An open-source alignment method for multichannel infinite-conjugate microscopes using a ray transfer matrix analysis model
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- Year
- —
- Skill
- medium
- Docs
- moderate
- Rubric
- 2.8 / 5
Implementation assessment
Scoring by criterion
Scores describe accessibility and implementation characteristics reported in the reviewed source. They are not a measure of scientific quality.
Resolution
Smallest feature/positioning evidence about 170 um.
Scalability/Throughput
Evidence of parallel, plate-scale, multi-head, or unattended operation.
Build and Part Sourcing Complexity
Mix of common parts and custom/printed components.
Skill Complexity
Multiple advanced technical skills appear required.
Equipment/Cosumable/Facility Requirement Accessibility
Equipment requirements not explicit; assigned moderate default.
Application Level
Application scope appears narrow or proof-of-concept.
Accessibility to documentation
Open build documentation is not clearly identified.
Validation/Troubleshooting Complexity
Quantitative validation/calibration evidence is present.
Speed/Cycle Time
No clear speed comparison found; assigned neutral score.
Build Time
Build time not reported; assigned neutral score.
Record metadata
Publication data
Crossref and OpenAlex
Publication record
Abstract
Multichannel, infinite-conjugate optical systems easily allow implementation of multiple image paths and imaging modes into a single microscope. Traditional optical alignment methods which rely on additional hardware are not always simple to implement, particularly in compact open-source microscope designs. We present here an alignment algorithm and process to position the lenses and cameras in a microscope using only image magnification measurements. We show that the resulting positioning accuracy is comparable to the axial resolution of the microscope. Ray transfer matrix analysis is used to model the imaging paths when the optics are both correctly and incorrectly aligned. This is used to derive the corresponding image magnifications. We can then extract information about the lens positions using simple image-based measurements to determine whether there is misalignment of the objective lens to sample distance (working distance) and with what magnitude and direction the objective lens needs to be adjusted. Using the M4All open-source 3D printable microscope system in combination with the OpenFlexure microscope, we validate the alignment method and highlight its usability. We provide the model and an example implementation of the algorithm as an open-source Jupyter Notebook. This article is part of the Theo Murphy meeting issue 'Open, reproducible hardware for microscopy'.
Bibliographic details
Access and metrics
Topics and keywords
Funding
- Royal Society · RGF\EA\181058, URF\R\180017
- Engineering and Physical Sciences Research Council · EP/M003701/1
Perspective and practical signals
Why it matters
Supplemental record retained to make the downloaded paper corpus fully navigable.
Limitations
Metadata is limited to the download manifest and title-derived mapping.