Functional 3D Printing for Microfluidic Chips
Supplemental record retained to make the downloaded paper corpus fully navigable.
- Year
- —
- Skill
- medium
- Docs
- moderate
- Rubric
- 3.5 / 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
Quantitative handling accuracy reported, but minimum volume unclear.
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
Build/operation described as low-skill or basic assembly.
Equipment/Cosumable/Facility Requirement Accessibility
Equipment requirements not explicit; assigned moderate default.
Application Level
Presented as modular or usable across multiple workflows.
Accessibility to documentation
Some open documentation or files are available.
Validation/Troubleshooting Complexity
Validation includes standards, benchmarking, replicates, or multi-condition tests.
Speed/Cycle Time
Speed evidence suggests rapid, real-time, or automated operation.
Build Time
Build time not reported; assigned neutral score.
Record metadata
Publication data
Crossref and OpenAlex
Publication record
Abstract
Abstract Microfluidics enables the downscaling of biochemical applications from a lab setting to a portable format. With the field's recent switch from replica molding to 3D printing, complex geometries can be created and a diverse range of functional elements has been reported. Recent advancements in the development of 3D‐printed sensors, actuators, and other valuable elements for microfluidic devices are summarized. Using movable parts, such as valves or pumps, fluid flow can be precisely controlled and directed. Sensors, in turn, allow for the detection of changes in the engineered microenvironment in real time. Additional elements, such as mixers or gradient generators, facilitate changes within the fluid itself. Together, these functional elements promote the movement of fluids and facilitate the sensing of physicochemical changes in the environment. It is predicted that the widespread adoption of 3D printing in microfluidics will ultimately allow the creation of a new generation of increasingly smart, responsive, and autonomous devices, able to sense and act upon their environment in complex ways and with reduced human intervention.
Bibliographic details
Access and metrics
Topics and keywords
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.