Figure 5: Output curves representing the velocity of
reaction rate in the EnFET for different values of solution
concentration depending of concentration of enzyme.
Based on the results obtained at the MATLAB
simulation and the structure made in SILVACO, a
voltage level was applied as gate bias in the module
of ATLAS in order to check if the threshold voltage
of the device is in range of the output voltage
generated as EnFET response (Figure 6).
Figure 6: Characteristic curve obtained from ATLAS.
Figure 6 shows that the device turns on at a gate
voltage between 0.5 and 0.7 V, matching the
threshold voltage level generated in Figure 4, which
corroborates that the EnFET biosensor switches on
at those levels.
5 CONCLUSIONS
The main objective of this work was to design a
biosensor based on the operation of an EnFET in
order to detect MBP, using the output electrical
characteristics due to the changes in concentration of
the analyte. The threshold voltage was calculated
and related to the electrical characteristics and the
fabrication process of the transducer. Based on
simulations, the device haves a voltage range from 0
to 1 Volt, having a concentration level between the
values of 10
-4
to 10
-1
M of MBP, which is
compatible with the FET technology for this
application.
In comparison to other EnFET designs, the
structure is also based on silicon technology,
modifying the gate material by other ion sensitive
membranes depending on the implementation. They
also express results as the ones described in Figures
4 and 5. But the comparison of threshold voltage or
output voltage of EnFET sensors to the design is
always based on experimental basis. In this work,
the use of a TCAD tool was used to simulate the
response of the transducer, to ensure it activates in
the range of the voltage generated from the diffusion
of MBP in the (PVA/TEOS/GA) membrane and the
concentration of substrate generated.
Although the presented work is only based in
theoretical grounds, it provides a scheme of how to
elaborate a biosensor based on techniques applied to
microelectronics, also taking its advantages. For
future investigations the characterization of the
materials and the development of the EnFET based
on flexible electronics can be applied. Also the
results obtained should be verified by practical
experiments in the future, in order to be applied on
in vitro tests.
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