TY - GEN
T1 - Gap engineering for improved control of memristor nanosensors
AU - Ibarlucea, Bergoi
AU - Baraban, Larysa
AU - Cuniberti, Gianaurelio
AU - Kim, Kihyun
AU - Rim, Taiuk
AU - Baek, Chang Ki
AU - Ascoli, Alon
AU - Tetzlaff, Ronald
N1 - Publisher Copyright:
© 2017 IEEE.
PY - 2017/10/31
Y1 - 2017/10/31
N2 - Memristor biosensors are electronic systems very recently born electronic systems in the quest for highly sensitive biodetection approaches. The presence of charged species in the vicinity of a semiconductor channel connecting a source and a drain electrode opens a voltage gap between the two current minima in the semi-logarithmic output curve. Despite the tremendous sensitivity demonstrated in the past, the initial state of the gap limits the charge sign of the analyte to be detected, i.e. with an initial closed gap the detection of analytes with a gap-closing effect will remain challenging. Here, we propose a gap controlling process using a third electrode that mimics the presence of charged molecules of the desired sign. We test the function of the gap-control terminal via a back-gate in dry condition and we demonstrate the operation in liquid environment using a top-gate electrode. Finally, toward (bio)chemical sensing applications, we discriminate solutions with different pH values. The hereby proposed method is critical to allow broadening the range of analytes that can be sensed directly in liquid environment regardless their charge sign.
AB - Memristor biosensors are electronic systems very recently born electronic systems in the quest for highly sensitive biodetection approaches. The presence of charged species in the vicinity of a semiconductor channel connecting a source and a drain electrode opens a voltage gap between the two current minima in the semi-logarithmic output curve. Despite the tremendous sensitivity demonstrated in the past, the initial state of the gap limits the charge sign of the analyte to be detected, i.e. with an initial closed gap the detection of analytes with a gap-closing effect will remain challenging. Here, we propose a gap controlling process using a third electrode that mimics the presence of charged molecules of the desired sign. We test the function of the gap-control terminal via a back-gate in dry condition and we demonstrate the operation in liquid environment using a top-gate electrode. Finally, toward (bio)chemical sensing applications, we discriminate solutions with different pH values. The hereby proposed method is critical to allow broadening the range of analytes that can be sensed directly in liquid environment regardless their charge sign.
KW - honeycomb nanowires
KW - memristor biosensor
KW - silicon nanowire field effect transistor
KW - voltage gap
UR - https://www.scopus.com/pages/publications/85039906246
U2 - 10.1109/ECCTD.2017.8093293
DO - 10.1109/ECCTD.2017.8093293
M3 - Conference paper
AN - SCOPUS:85039906246
T3 - 2017 European Conference on Circuit Theory and Design, ECCTD 2017
BT - 2017 European Conference on Circuit Theory and Design, ECCTD 2017
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2017 European Conference on Circuit Theory and Design, ECCTD 2017
Y2 - 4 September 2017 through 6 September 2017
ER -