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ref: -2015 tags: ice charles lieber silicon nanowire probes su-8 microwire extracellular date: 05-30-2018 23:40 gmt revision:3 [2] [1] [0] [head]

PMID-26436341 Three-dimensional macroporous nanoelectronic networks as minimally invasive brain probes.

  • Xie C1, Liu J1, Fu TM1, Dai X1, Zhou W1, Lieber CM1,2.
  • Again, use silicon nanowire transistors as sensing elements. These seem rather good; can increase the signal, and do not suffer from shunt resistance / capacitance like wires.
    • They're getting a lot of mileage out of the technology; initial pub back in 2006.
  • Su-8, Cr/Pd/Cr (stress elements) and Cr/Au/Cr (conductor) spontaneously rolled into a ball, then the froze in LN2. Devices seemed robust to freezing in LN2.
  • 300-500nm Su-8 passivation layers, as with the syringe injectable electrodes.
  • 3um trace / 7um insulation (better than us!)
  • Used 100nm Ni release layer; thin / stiff enough Su-8 with rigid Si support chip permitted wirebonding a connector (!!)
    • Might want to use this as well for our electrodes -- of course, then we'd have to use the dicing saw, and free-etch away a Ni (or Al?) polyimide adhesion layer -- or use Su-8 like them. See figure S-4
  • See also {1352}

{1368}
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ref: -0 tags: Lieber nanoFET review silicon neural recording intracellular date: 12-28-2017 04:04 gmt revision:6 [5] [4] [3] [2] [1] [0] [head]

PMID-23451719 Synthetic Nanoelectronic Probes for Biological Cells and Tissue

  • Review of nanowireFETS for biological sensing
  • Silicon nanowires can be grown via vapor-liquid-solid or vapor-solid-solid, 1D catalyzed growth, usually with a Au nanoparticle.
  • Interestingly, kinks can be introduced via "iterative control over nucleation and growth", 'allowing the synthesis of complex 2D and 3D structures akin to organic chemistry"
    • Doping can similarly be introduced in highly localized areas.
    • This bottom-up synthesis is adaptable to flexible and organic substrates.
  • Initial tests used polylysine patterning to encourage axonal and dendritic growth across a nanoFET.
    • Positively charged amino group interacts with negative surface charge phospholipid
    • Lieber's group coats their SU-8 electrodes in poly-d-lysine as well {1352}
  • Have tested multiple configurations of the nanowire FET, including kinked, one with a SiO2 nanopipette channel for integration with the cell membrane, and one where the cell-attached fluid membrane functions as the semiconductor; see figure 4.
    • Were able to show recordings as one of the electrodes was endovascularized.
  • It's not entirely clear how stable and scalable these are; Si and SiO2 gradually dissolve in physiological fluid, and no mention was made of longevity.

{1392}
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ref: -0 tags: lieber mesh electronics SU-8 recording electrodes flexible polymer glass capillary date: 12-22-2017 00:14 gmt revision:0 [head]

PMID-29109247 Highly scalable multichannel mesh electronics for stable chronic brain electrophysiology

  • Key change was the addition of multiple conductor traces per longitudinal mesh line; this allows them to get 64 or 128 channels per mesh without a dramatic increase in modulus.
  • The latitudinal / diagonal lines still displace tissue ...
  • And the injection mechanism, glass pipette, 650um OD, 400um ID, is pretty large, even for 128 channels.
  • Use carbon nanotube ink, custom CNC printer, to connect to FPC.
    • Pretty impressive that they can manipulate ~800nm thick Su-8 film intraop and have it work well!

{1352}
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ref: -0 tags: Charles Lieber syringe-injectable electronics SU-8 chronic flexible date: 10-14-2016 23:30 gmt revision:1 [0] [head]

PMID-27571550 Stable long-term chronic brain mapping at the single-neuron level.

  • Fu TM, Hong G1, Zhou T1, Schuhmann TG, Viveros RD2, Lieber CM.
  • 8 months with only 800nm of Su-8 (400nm of insulation!!). This is both surprising and very impressive; we have to step up our game!
  • In a mouse, too - their surgical technique must be very good. Mice only live ~ 2 years anyway.
  • Figure 3 -- stability -- incredible.
  • Recording sites were bare platinum, 20um diameter; stimulation sites were also bare Pt, 150um dia.
    • No plating or mircowire-fets, so far as I can see; electrode impedances were stable at 200 - 600k (supplementary figure 12).