
This work was supported by the Midcareer Researcher Program (2020R1A2C1005735) and Basic Science Research Program (2021R1A6A1A10044950) through a National Research Foundation grant funded by the Korean Government. It is also supported by the GRRC Program (GRRCAJOU2022B01, Photonics-Medical Convergence Technology Research Center) of Gyeonggi Province, Republic of Korea.
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Ahn, Yeonghwan Image
Ahn, Yeonghwan안영환
Department of Physics
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