Galvanic Displacement Reaction Enabled Specific and
Sensitive Detection of Bacteria with a Digital Photocorrosion GaAs/AlGaAs
Biosensor
Posted on 2023-10-29 - 15:29
The conjugation of
ionic gold with bacterial antibodies makes it
possible to induce a specific interaction between targeted bacteria
and the surface of a GaAs/AlGaAs biochip. The process of immobilization
is based on a galvanic displacement reaction (GDR) involving electron
transfer between GaAs and Au3+ ions that leads to the formation
of a Au–Ga alloy anchoring bacteria to the biochip surface.
The GDR-based immobilization of Escherichia coli on biochips comprising a stack of GaAs/AlGaAs nanolayers (dGaAs = 12 nm, dAlGaAs = 10 nm) was confirmed by X-ray photoelectron spectroscopy and atomic
force microscopy-based infrared experiments. We report the successful
application of this approach for highly sensitive detection of E. coli with a digital photocorrosion (DIP) biosensor.
The photoluminescence (PL) monitored DIP of GaAs/AlGaAs nanolayers
results in the formation of a PL intensity maximum whose temporal
appearance depends on the electric charge transfer between bacteria
and the biochip. The formation of a robust bacteria–biochip
interface achieved with the GDR process allowed us to observe the
role of bacteria on the temporal position of a PL intensity maximum
related to the etching of two pairs of GaAs/AlGaAs nanolayers extending
up to 24 nm below the biochip surface. We demonstrate the attractive
detection of E. coli at 250 CFU/mL,
and we discuss the potential of this approach for designing a family
of biosensors addressing the quasi-continuous monitoring of a water
environment for the presence of pathogenic bacteria.
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Singh, Amanpreet; Hassen, Walid M.; St-Onge, René; Dubowski, Jan J. (1753). Galvanic Displacement Reaction Enabled Specific and
Sensitive Detection of Bacteria with a Digital Photocorrosion GaAs/AlGaAs
Biosensor. ACS Publications. Collection. https://doi.org/10.1021/acs.jpcc.3c05200