Ion sensing with single charge resolution using sub-10-nm electrical double layer-gated silicon nanowire transistors.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 34860555.
- Also identified by DOI 10.1126/sciadv.abj6711 and PMC identifier 8641926.
- Licence recorded as CC BY-NC.
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Abstract
Electrical sensors have been widely explored for the analysis of chemical/biological species. Ion detection with single charge resolution is the ultimate sensitivity goal of such sensors, which is yet to be experimentally demonstrated. Here, the events of capturing and emitting a single hydrogen ion (H<sup>+</sup>) at the solid/liquid interface are directly detected using sub–10-nm electrical double layer–gated silicon nanowire field-effect transistors (SiNWFETs). The SiNWFETs are fabricated using a complementary metal-oxide-semiconductor compatible process, with a surface reassembling step to minimize the device noise. An individually activated surface Si dangling bond (DB) acts as the single H<sup>+</sup> receptor. Discrete current signals, generated by the single H<sup>+</sup>-DB interactions via local Coulomb scattering, are directly detected by the SiNWFETs. The single H<sup>+</sup>-DB interaction kinetics is systematically investigated. Our SiNWFETs demonstrate unprecedented capability for electrical sensing applications, especially for investigating the physics of solid/liquid interfacial interactions at the single charge level.