Syringe-injectable mesh electronics
Syringe-injectable mesh electronics
One-line verdict: A mesh so thin and open that it can be pushed through a needle and then unfolds inside tissue, trading the stiffness of conventional probes for delivery that only a syringe can do.
Quick tags: Recording · Intracortical · Species: Mouse · Published: 2015
Overview
What it is: A macroporous electronic mesh, sub-micrometre thick and centimetre scale, loaded into a syringe and injected through needles as small as 100 µm in diameter. After injection it unfolds in the cavity or tissue.
Why it matters: Most implants fight the brain’s mechanics. This one tries to disappear into it: the authors report tight integration and low chronic immunoreactivity in several brain regions, and multiplexed neural recording in vivo.
Status: Academic demonstration in mice and in man-made structures, with greater than 90% device yield reported for injection into cavities, dense gels and tissue.
Spec Card Grid
Identity
- Authors: Jia Liu, Tian-Ming Fu, Zengguang Cheng and co-authors; senior authors Ying Fang and Charles M. Lieber
- Org: Harvard University, with the National Center for Nanoscience and Technology, Beijing
- Published: Nature Nanotechnology, 10(7):629-636, June 2015
- Species: mouse
Geometry & Architecture
- Form factor: macroporous mesh, centimetre scale in plane
- Thickness: sub-micrometre
- Delivery: syringe injection through needles down to 100 µm diameter, then unfolding
- Demonstrated applications: strain monitoring in polymer cavities, brain integration, in vivo multiplexed neural recording
Evidence and limits
- Injection yield: greater than 90% into cavities, gels and tissue
- Tissue response: low chronic immunoreactivity reported in several brain regions
- Not covered by this paper: long-term human use. Channel counts and recording duration are in the paper and are not reproduced here.
Engineering Verdict
Strengths: minimally invasive delivery, mechanical match to tissue, large coverage volume.
Limitations: the connection from a free-floating mesh to external electronics is the hard engineering problem; delivery by injection gives limited control over final position.
References
- Liu J, Fu T-M, Cheng Z, et al. Syringe-injectable electronics. Nat Nanotechnol. 2015;10(7):629-636. doi: 10.1038/nnano.2015.115. PubMed: https://pubmed.ncbi.nlm.nih.gov/26053995/