Expand this Topic clickable element to expand a topic
Skip to content
Optica Publishing Group

Using confidence intervals to evaluate the focus alignment of spectrograph detector arrays

Abstract

High-resolution spectrographs extract detailed spectral information of a sample and are frequently used in astronomy, laser-induced breakdown spectroscopy, and Raman spectroscopy. These instruments employ dispersive elements such as prisms and diffraction gratings to spatially separate different wavelengths of light, which are then detected by a charge-coupled device (CCD) or complementary metal-oxide-semiconductor (CMOS) detector array. Precise alignment along the optical axis (focus position) of the detector array is critical to maximize the instrumental resolution; however, traditional approaches of scanning the detector through focus lack a quantitative measure of precision, limiting the repeatability and relying on one’s experience. Here we propose a method to evaluate the focus alignment of spectrograph detector arrays by establishing confidence intervals to measure the alignment precision. We show that propagation of uncertainty can be used to estimate the variance in an alignment, thus providing a quantitative and repeatable means to evaluate the precision and confidence of an alignment. We test the approach by aligning the detector array of a prototype miniature echelle spectrograph. The results indicate that the procedure effectively quantifies alignment precision, enabling one to objectively determine when an alignment has reached an acceptable level. This quantitative approach also provides a foundation for further optimization, including automated alignment. Furthermore, the procedure introduced here can be extended to other alignment techniques that rely on numerically fitting data to a model, providing a general framework for evaluating the precision of alignment methods.

© 2017 Optical Society of America

Full Article  |  PDF Article
More Like This
Alignment of sensor arrays in optical instruments using a geometric approach

Travis W. Sawyer
Appl. Opt. 57(4) 794-801 (2018)

Finite sampling corrected 3D noise with confidence intervals

David P. Haefner and Stephen D. Burks
Appl. Opt. 54(15) 4907-4915 (2015)

Tolerancing the alignment of large-core optical fibers, fiber bundles and light guides using a Fourier approach

Travis W. Sawyer, Ryan Petersburg, and Sarah E. Bohndiek
Appl. Opt. 56(12) 3303-3310 (2017)

Supplementary Material (1)

NameDescription
Dataset 1       Dataset containing example images, computer code, and a walk-through example illustrating the use of confidence intervals to measure the precision in a best-focus alignment.

Cited By

You do not have subscription access to this journal. Cited by links are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Figures (6)

You do not have subscription access to this journal. Figure files are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Equations (5)

You do not have subscription access to this journal. Equations are available to subscribers only. You may subscribe either as an Optica member, or as an authorized user of your institution.

Contact your librarian or system administrator
or
Login to access Optica Member Subscription

Select as filters


Select Topics Cancel
© Copyright 2024 | Optica Publishing Group. All rights reserved, including rights for text and data mining and training of artificial technologies or similar technologies.